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		<title>LACTIC ACID BACTERIA: GARDEN AND SOIL BENEFITS</title>
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					<description><![CDATA[LACTIC ACID BACTERIA: GARDEN AND SOIL BENEFITS Lactic acid bacteria (LAB) are beneficial microorganisms commonly associated with fermented foods and dairy products. However, they also play a significant role in gardening and soil health. Here are some benefits of using lactic acid bacteria in gardening and soil management: Improved Nutrient Availability: LAB can help break [&#8230;]]]></description>
										<content:encoded><![CDATA[<h1>LACTIC ACID BACTERIA: GARDEN AND SOIL BENEFITS</h1>
<p><iframe title="Applying Lactic Acid Bacteria as a Soil Drench - Improving Soil With Natural Regenerative Techniques" width="640" height="360" src="https://www.youtube.com/embed/Fu6eJrFJxi0?feature=oembed" frameborder="0" allow="accelerometer; autoplay; clipboard-write; encrypted-media; gyroscope; picture-in-picture; web-share" referrerpolicy="strict-origin-when-cross-origin" allowfullscreen></iframe></p>
<p>Lactic acid bacteria (LAB) are beneficial microorganisms commonly associated with fermented foods and dairy products. However, they also play a significant role in gardening and soil health. Here are some benefits of using lactic acid bacteria in gardening and soil management:</p>
<ol>
<li><strong>Improved Nutrient Availability</strong>: LAB can help break down organic matter in the soil, making nutrients more readily available to plants. They convert complex organic compounds into simpler forms that plants can easily absorb, leading to improved nutrient uptake and plant growth.</li>
<li><strong>Enhanced Soil Structure</strong>: LAB contribute to the formation of stable soil aggregates, which improve soil structure. This enhanced structure allows for better water infiltration and retention, as well as improved aeration. Healthy soil structure is crucial for root development and overall plant health.</li>
<li><strong>Disease Suppression</strong>: Certain strains of LAB have been shown to produce antimicrobial compounds that can suppress harmful pathogens and pests in the soil. This can help reduce the incidence of soil-borne diseases and promote a healthier plant environment.</li>
<li><strong>Faster Composting</strong>: LAB can accelerate the decomposition of organic matter during composting. Their activity speeds up the breakdown of materials, resulting in a more nutrient-rich compost that can be used to enrich the soil.</li>
<li><strong>Increased Nutrient Cycling</strong>: LAB play a role in nutrient cycling by breaking down organic matter and releasing nutrients back into the soil. This process helps maintain a sustainable nutrient balance in the soil, reducing the need for external fertilizers.</li>
<li><strong>Biofertilizer Production</strong>: LAB can be used to create biofertilizers through a fermentation process. These biofertilizers contain beneficial microorganisms that can improve soil fertility, nutrient availability, and plant growth. Applying biofertilizers can reduce the reliance on synthetic fertilizers.</li>
<li><strong>Reduced Chemical Dependency</strong>: Incorporating LAB into gardening practices can lead to a reduced reliance on chemical fertilizers, pesticides, and fungicides. This can contribute to more environmentally friendly and sustainable gardening practices.</li>
<li><strong>Stress Resistance</strong>: LAB-treated plants have been shown to exhibit increased resistance to environmental stressors such as drought, salinity, and extreme temperatures. This is attributed to the role of LAB in improving nutrient availability and overall plant health.</li>
<li><strong>Bioremediation</strong>: Some LAB strains are capable of breaking down and detoxifying certain pollutants and contaminants present in the soil. This makes them valuable for soil bioremediation projects aimed at restoring polluted or degraded soils.</li>
<li><strong>Plant Growth Promotion</strong>: LAB can produce plant growth-promoting hormones and compounds such as auxins, cytokinins, and gibberellins. These substances enhance root growth, flowering, and overall plant development.</li>
</ol>
<p>To harness the benefits of lactic acid bacteria in gardening and soil management, you can consider using commercial LAB-based products or creating your own fermented solutions using organic matter and LAB cultures. However, it’s important to note that not all strains of LAB may have the same effects, so it’s recommended to research and select appropriate strains based on your specific gardening needs. <a href="https://roguesoil.com/soil/lactic-acid-bacteria-garden-and-soil-benefits/">source</a></p>
<h3><a href="https://goodshepherdmedia.net/the-benefits-of-a-lactobacillus-to-your-health/" target="_blank" rel="noopener">The Benefits of a Lactobacillus to Your Health</a> (<em><a href="https://goodshepherdmedia.net/the-benefits-of-a-lactobacillus-to-your-health/" target="_blank" rel="noopener">click Here</a></em>)</h3>
<p>&nbsp;</p>
<h1 class="UbhFJ7 nkqC0Q blog-post-title-font blog-post-title-color blog-text-color post-title blog-hover-container-element-color FG3qXk blog-post-page-title-font" data-hook="post-title"><span class="post-title__text blog-post-title-font blog-post-title-color"><span class="blog-post-title-font blog-post-title-color">How To: Culture Lactobacillus (LAB) for Horticultural use</span></span></h1>
<p><iframe title="HOW TO MAKE SOIL BACTERIA - Step by Step Guide" width="640" height="360" src="https://www.youtube.com/embed/J63VWK0W4R8?feature=oembed" frameborder="0" allow="accelerometer; autoplay; clipboard-write; encrypted-media; gyroscope; picture-in-picture; web-share" referrerpolicy="strict-origin-when-cross-origin" allowfullscreen></iframe></p>
<p>&nbsp;</p>
<div data-breakout="normal">
<p id="viewer-cknnv" class="lQ4U6 OfD-H zcgfA QENj7" dir="auto"><span class="ptGQd">Generally when it comes to bacteria and microbes we&#8217;d be referring to the aerobic type you&#8217;d hope to produce in a Compost Tea (AACT) system, the reason being that the presence of anaerobic bacteria in these systems are nearly always &#8216;bad news&#8217;. However there are useful anaerobes out there and it is very much worth looking in to putting them to use in your horticultural endeavours!!</span></p>
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<h2 id="viewer-72hpq" class="Gfz0Y wpVeQ zcgfA QENj7" dir="auto"><span class="og-6R">Enter Lactobacillus&#8230;.</span></h2>
</div>
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<p id="viewer-c3dge" class="lQ4U6 OfD-H zcgfA QENj7" dir="auto"><span class="ptGQd">Lactobacillus is a <a class="UIpex fvzp3" href="http://en.wikipedia.org/wiki/Facultative_anaerobic_organism" target="_blank" rel="noopener" data-hook="WebLink">facultive anaerobe</a> that we are generally interested in for it&#8217;s ability to ferment a wide variety of things. It is this process that makes Lactobacillus or LAB the cornerstone of a range of processes the savvy gardener will find <u>extremely</u> useful. I&#8217;ll mention more about that later in this piece and in further blogs, but lets show you how to culture your own Lactobacillus first&#8230;.</span></p>
</div>
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<h3 id="viewer-2v7rp" class="L-LF6 wpVeQ zcgfA QENj7" dir="auto"><span class="og-6R"> Step 1 &#8211; Rice wash</span></h3>
</div>
<div data-breakout="normal">
<p id="viewer-f44n" class="lQ4U6 OfD-H zcgfA QENj7" dir="auto"><span class="ptGQd">Technically you can use any reasonable carbohydrate source (preferably not simple sugars) but in this instance we&#8217;ll go with a Rice wash &#8211; I will be trying other more exciting things in the future, but until then&#8230;.. Well the title says it all really, wash some rice and collect the water. This milky wash will now contain some of the starches from the rice and provide a food source for your bacteria.</span></p>
</div>
<div data-breakout="normal">
<h3 id="viewer-41pag" class="L-LF6 wpVeQ zcgfA QENj7" dir="auto"><span class="og-6R"> Step 2 &#8211; Collect your initial culture</span></h3>
</div>
<div data-breakout="normal">
<p id="viewer-friap" class="lQ4U6 OfD-H zcgfA QENj7" dir="auto"><span class="ptGQd">Place your rice wash in a suitable vessel (a jar&#8230;) and protect the neck with some kind of net to stop anything random getting in. Ideally you&#8217;ll want to place this outside, in a garden, on a balcony ect away from the elements but open to the air. This will allow the bacteria to go to work on the wash. A day or so should be fine. You will notice a change in the wash as the bacteria start to work, it will start to smell slightly sour and three distinct layers should be visible. You now need to collect the middle of these layers &#8211; the best way is with a siphon, but a syringe or whatever you have to hand will work &#8211; just try not to disrupt the layers.</span></p>
</div>
<div data-breakout="normal">
<h3 id="viewer-e31b8" class="L-LF6 wpVeQ zcgfA QENj7" dir="auto"><span class="og-6R"> Step 3 &#8211; Feed the LAB</span></h3>
</div>
<div data-breakout="normal">
<p id="viewer-soc7" class="lQ4U6 OfD-H zcgfA QENj7" dir="auto"><span class="ptGQd">Now it&#8217;s time to culture just the LAB that are present and nothing else. To do this we add milk to the liquid we collected at about 10:1, so for every 10ml of liquid you want to add 100ml of milk &#8211; You can use pretty much any milk as it&#8217;s the LAB in the wash we are culturing, however the least adulterated milk you can get your hands on the better. It&#8217;s probably worth saying you can&#8217;t use a lactose free milk for fairly obvious reasons&#8230;.Finally we want to store this in an anaerobic state, so you have a few options &#8211; Ideally you can use a container with an airlock &#8211; the same as homebrewers use (or make one), you could use a bottle or jar and release the pressure every so often (not the best plan) or as I have use a heavy lid with a seal so any gas can escape but will then re-seal (not ideal to be honest&#8230;.go buy some airlocks, you&#8217;ll want them for further projects!)</span></p>
</div>
<div data-breakout="normal">
<h3 id="viewer-6rlai" class="L-LF6 wpVeQ zcgfA QENj7" dir="auto"><span class="og-6R"> Step 4 &#8211; Prep &amp; Store the LAB</span></h3>
</div>
<div data-breakout="normal">
<p id="viewer-d13nl" class="lQ4U6 OfD-H zcgfA QENj7" dir="auto"><span class="ptGQd">After about a week you should notice a distinct change &#8211; You&#8217;ll have a layer of curds and a liquid layer &#8211; whey. It&#8217;s this liquid layer we want. Nothing too stressful here, just use a sieve and collect the liquid in a vessel &#8211; The curds can be put on the compost or whatever, it will be a great addition. Again your brew should smell sour (actually quite pleasant if you&#8217;re in to sour beers at all&#8230;.) but not rancid, if it is bin it. OK, now you have your liquid you have 2 options, store it in the fridge where it will keep for about a week or mix it with Molasses to stabilise the culture where it will keep for 6 months or more. To stabilise mix the culture 1:1 with molasses, so 1 litre culture to 1 Litre of Molasses gives you 2 Litres&#8230;..it&#8217;s worth airlocking this too until the mix stabilises.</span></p>
</div>
<div data-breakout="normal">
<h3 id="viewer-bik4e" class="L-LF6 wpVeQ zcgfA QENj7" dir="auto"><span class="og-6R"> What&#8217;s the point?</span></h3>
</div>
<div data-breakout="normal">
<p id="viewer-fnrsj" class="lQ4U6 OfD-H zcgfA QENj7" dir="auto"><span class="ptGQd">Excellent question :o) The more mundane uses for LAB include using it as an odour neutraliser if you happen to keep chickens etc &#8211; Mix 30ml per litre of water and spray around the coop to reduce the smell &#8211; Unblock drains &#8211; 15ml per litre and let it go to work over night and many more! For your <em>growing</em> needs however mix 30ml or so with every litre of your plant&#8217;s water. The microbes will help cycle the nutrients in the soil making them more available to the plant! Add your LAB to compost &#8211; 30ml per litre and damp down every time you add to the pile or as you&#8217;re layering up. The Lactobacillus will speed up decomposition and start to cycle the nutrients! Finally (and more excitingly), I mentioned earlier that LAB is the cornerstone of further processes that are <u>highly</u> beneficial to a gardener. For instance LAB can be used for Bokashi composting, no more need to buy bran for your indoor composting! If you&#8217;ve never heard of Bokashi, I&#8217;ll cover it at some point. LAB can also be used to ferment plant material, for instance if you already add seaweed meal to your feeding regime, imagine if you could &#8216;pre-digest&#8217; the nutrients held within the seaweed &#8211; making the non soluble elements readily available at application&#8230;.with LAB you can. If you&#8217;re a gardener familiar with the process of rotting comfrey or nettles in a bucket to annoy your plot mates, why not use LAB to break down the vegetable matter without the smell, and more importantly, without the risk of culturing the bad anaerobic bacteria. Using these principles it&#8217;s basically possible to <strong><u>make your own organic liquid plant food for free</u></strong> and without losing friends or neighbours&#8230;.. The last point for this post is probably my favourite &#8211; With LAB it&#8217;s possible to create your own fish fertiliser (Fish hydrolysate) this in conjunction with your nettle/seaweed/comfrey/grass brews will give you the perfect base for making your own liquid organic fertiliser&#8230;. &#8230;that&#8217;s not bad for a little milk and help from a bacterium.</span></p>
</div>
<div data-breakout="normal">
<p id="viewer-2ib3m" class="lQ4U6 OfD-H GBTDM QENj7" dir="auto"><span class="ptGQd">Foot notes &#8211; There should really be a sequence of pictures to go with this post, but frankly they weren&#8217;t up to scratch. If anything needs clearing up drop me an email or comment below. &#8211; N.D <a href="https://www.thenutrientcompany.com/post/how-to-culture-lactobacillus-lab-for-horticultural-use">source</a> </span></p>
</div>
<p><iframe title="Lactic Acid Bacteria to improve your Garden! #short #shorts #LAB #lacticacidbacteria" width="640" height="360" src="https://www.youtube.com/embed/bbKHaKE3lGI?feature=oembed" frameborder="0" allow="accelerometer; autoplay; clipboard-write; encrypted-media; gyroscope; picture-in-picture; web-share" referrerpolicy="strict-origin-when-cross-origin" allowfullscreen></iframe></p>
<hr />
<h1 id="screen-reader-main-title" class="Head u-font-serif u-h2 u-margin-s-ver"><span class="title-text">Prominent use of lactic acid bacteria in soil-plant systems</span></h1>
<div id="preview-section-abstract">
<div id="abstracts" class="Abstracts u-font-serif text-s">
<div id="ab0010" class="abstract author-highlights">
<h2 class="section-title u-h4 u-margin-l-top u-margin-xs-bottom">Highlights</h2>
<div id="as0010">
<ul class="list">
<li class="react-xocs-list-item">
<p id="p0005"><strong><span style="color: #0000ff;">actic acid bacteria enhance soil fertility and nutrient uptake.</span></strong></p>
</li>
<li class="react-xocs-list-item">
<p id="p0010"><strong><span style="color: #0000ff;">actic acid bacteria control plant pathogens and diseases.</span></strong></p>
</li>
<li class="react-xocs-list-item">
<p id="p0015"><strong><span style="color: #0000ff;">actic acid bacteria increase plant growth and yield.</span></strong></p>
</li>
<li class="react-xocs-list-item">
<p id="p0020"><strong><span style="color: #0000ff;">actic acid bacteria reduce the use of chemical fertilizers.</span></strong></p>
</li>
<li class="react-xocs-list-item">
<p id="p0025"><strong><span style="color: #0000ff;">actic acid bacteria improve soil structure and water-holding capacity.</span></strong></p>
</li>
</ul>
</div>
</div>
<div id="ab0005" class="abstract author">
<h2 class="section-title u-h4 u-margin-l-top u-margin-xs-bottom">Abstract</h2>
<div id="as0005">
<p id="sp0050">Lactic acid bacteria (LAB) are ubiquitous, Gram-positive, probiotic, and facultative aerophilic microorganisms. They are commonly found in wide range of environments including food-rich environments, decaying plants, milk products, the human gut, vaginal flora, and on the skin of various living organisms. These multifaceted bacteria have multiple roles including promoting food safety; promoting plant growth; improving soil, animal, and human health. They are also an integral part of sustainable farming strategies with a low risk of resistance to chemical pesticides, making them an environmentally friendly and effective way of managing pests and diseases and improving plant production. While the traditional role of LAB in food processing and human health sectors has been widely studied and documented, there is increasing attention to their additional roles that empirical evidences and research have validated such as serving as biofertilizers, biocontrol, and biostimulant agents in plant production through the production of bacteriocins, organic acids, and other compounds. However, there is still a gap in unlocking the relationship between LAB, soil, and plant hosts. Through a review of the literature and metadata, this review aims to discuss the less-explored relevance of LAB in soil-plant systems and spotlight the prospects for increased acceptance as sustainable and safe soil and plant health enhancers. The first part concentrates on analyzing the existing metadata, while the discussion part essentially focus on literature review.</p>
</div>
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</div>
</div>
<div id="preview-section-introduction">
<div class="Introduction u-font-serif text-s u-margin-l-ver">
<h2 class="u-h4 u-margin-s-bottom">Introduction</h2>
<section id="s0005">
<p id="p0035">LAB are low guanine-cytosine DNA, Gram-positive, microaerophilic, nonsporulating, lacking cytochromes, fermentative, rod or coccus bacteria (Bintsis, 2018). Their name is derived from the fact that the main end product of carbohydrates catabolism is lactic acid, but also produces other compounds (König and Fröhlich, 2017). They are classified into different genera including <em>Aerococcus, Alloiococcus, Carnobacterium, Enterococcus, Lactobacillus, Lactococcus, Leuconostoc, Pediococcus, Streptococcus, Tetragenococcus, Vagococcus,</em> as well as <em>Bifidobacterium.</em> Phylogenetically, the latter one, together with <em>Propionibacterium, Brevibacterium,</em> and the microbacteria looks like <em>actinomycete</em> (Axelsson, 2004; Pot et al., 1994). They habit rich-nutrient areas (milk, meat, fruits, vegetables, beverages), especially fermented or decomposing ones; sewage; plants; human and animal gut, respiratory and genital tracks (Raman et al., 2022). LAB are preferred for food biopreservation because they are safe to consume, improve taste, and during storage they naturally dominate the microflora of many foods and inhibit the growth of food-spoiling bacteria (Stiles, 1996). The capacity of LAB to produce organic acids, phenolic compounds, antimicrobial (fungal, bacterial) metabolites, flavor substances, and bacteriocins (Fig. 1) has put them among the best food preservatives (Dalié et al., 2010; Delves-Broughton et al., 1996). They are used in wineries and breweries (for starting the malolactic fermentation), bakeries, and other plant and animal-based foods and drinks factories and play big roles in the production of cheese, bread, yogurt, silage, and others (Nguyen et al., 2015). Additionally, LAB have shown capabilities in reducing the malodor of decomposing organic material (DuPonte and Fischer, 2012) and when consumed by livestock in their feed and/or water help promote healthy gut flora, enhance their immune systems, and aid in digestion (probiotic) (Corcionivoschi et al., 2010; Fuentes Fajardo et al., 2012). These important uses of LAB have led to a thorough study of their physiology and the bioactive compounds they produce and proven their safety and value for humans and animals health as probiotics (Garsa et al., 2014; Żukiewicz-Sobczak et al., 2014).</p>
<p id="p0040">Although this sole role played by LAB in the food industry and as probiotics is well documented, advances in knowledge of soil-plant-bacteria interactions have kept pointing to the additional vital importance of these bacteria in enhancing plant and soil health and resilience as a promising strategy for stabilizing plant production in these climate-changing and population growing times (Lamont et al., 2017; Smith et al., 2015). The mutual and symbiotic relationship between these three without causing any harm to either has helped the evolution and survival of LAB, as well as studies on them. Recently, studies on plant growth-promoting properties of LAB are increasing in number and scope and show that they are effective biofertilizers as they improve nutrient availability, biocontrol agents of a wide variety of fungal and bacterial phytopathogens, and biostimulants as they promote plant growth and seed germination, as well as alleviating various abiotic stresses (Afanador-Barajas et al., 2021; Mohd Jaini et al., 2022; Yaghoubi Khanghahi et al., 2021; Zhang, 2016).</p>
<p id="p0045">Apart from decomposing macromolecular substances in organic material, degrading indigestible polysaccharides, and transforming undesirable flavor substances especially during composting (Wang et al., 2021), it was demonstrated that LAB with other useful (effective) microorganisms enhance the release of nutrients necessary for soil fertility, plant growth, and also produce antimicrobial secondary metabolites. Different studies have proven an increase in root and shoot length, plant biomass, IAA, and other organic acids following the addition of organic matter treated with LAB compared to the untreated control, and this has resulted in increased yields (Caplice, 1999; Higa and Kinjo, 1989; Lamont et al., 2017; Primavesi and Molina, 1984). LAB are used together with other microorganisms to accelerate decomposition during compost and compost teas making for soil amendment and nutrient mineralization before or after planting (Higa and Kinjo, 1989). Lactic acid bacteria culture, diluted with water, and mixed with other nutrients may be applied on shoots or leaves (overdose leads to loss of fruits sweetness) and even seeds to fight fungal problems and induce germination (Hamed et al., 2011). During metabolism, they produce a variety of compounds including different active antimicrobial substances, organic acids, hydrogen peroxide, bacteriocins, short-chain fatty acids, amines, vitamins, carbon dioxide, and exopolysaccharides (Kumariya et al., 2019; Todorov et al., 2012). Bacteriocins are &lt;60 amino acids long, cationic, hydrophobic, and are synthesized by ribosomes. In sufficient amounts, together with produced organic acids, these peptides can kill or inhibit growth of bacteria and other microorganisms competing for the same ecological niche or the same nutrient pool. This role is supported by the fact that many bacteriocins have a narrow host range and are likely to be most effective against related microorganisms competing for the same scarce resources (Deegan et al., 2006; Kumariya et al., 2019). Bacteriocins are classified into three classes with different subclasses according to their molecular properties, length, heat stability, and their mechanisms of action (Chatterjee et al., 2005; Deegan et al., 2006; Diep and Nes, 2002; Garsa et al., 2014; Kumariya et al., 2019; Sun et al., 2018). Up to now, the most known commercially produced bacteriocins are such as nisin (or group N inhibitory substance), produced by <em>Lactococcus lactis</em> and marketed as Nisaplin<img src="https://s.w.org/images/core/emoji/17.0.2/72x72/2122.png" alt="™" class="wp-smiley" style="height: 1em; max-height: 1em;" /> (product description-PD45003-7EN; Danisco, Copenhagen, Denmark), and pediocin PA-1, produced by <em>Pediococcus acidilactici</em>, marketed as ALTA<img src="https://s.w.org/images/core/emoji/17.0.2/72x72/2122.png" alt="™" class="wp-smiley" style="height: 1em; max-height: 1em;" /> 2431 (Kerry Bioscience, Carrigaline, Co. Cork, Ireland), (Deegan et al., 2006).</p>
<p id="p0050">Today, sustainable food production strategies have gained much attention due to the various risks associated with the continuous use of synthetic agricultural inputs (pesticides, chemical fertilizers), including the development of resistance, the resurgence in insects, accumulation of pesticide residues in the food chain, environmental pollution, groundwater contamination, and other health-related risks. Biofertilizers, biopesticides, and biostimulants have shown the ability to manage all those issues in a safe way. Among others, LAB-treated soil, seed, and plants have shown many of these latter-highlighted properties (Dhaliwal and Koul, 2011; Kumariya et al., 2019; Lamont et al., 2017; Raman et al., 2022) and can positively impact soil nutrient balance, plant growth, plant defense, and crop productivity without adverse risks. The use of lactic acid bacteria (LAB) in soil-plant systems has been the subject of increasing interest in recent years, but there is still a need for more comprehensive and contextualized reviews of their use. This study offers a novel and original contribution to the field by providing a detailed examination of the use of LAB in soil-plant systems and highlighting its potential benefits. It synthesizes and summarizes the latest research findings on the use of LAB in soil-plant systems, and identifies research gaps and future directions. By doing so, it provides a valuable resource for researchers and practitioners interested in exploring the use of LAB in soil-plant systems, and contributes to the promotion of sustainable agriculture practices. Therefore, since most studies on plant growth-promoting microorganisms have for a long time focused on common symbiotic rhizosphere and endophytic microorganisms such as rhizobia, mycorrhizae, and endophytic fungi leaving behind other potential groups of organisms including LAB, this study helps explore the functional interactions between LAB and soil-plant hosts. It focuses on other benefits provided by these bacteria, in addition to fermentation, food preservation, and being probiotics. An increased understanding of LAB will improve their acceptance and use in organic farming and other sustainable farming systems.</p>
</section>
</div>
</div>
<div id="preview-section-snippets">
<div class="Snippets u-font-serif text-s">
<h2 class="u-h4 u-margin-l-ver">Section snippets</h2>
<section>
<section id="s0010">
<h2 class="section-title u-h4 u-margin-l-top u-margin-xs-bottom">Materials and methods</h2>
<p id="p0055">This part focuses on collecting, cleaning, sorting, and processing the existing data to extract and quantify the relevant and valuable information to help an in-depth understanding of current findings and insights related to LAB roles in the soil-plant system to later propose the future vistas (Bai et al., 2018; Cheng and Phillips, 2014).</p>
</section>
</section>
<section>
<section id="s0035">
<h2 class="section-title u-h4 u-margin-l-top u-margin-xs-bottom">Results</h2>
<p id="p0085">Overall, in the full dataset, the mean effect size was strong (d = 2.86, CI = (2.214, 2.447), <em>p</em> &lt; 0.001, <em>n</em><img decoding="async" src="https://sdfestaticassets-us-east-1.sciencedirectassets.com/shared-assets/55/entities/dbnd.gif" alt="double bond" />377), indicating that the presence of LAB significantly improves plant growth, defense, and microbial control. To further test whether the inclusion of multiple observations per study affected the results, we run the model again on a reduced dataset that contained only a single, randomly selected independent measurement and this resulted also in a positive effect size as there was little</p>
</section>
</section>
<section>
<section id="s0050">
<h2 class="section-title u-h4 u-margin-l-top u-margin-xs-bottom">Discussion</h2>
<p id="p0100">This part reviews and summarizes the current state of understanding on LAB in soil-plant system through analyzing and discussing not only our results but also other relevant published studies.</p>
</section>
</section>
<section>
<section id="s0070">
<h2 class="section-title u-h4 u-margin-l-top u-margin-xs-bottom">Conclusion and future perspectives</h2>
<p id="p0140">Although LAB are part of an effective phytomicrobiome, in addition to their long history of being used in the food industry as food /feed additives, food spoilage preventers, and fermentation agents; they are not studied and exploited yet in their full potential as plant growth promoters and antimicrobial agents. Many studies have proven the relevance and application of LAB as safe, renewable, and effective tools for agriculture, the environment, and humans. LAB contribute to increased</p>
</section>
</section>
<section>
<section id="coi0005">
<h2 id="st0095" class="u-h4 u-margin-l-top u-margin-xs-bottom">Declaration of competing interest</h2>
<p id="p0145">The authors have no relevant financial or non-financial interests to disclose.</p>
</section>
</section>
<section>
<section id="ac0005">
<h2 id="st0100" class="u-h4 u-margin-l-top u-margin-xs-bottom">Acknowledgments</h2>
<p id="p0150">This study was supported by research project No. NAZV QK22010255 of the <span id="gts0005">Ministry of Agriculture of the Czech Republic</span> and by research project No. GAJU 085/2022/Z of the <span id="gts0010">University of South Bohemia in České Budějovice</span>.</p>
</section>
</section>
</div>
</div>
<div id="preview-section-references">
<div class="paginatedReferences u-font-serif text-s">
<header>
<h2 class="u-h4 u-margin-l-ver">References (103)</h2>
</header>
<ul>
<li class="bib-reference u-margin-s-bottom"><span class="u-font-sans"><span class="author u-font-sans">Z. Bai</span><em> et al.</em></span><br />
<h3><a class="anchor title anchor-default" href="https://www.sciencedirect.com/science/article/pii/S016788091830224X" target="_self" rel="noopener"><span class="anchor-text">Effects of agricultural management practices on soil quality: a review of long-term experiments for Europe and China</span></a></h3>
<div class="series">
<h3 class="title">Agric. Ecosyst. Environ.</h3>
</div>
<div class="series">(2018)</div>
</li>
<li class="bib-reference u-margin-s-bottom"><span class="u-font-sans"><span class="author u-font-sans">D.D. Cameron</span><em> et al.</em></span><br />
<h3><a class="anchor title anchor-default" href="https://www.sciencedirect.com/science/article/pii/S1360138513001246" target="_self" rel="noopener"><span class="anchor-text">Mycorrhiza-induced resistance: more than the sum of its parts?</span></a></h3>
<div class="series">
<h3 class="title">Trends Plant Sci.</h3>
</div>
<div class="series">(2013)</div>
</li>
<li class="bib-reference u-margin-s-bottom"><span class="author u-font-sans">E. Caplice</span><br />
<h3><a class="anchor title anchor-default" href="https://www.sciencedirect.com/science/article/pii/S0168160599000823" target="_self" rel="noopener"><span class="anchor-text">Food fermentations: role of microorganisms in food production and preservation</span></a></h3>
<div class="series">
<h3 class="title">Int. J. Food Microbiol.</h3>
</div>
<div class="series">(1999)</div>
</li>
<li class="bib-reference u-margin-s-bottom"><span class="u-font-sans"><span class="author u-font-sans">H. Chen</span><em> et al.</em></span><br />
<h3><a class="anchor title anchor-default" href="https://www.sciencedirect.com/science/article/pii/S0924224411001968" target="_self" rel="noopener"><span class="anchor-text">Nanotechnologies in agriculture: new tools for sustainable development</span></a></h3>
<div class="series">
<h3 class="title">Trends Food Sci. Technol.</h3>
</div>
<div class="series">(2011)</div>
</li>
<li class="bib-reference u-margin-s-bottom"><span class="u-font-sans"><span class="author u-font-sans">D.K.D. Dalié</span><em> et al.</em></span><br />
<h3><a class="anchor title anchor-default" href="https://www.sciencedirect.com/science/article/pii/S0956713509002229" target="_self" rel="noopener"><span class="anchor-text">Lactic acid bacteria – potential for control of mould growth and mycotoxins: a review</span></a></h3>
<div class="series">
<h3 class="title">Food Control</h3>
</div>
<div class="series">(2010)</div>
</li>
<li class="bib-reference u-margin-s-bottom"><span class="u-font-sans"><span class="author u-font-sans">L.H. Deegan</span><em> et al.</em></span><br />
<h3><a class="anchor title anchor-default" href="https://www.sciencedirect.com/science/article/pii/S0958694605002827" target="_self" rel="noopener"><span class="anchor-text">Bacteriocins: biological tools for bio-preservation and shelf-life extension</span></a></h3>
<div class="series">
<h3 class="title">Int. Dairy J.</h3>
</div>
<div class="series">(2006)</div>
</li>
<li class="bib-reference u-margin-s-bottom"><span class="u-font-sans"><span class="author u-font-sans">Y. Fang</span><em> et al.</em></span><br />
<h3><a class="anchor title anchor-default" href="https://www.sciencedirect.com/science/article/pii/S0304423822002709" target="_self" rel="noopener"><span class="anchor-text">Effect of container size, substrate composition, and genotype on growth and fruit quality of young southern highbush blueberry in a container-based intensive production system</span></a></h3>
<div class="series">
<h3 class="title">Sci. Hortic.</h3>
</div>
<div class="series">(2022)</div>
</li>
<li class="bib-reference u-margin-s-bottom"><span class="u-font-sans"><span class="author u-font-sans">V. Giassi</span><em> et al.</em></span><br />
<h3><a class="anchor title anchor-default" href="https://www.sciencedirect.com/science/article/pii/S0944501315300367" target="_self" rel="noopener"><span class="anchor-text">Bacteria as growth-promoting agents for citrus rootstocks</span></a></h3>
<div class="series">
<h3 class="title">Microbiol. Res.</h3>
</div>
<div class="series">(2016)</div>
</li>
<li class="bib-reference u-margin-s-bottom"><span class="u-font-sans"><span class="author u-font-sans">S.J. Grayston</span><em> et al.</em></span><br />
<h3><a class="anchor title anchor-default" href="https://www.sciencedirect.com/science/article/pii/S0038071797001247" target="_self" rel="noopener"><span class="anchor-text">Selective influence of plant species on microbial diversity in the rhizosphere</span></a></h3>
<div class="series">
<h3 class="title">Soil Biol. Biochem.</h3>
</div>
<div class="series">(1998)</div>
</li>
<li class="bib-reference u-margin-s-bottom"><span class="u-font-sans"><span class="author u-font-sans">C. Hu</span><em> et al.</em></span><br />
<h3><a class="anchor title anchor-default" href="https://www.sciencedirect.com/science/article/pii/S1161030112001566" target="_self" rel="noopener"><span class="anchor-text">Long-term effective microorganisms application promote growth and increase yields and nutrition of wheat in China</span></a></h3>
<div class="series">
<h3 class="title">Eur. J. Agron.</h3>
</div>
<div class="series">(2013)</div>
</li>
</ul>
</div>
</div>
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<hr />
<h1 class="content-title">Application of Lactic Acid Bacteria (LAB) in Sustainable Agriculture: Advantages and Limitations</h1>
<div id="ui-ncbiinpagenav-1" class="jig-ncbiinpagenav" data-jigconfig="smoothScroll: false, allHeadingLevels: ['h2'], headingExclude: ':hidden,.nomenu'">
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<h2 id="abstract-a.l.b.qtitle" class="head no_bottom_margin ui-helper-clearfix">Abstract</h2>
<div>
<p class="p p-first-last">Lactic acid bacteria (LAB) are significant groups of probiotic organisms in fermented food and are generally considered safe. LAB regulate soil organic matter and the biochemical cycle, detoxify hazardous chemicals, and enhance plant health. They are found in decomposing plants, traditional fermented milk products, and normal human gastrointestinal and vaginal flora. Exploring LAB identified in unknown niches may lead to isolating unique species. However, their classification is quite complex, and they are adapted to high sugar concentrations and acidic environments. LAB strains are considered promising candidates for sustainable agriculture, and they promote soil health and fertility. Therefore, they have received much attention regarding sustainable agriculture. LAB metabolites promote plant growth and stimulate shoot and root growth. As fertilizers, LAB can promote biodegradation, accelerate the soil organic content, and produce organic acid and bacteriocin metabolites. However, LAB show an antagonistic effect against phytopathogens, inhibiting fungal and bacterial populations in the rhizosphere and phyllosphere. Several studies have proposed the LAB bioremediation efficiency and detoxification of heavy metals and mycotoxins. However, LAB genetic manipulation and metabolic engineered tools provide efficient cell factories tailor-made to produce beneficial industrial and agro-products. This review discusses lactic acid bacteria advantages and limitations in sustainable agricultural development.</p>
</div>
<div class="sec"><strong class="kwd-title">Keywords: </strong><span class="kwd-text">lactic acid bacteria, sustainable, agricultural, plant growth, biocontrol, bioremediation</span></div>
</div>
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<h2 id="sec1-ijms-23-07784title" class="head no_bottom_margin ui-helper-clearfix">1. Introduction</h2>
<p class="p p-first">Agriculture is an important economic sector in many countries, and according to the FAO, 37% of the global land area is dedicated to agriculture [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B1-ijms-23-07784" aria-expanded="false" aria-haspopup="true">1</a>]. Conventional farming uses chemical fertilizers and pesticides to boost yield and production. However, increasing the usage of chemical fertilizers affects ecological balance and food safety and is the main causative factor of land and water pollution. In recent years, sustainable agriculture has drawn the attention of the global community, and this approach promotes organic farming in the context of soil health, securing environmental quality. The interaction between plants and microbes is an integral part of sustainable agriculture. Therefore, microbial-based agricultural practices and advancements could promote plant health and soil fertility. Indeed, this approach may secure food for people and ensure a profit and global health. Agricultural microbiology deals with the plant-associated microbes and their application to minimize disease and increase soil fertility. In addition, soil fertility is improved by the microbes’ decomposition process and the addition of adequate plant nutrients. The interaction between plants and beneficial microorganisms in the rhizosphere is a symbiotic relationship: both species are benefited. In addition, the microbes play a crucial role in plant growth promotion, improving nutrient acquisition, and protecting the plant from biotic and abiotic stress [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B2-ijms-23-07784" aria-expanded="false" aria-haspopup="true">2</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B3-ijms-23-07784" aria-expanded="false" aria-haspopup="true">3</a>]. The genera <em>Rhizobium</em>, <em>Bacillus</em>, and <em>Pseudomonas</em>, as well as mycorrhizal fungi, are beneficial microorganisms in the soil [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B4-ijms-23-07784" aria-expanded="false" aria-haspopup="true">4</a>]. In contrast, several pathogenic fungi and bacterial species seriously affect the yield and quality of agricultural products. Therefore, plant pathogenic fungi and insects are enormous challenges to sustainable agriculture. For this reason, developing highly potential and novel antimicrobial agents is a high priority to increase the yield and raise incomes for farmers. LAB are ubiquitous members of many plant microbiomes, but functional information regarding the interaction between LAB and their hosts is lacking. In addition, plant-root-associated rhizobacteria are abundant in soil, while LAB are minimal and not dominant in organic farming soil [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B5-ijms-23-07784" aria-expanded="false" aria-haspopup="true">5</a>]. LAB promote seed germination, increase soil fertility, aeration, and solubility, alleviate various abiotic stress, and neutralize toxic gasses. However, LAB plant-growth-promoting properties are not well explored and have limited evidence in the literature.</p>
<p class="p p-last">A comprehensive understanding of LAB is that they are a phylogenetically diverse group of Gram-positive bacteria. They are rod-shaped or spherical, non-spore-forming, and catalase-negative bacteria. LAB strains are fastidious microbes, require expensive media nitrogen sources, and have limited biosynthetic pathways. LAB have GRAS (Generally Recognized as Safe) status by the Food and Drug Administration. They are safe for human and animal consumption and have become ideal for commercial development [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B6-ijms-23-07784" aria-expanded="false" aria-haspopup="true">6</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B7-ijms-23-07784" aria-expanded="false" aria-haspopup="true">7</a>]. LAB strains show probiotic properties and are used in the food and dairy industry. Among them, Lactobacilli and cocci have been predominantly used in food industry. Lactobacillus species transform undesirable flavor substances in the environment. At the same time, they are decomposing macromolecules and complex biomolecule substances. LAB produce short-chain fatty acids, amines, organic acids, bacteriocins, vitamins, and exopolysaccharides [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B8-ijms-23-07784" aria-expanded="false" aria-haspopup="true">8</a>]. Bacteriocin metabolites are toxic to microbes and are the most promising for developing antibiotic drugs with probiotic properties. In addition, organic acids are the prominent secondary metabolites that exhibit antifungal activity and preservative effects in fermented food and silage [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B9-ijms-23-07784" aria-expanded="false" aria-haspopup="true">9</a>]. However, most inhibitory compounds are secondary metabolites produced after 48 h of LAB fermentation [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B10-ijms-23-07784" aria-expanded="false" aria-haspopup="true">10</a>]. Furthermore, LAB fatty acid metabolites exhibit antimicrobial properties and protect host cells against infections [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B11-ijms-23-07784" aria-expanded="false" aria-haspopup="true">11</a>]. LAB-derived unsaturated fatty acids and hydroxyl unsaturated fatty acids exhibit antifungal activity. Furthermore, glycolipid biosurfactants play a significant role in preventing bacterial attachment and eradicating biofilm [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B12-ijms-23-07784" aria-expanded="false" aria-haspopup="true">12</a>]. In addition, biosurfactants have broad applications in bioremediation, biodegradation, and the agricultural, cosmetic, and pharmaceutical industries. LAB metabolites indicated a synergistic effect in pathogenic microbes [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B13-ijms-23-07784" aria-expanded="false" aria-haspopup="true">13</a>]. Hashemi and Jafarpour demonstrated that LAB-incorporated Konjac-based edible film prevents fungal growth in fresh fruits and positively impacts their shelf life [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B14-ijms-23-07784" aria-expanded="false" aria-haspopup="true">14</a>]. Furthermore, several studies have shown that LAB could produce antifungal and antibacterial substances to inhibit the growth of pathogenic microbes [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B7-ijms-23-07784" aria-expanded="false" aria-haspopup="true">7</a>]. In addition, LAB culture conditions such as temperature, low pH, and anaerobic conditions inhibit various mold and food-borne pathogens [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B8-ijms-23-07784" aria-expanded="false" aria-haspopup="true">8</a>]. Thus, the LAB characterized by antagonistic properties are crucial to countering potential pathogens [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B15-ijms-23-07784" aria-expanded="false" aria-haspopup="true">15</a>]. LAB strains are a promising biocontrol agent; they have a plant growth stimulation effect and inhibit phytopathogenic microbes [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B3-ijms-23-07784" aria-expanded="false" aria-haspopup="true">3</a>]. In addition, LAB controls the insects and pests and is involved in bioremediation, and the general agricultural application of LAB is illustrated in <a class="fig-table-link figpopup" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/figure/ijms-23-07784-f001/" target="figure" rel="noopener">Figure 1</a>.</p>
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<p><a class="inline_block ts_canvas" href="https://www.ncbi.nlm.nih.gov/core/lw/2.0/html/tileshop_pmc/tileshop_pmc_inline.html?title=Click%20on%20image%20to%20zoom&amp;p=PMC3&amp;id=9322495_ijms-23-07784-g001.jpg" target="tileshopwindow" rel="noopener"><img decoding="async" class="tileshop" title="Click on image to zoom" src="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/bin/ijms-23-07784-g001.jpg" alt="An external file that holds a picture, illustration, etc. Object name is ijms-23-07784-g001.jpg" /></a></p>
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<div><a class="figpopup" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/figure/ijms-23-07784-f001/" target="figure" rel="noopener">Figure 1</a></div>
<div class="caption">
<p>Lactic acid bacteria agricultural application. (<strong>A</strong>). Anti-bacterial and anti-fungal activity; (<strong>B</strong>) biopesticides and insecticides; (<strong>C</strong>) biofertilizer increases soil fertility, aeration and retention of moisture content, elevates the mineral uptake and organic decomposition, acetifies the soil and reduces pest diseases. (<strong>D</strong>) IAA, cytokinin, and siderophore secretion increases the root and shoot length and solubilizes the phosphate in the soil. (<strong>E</strong>) Heavy metal removal, detoxification of fungal mycotoxins, acidification by LA and organic acid, increases organic decomposition, and increases the organic content in the soil, biodegradation. (<strong>F</strong>) CRISPR-Cas systems and derived molecular machines, endogenous or exogenous engineering to enhanced functional attributes.</p>
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<h2 id="sec2-ijms-23-07784title" class="head no_bottom_margin ui-helper-clearfix">2. Lactic Acid Bacteria (LAB)</h2>
<p class="p p-first">LAB play a multifaceted role in the food, agricultural, and medicine sectors and has GRAS (Generally Recognized as Safe) status by the Food and Drug Administration [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B16-ijms-23-07784" aria-expanded="false" aria-haspopup="true">16</a>]. They are safe for human and animal consumption and have become ideal for commercial development [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B6-ijms-23-07784" aria-expanded="false" aria-haspopup="true">6</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B7-ijms-23-07784" aria-expanded="false" aria-haspopup="true">7</a>]. LAB species are used in many food and feed industries, and those industries are constantly seeking potential strains to enhance sensor and product quality. They are isolated from decomposing plant material, vegetables, fruits, dairy products, fermented food, fermented beverages, silages, juices, sewage, and the gastrointestinal tracts and cavities of humans and animals [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B17-ijms-23-07784" aria-expanded="false" aria-haspopup="true">17</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B18-ijms-23-07784" aria-expanded="false" aria-haspopup="true">18</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B19-ijms-23-07784" aria-expanded="false" aria-haspopup="true">19</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B20-ijms-23-07784" aria-expanded="false" aria-haspopup="true">20</a>] (<a class="fig-table-link figpopup" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/figure/ijms-23-07784-f002/" target="figure" rel="noopener">Figure 2</a>). Although LAB identification is challenging, contemporary 16S rDNA sequencing techniques accurately identify individual strains, but phenotypic methods are unreliable [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B21-ijms-23-07784" aria-expanded="false" aria-haspopup="true">21</a>]. Therefore, the molecular taxonomy and genome sequencing of LAB strains become an effective method for identifying species levels. <em>Lactobacillus plantarum</em>, <em>L. casei</em>, <em>Lactococcus</em>, <em>Bifidobacterium</em>, and <em>Streptococcus lactis</em> are isolated from the intestinal tract of animals and fermented food [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B22-ijms-23-07784" aria-expanded="false" aria-haspopup="true">22</a>]. <em>L. acetotolerans</em>, <em>L. pontis</em>, and <em>L. suebicus</em> species show high survival rates in the cow gut [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B23-ijms-23-07784" aria-expanded="false" aria-haspopup="true">23</a>]. LAB constitute part of the animal gut, and fermented food and silage are recognized as the primary niche of LAB activity. They have been clustered into two different groups, homo- and hetero-fermentative strains, based on lactic acid (LA) yield. Homo-fermentation yields two molecules of LA, while hetero-fermentation yields one molecule of LA and one molecule of ethanol or acetic acid by utilizing glucose. Homo-fermentative strains are commercially important, and they can produce optically pure LA by downstream processes [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B24-ijms-23-07784" aria-expanded="false" aria-haspopup="true">24</a>]. Lactic acid (LA) is a by-product of metabolic activities produced by LAB. Therefore, silage can be considered a primary source to transmit and deliver the probiotic LAB species. Fermented cattle milk is an LA source that enhances food quality and flavor.</p>
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<div><a class="figpopup" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/figure/ijms-23-07784-f002/" target="figure" rel="noopener">Figure 2</a></div>
<div class="caption">
<p>LAB occurrence and dynamism in distinct ecology niches: A widespread application in agricultural, environmental and functional health properties.</p>
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<p class="p p-last">LAB are widespread in dairy and agro-product development, utilizing carbon as an energy source. LAB-based agro-products are safe, eco-friendly, have low production costs, and have fast development rates. Most plant-growth-promoting microorganisms (PGPM) are bacteria/fungi that can promote plant growth, suppress pathogenicity, and accelerate nutrient availability and uptake. For some time, LAB have been used in agriculture as biofertilizers and biocontrol agents to promote plant growth, but the mechanisms of LAB have yet to be explored. LAB are diversified in the phyllosphere, the endosphere in the seed, and the rhizosphere of many plants [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B3-ijms-23-07784" aria-expanded="false" aria-haspopup="true">3</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B25-ijms-23-07784" aria-expanded="false" aria-haspopup="true">25</a>]. Several LAB strains were isolated from rhizospheres. In addition, <em>L. lactis</em> species have been isolated from horticultural and fruit crop plantations [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B26-ijms-23-07784" aria-expanded="false" aria-haspopup="true">26</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B27-ijms-23-07784" aria-expanded="false" aria-haspopup="true">27</a>]. They facilitate tissue repair in damaged plants, while cellular components are released for defense/interaction. In the rhizosphere, plants release various chemical substances, including 20–40% of the carbohydrates and organic acids [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B28-ijms-23-07784" aria-expanded="false" aria-haspopup="true">28</a>]. Those metabolites attract the LAB and colonize the root systems’ surface. LAB can also survey seed and plant propagules such as endophytes [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B25-ijms-23-07784" aria-expanded="false" aria-haspopup="true">25</a>]. The carbohydrate-rich environment appears ideal for LAB proliferation. They quickly break down the organic acids and acidify the rhizosphere [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B29-ijms-23-07784" aria-expanded="false" aria-haspopup="true">29</a>]. At the same time, the acidic environment and weak organic acid exert a toxic effect on other microorganisms. LAB diversity in soils depends on carbon richness, which is abundant in the fruit tree rhizosphere. <em>Lactobacillus lactis</em> subsp. <em>lactis</em> is broadly distributed in horticultural crops. They have been isolated from the mulberry rhizosphere [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B27-ijms-23-07784" aria-expanded="false" aria-haspopup="true">27</a>]. Moreover, LAB are halotolerant and survive in low water intensity and high salinity in dry environments. Fhoula et al. (2013) isolated and characterized 119 LAB strains from the rhizosphere of olive trees and desert truffles, and they showed tremendous antimicrobial activity [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B30-ijms-23-07784" aria-expanded="false" aria-haspopup="true">30</a>].</p>
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<div id="sec3-ijms-23-07784" class="tsec sec">
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<h2 id="sec3-ijms-23-07784title" class="head no_bottom_margin ui-helper-clearfix">3. Biocontrol Agents of LAB</h2>
<p class="p p-first-last">Fungal contamination of food crops costs the world an estimated USD 60 billion a year in lost agricultural production [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B31-ijms-23-07784" aria-expanded="false" aria-haspopup="true">31</a>]. About 50% of fruits and vegetables in tropical regions are lost every year due to fungal spoilage [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B6-ijms-23-07784" aria-expanded="false" aria-haspopup="true">6</a>]. The Food and Agricultural Organization (FAO) estimates that mycotoxin contamination of food crops globally is 25% and could be up to 60–80% [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B32-ijms-23-07784" aria-expanded="false" aria-haspopup="true">32</a>]. Maize, groundnuts, and tree nuts are the most common foods at risk of contamination with aflatoxins. They are most commonly produced by <em>Aspergillus</em>, <em>Penicillium</em>, <em>Fusarium</em>, and <em>Alternaria genera</em>, affecting cereal grains [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B33-ijms-23-07784" aria-expanded="false" aria-haspopup="true">33</a>]. Among them, <em>F. oxysporum</em> is a soil-borne pathogenic fungi that is a significant causative agent in damage to horticultural crops. <em>Fusarium</em> wilt is a common disease in the Solanaceae family. <em>Fusarium</em> species decrease crop yield and cause considerable losses in banana production. In this context, LAB control pathogenicity in agricultural and horticultural crops, as listed in <a class="fig-table-link figpopup" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/table/ijms-23-07784-t001/" target="table" rel="noopener">Table 1</a>. LAB strains are isolated from dairy products and control soil-borne pathogens. In addition, <em>Lactobacillus buchneri</em> isolated from corn silages showed antifungal activity against <em>F. graminearum</em> [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B34-ijms-23-07784" aria-expanded="false" aria-haspopup="true">34</a>]. Hamed et al. (2011) demonstrated that seed pre-treatment before planting with an LAB nutritive solution reduces the damping-off diseases [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B35-ijms-23-07784" aria-expanded="false" aria-haspopup="true">35</a>]. Several studies have shown that LAB could produce antifungal and antibacterial substances to inhibit the growth of pathogenic microbes [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B7-ijms-23-07784" aria-expanded="false" aria-haspopup="true">7</a>]. Furthermore, lactic acid bacteria, yeast, and phototrophic bacteria culture broth and cell-free extract promote plant growth and protect the plants from abiotic stress [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B36-ijms-23-07784" aria-expanded="false" aria-haspopup="true">36</a>]. Naturally fermented microbial cocktails are thought to be plant stimulants, and diluted solutions are spraying onto the plant and soil. A simple method to utilize LAB is an aqueous extract/culture filtrated to reduce the <em>E. coli</em> population and distribution in fermented food and plants. The earlier implementation of LAB to agricultural and horticultural crops may reduce the risk factors without disturbing the ecosystem. For example, Laury-Shaw et al., demonstrated that an LAB aqueous solution spray could reduce the <em>E. coli</em> growth in spinach [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B37-ijms-23-07784" aria-expanded="false" aria-haspopup="true">37</a>].</p>
<div id="ijms-23-07784-t001" class="table-wrap anchored whole_rhythm">
<h3>Table 1</h3>
<div class="caption">
<p>Biocontrol properties of LAB on agricultural and horticultural crops.</p>
</div>
<div class="xtable">
<table class="rendered small default_table" frame="hsides" rules="groups">
<thead>
<tr>
<th colspan="1" rowspan="1" align="left" valign="middle">Strain Name (LAB)</th>
<th colspan="1" rowspan="1" align="left" valign="middle">Pathogens</th>
<th colspan="1" rowspan="1" align="left" valign="middle">Food Crops</th>
<th colspan="1" rowspan="1" align="left" valign="middle">References</th>
</tr>
</thead>
<tbody>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle">LAB</td>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>Alternaria alternata</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">Post-harvest decay</td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B38-ijms-23-07784" aria-expanded="false" aria-haspopup="true">38</a>]</td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>Lactobacillus plantarum</em> CUK-501</td>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>Aspergillus flavu</em>, <em>Fusarium graminearum</em>, <em>Rhizopus stolonifer</em>, <em>B. cinerea</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">Cucumber</td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B17-ijms-23-07784" aria-expanded="false" aria-haspopup="true">17</a>]</td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle">LAB</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Bacteria and fungi</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Vegetables and fruits</td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B18-ijms-23-07784" aria-expanded="false" aria-haspopup="true">18</a>]</td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>L. plantarum</em> IMAU10014,</td>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>Penicillium digitatum</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>Citrus japonica</em> (kumquat),</td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B39-ijms-23-07784" aria-expanded="false" aria-haspopup="true">39</a>]</td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>Pediococcus pentosaceous</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>P. expansum</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>Pyrus</em> (pear), <em>Vitis vinifera</em> (grape), <em>Prunus</em> (plum)</td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B40-ijms-23-07784" aria-expanded="false" aria-haspopup="true">40</a>]</td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>L. plantarum</em> LR/14</td>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>A. niger</em>, <em>R. stolonifer</em>, <em>Mucor racemosus</em>, <em>P. chrysogenum</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">Wheat seeds</td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B41-ijms-23-07784" aria-expanded="false" aria-haspopup="true">41</a>]</td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle">LAB</td>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>Fusarium</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">Cereal-based products</td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B36-ijms-23-07784" aria-expanded="false" aria-haspopup="true">36</a>]</td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>Lactococcus lactis</em> subsp. <em>lactis</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>Rhizopus stolonifer</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>Artocarpus heterophyllus</em> (jackfruit)</td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B42-ijms-23-07784" aria-expanded="false" aria-haspopup="true">42</a>]</td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle">Lactic acid bacteria 43, LCM5</td>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>Penicillium expansum</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>Malus domestica</em> (apple)</td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B43-ijms-23-07784" aria-expanded="false" aria-haspopup="true">43</a>]</td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle">LAB</td>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>Zymoseptoria tritici</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">Wheat</td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B44-ijms-23-07784" aria-expanded="false" aria-haspopup="true">44</a>]</td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>L. plantarum</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">Filamentous fungi and yeast</td>
<td colspan="1" rowspan="1" align="left" valign="middle">&#8211;</td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B45-ijms-23-07784" aria-expanded="false" aria-haspopup="true">45</a>]</td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>Lactobacilli</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>F. verticillioides</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">Ensiled corns</td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B46-ijms-23-07784" aria-expanded="false" aria-haspopup="true">46</a>]</td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle">LAB</td>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>Fusarium malting</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">Wheat grains</td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B47-ijms-23-07784" aria-expanded="false" aria-haspopup="true">47</a>]</td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>L. sucicola</em>, <em>P. acidilactici</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>P. digitatum</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">Citrus</td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B48-ijms-23-07784" aria-expanded="false" aria-haspopup="true">48</a>]</td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>L. plantarum</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">&#8211;</td>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>Fragaria x ananassa</em> (strawberry)</td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B49-ijms-23-07784" aria-expanded="false" aria-haspopup="true">49</a>]</td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>L. plantarum</em>, <em>L. pentosus</em>, <em>P. pentosaceus</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>A. niger</em>, <em>Cladosporium sphaerospermum</em>, <em>P. chrysogenum</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">Pitaya (cactus fruit)</td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B50-ijms-23-07784" aria-expanded="false" aria-haspopup="true">50</a>]</td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>L. plantarum</em> TR7</td>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>P. expansum</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>Solanum lycopersicum</em> (tomato)</td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B51-ijms-23-07784" aria-expanded="false" aria-haspopup="true">51</a>]</td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle">LAB</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Blackening</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Banana</td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B52-ijms-23-07784" aria-expanded="false" aria-haspopup="true">52</a>]</td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>L. plantarum</em> TE10</td>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>Aspergillus flavus</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">Fresh maize seeds</td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B53-ijms-23-07784" aria-expanded="false" aria-haspopup="true">53</a>]</td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>L. plantarum</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>Botrytis cinerea</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">Horticultural crops</td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B54-ijms-23-07784" aria-expanded="false" aria-haspopup="true">54</a>]</td>
</tr>
</tbody>
</table>
</div>
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<h2 id="sec4-ijms-23-07784title" class="head no_bottom_margin ui-helper-clearfix">4. Antibacterial Activity of LAB</h2>
<p class="p p-first">LAB strains make different classes of chemical compounds. Among them, the bacteriocins group is the best-studied one. Bacteriocins are toxic to microbes and are the most promising primary metabolites for developing antibiotic drugs. Bacteriocins are peptides or proteins synthesized by ribosomes, and they inhibit the growth and reproduction of a variety of bacteria [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B55-ijms-23-07784" aria-expanded="false" aria-haspopup="true">55</a>]. Many researchers have proposed the mechanism behind the activity. In addition, bacteriocins may inhibit nucleic acid and protein synthesis [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B56-ijms-23-07784" aria-expanded="false" aria-haspopup="true">56</a>]. They are divided into two categories. The first is lantibiotics, containing lanthionine or the absence of lanthionine [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B57-ijms-23-07784" aria-expanded="false" aria-haspopup="true">57</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B58-ijms-23-07784" aria-expanded="false" aria-haspopup="true">58</a>]. The <em>Lactobacillus lactis</em>-derived lanthionine group polycyclic antibacterial peptide causes cell damage in Gram-positive bacteria [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B59-ijms-23-07784" aria-expanded="false" aria-haspopup="true">59</a>]. The second category of bacteriocins is Helveticin M and Helveticin J, produced by <em>L. crispatus</em> and <em>L. helveticus</em>. Both bacteriocins are used as food preservatives. Recently, Rooney et al., proposed bacteriocin-mediated resistance in plants to control bacterial pathogens in commercial crops [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B60-ijms-23-07784" aria-expanded="false" aria-haspopup="true">60</a>].</p>
<p>Furthermore, biosurfactants of bacterial origin have broad applications in the food, agriculture, and pharmaceutical industries. Bacterial origin biosurfactants exhibit antibacterial, antifungal, antimycoplasma, and antiviral properties [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B12-ijms-23-07784" aria-expanded="false" aria-haspopup="true">12</a>]. Biosurfactants cause membrane damage in pathogens, creating pores on lipid membranes and disrupting porosity and membrane integrity. Additionally, biosurfactants detach microbial cells from surfaces through sloughing, which may cause erosion and abrasion [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B61-ijms-23-07784" aria-expanded="false" aria-haspopup="true">61</a>]. However, biosurfactants regulate quorum sensing signaling and quorum-sensing-dependent activities. For example, biofilm formation, motility, and pathogenicity are influenced by this signaling. Rodrigues et al., reported that biosurfactants derived from <em>Lactococcus lactis</em> inhibit the bacteria and yeast cell adhesion [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B62-ijms-23-07784" aria-expanded="false" aria-haspopup="true">62</a>]. Fermented dairy products exhibit antimicrobial activity against <em>E. coli</em>, while glycolipid biosurfactants responded to the activity [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B63-ijms-23-07784" aria-expanded="false" aria-haspopup="true">63</a>].</p>
<p class="p p-last">Interestingly, <em>L. plantarum</em> significantly reduced the virulence factors and inhibited the biofilm formation of pathogenic bacteria [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B64-ijms-23-07784" aria-expanded="false" aria-haspopup="true">64</a>]. Lactobacillus rhamnosus effective against <em>Pseudomonas aeruginosa</em>, <em>Staphylococcus aureus</em> and <em>E. coli</em>. Shrestha et al., reported LAB inhibits plant pathogenic bacteria <em>Ralstonia solanacearum</em> [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B65-ijms-23-07784" aria-expanded="false" aria-haspopup="true">65</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B66-ijms-23-07784" aria-expanded="false" aria-haspopup="true">66</a>]. In addition, <em>L. plantarum</em> exhibits antagonistic effects against the phytopathogenic bacteria <em>P. campestris</em> [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B67-ijms-23-07784" aria-expanded="false" aria-haspopup="true">67</a>]. Glycolipid biosurfactants eradicate bacterial biofilm formation and surface adhesion [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B12-ijms-23-07784" aria-expanded="false" aria-haspopup="true">12</a>]. However, a limited number of strains have been reported for their biosurfactant production ability, antimicrobial potential, and inhibition of biofilm formation.</p>
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<h2 id="sec5-ijms-23-07784title" class="head no_bottom_margin ui-helper-clearfix">5. Antifungal Activity of LAB</h2>
<p class="p p-first">Fusarium head blight (FHB) is a severe fungal disease of wheat and cereal crops and affects livestock feed and the quality of seeds. Bafforni et al., demonstrated that <em>L. plantarum</em> and <em>Bacillus</em> species were applied as biocontrol agents to reduce the FHB index [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B68-ijms-23-07784" aria-expanded="false" aria-haspopup="true">68</a>]. In addition, LAB increase the nutritional properties of wheat flour and related bakery products and silage. The food-grade LAB can synthesize several promising and eco-friendly metabolites, acting as a biocontrol agent to inhibit molds on fruits and horticultural crops (<a class="fig-table-link figpopup" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/table/ijms-23-07784-t002/" target="table" rel="noopener">Table 2</a>). The ascomycete fungus <em>Zymoseptoria tritici</em> causes septoria leaf blotch in wheat plants. The primary foliar diseases in wheat are a significant threat to global food grain production. Lynch et al., found that LAB exhibit an antifungal effect against <em>Z. tritici</em> [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B44-ijms-23-07784" aria-expanded="false" aria-haspopup="true">44</a>]. In addition, LAB reduce the toxic agents in wheat and maize grains produced by the filamentous fungi [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B46-ijms-23-07784" aria-expanded="false" aria-haspopup="true">46</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B47-ijms-23-07784" aria-expanded="false" aria-haspopup="true">47</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B53-ijms-23-07784" aria-expanded="false" aria-haspopup="true">53</a>]. De Simone and co-workers demonstrated that the <em>Lactiplantibacillus plantarum</em> species exerted strong antagonism against the necrotrophic fungus <em>Botrytis cinerea</em> [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B54-ijms-23-07784" aria-expanded="false" aria-haspopup="true">54</a>]. Grey mold <em>B. cinerea</em>, an etiological agent, is a typical contaminant of many horticultural crops. Sathe et al., demonstrated that LAB strains could prolong the shelf life of cucumber [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B17-ijms-23-07784" aria-expanded="false" aria-haspopup="true">17</a>]. <em>Lactobacillus plantarum</em> IMAU10014 exhibits strong antifungal activity against citrus green rot [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B39-ijms-23-07784" aria-expanded="false" aria-haspopup="true">39</a>]. Crowley and co-workers reported that <em>Pediococcus pentosaceous</em> showed a broad spectrum of antifungal activity against fruit crop fungal pathogens [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B40-ijms-23-07784" aria-expanded="false" aria-haspopup="true">40</a>]. Furthermore, food-grade LAB control the fruit rot diseases caused by <em>Rhizopus stolonifer</em> in jackfruit [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B42-ijms-23-07784" aria-expanded="false" aria-haspopup="true">42</a>]. Matei et al., reported that LAB protect fresh food products against blue mold fungal infection [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B43-ijms-23-07784" aria-expanded="false" aria-haspopup="true">43</a>]. At the same time, post-harvest decay is the primary source of economic loss, due to infection by the mesophilic fungus <em>P. digitatum</em>. <em>Lactobacillus sucicola</em> and <em>Pediococcus acidilactici</em> showed antifungal activity against <em>P. digitatum</em> and other pathogenic species [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B48-ijms-23-07784" aria-expanded="false" aria-haspopup="true">48</a>]. Several authors reported that LAB exhibits antifungal activity against horticultural and fruit crops [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B38-ijms-23-07784" aria-expanded="false" aria-haspopup="true">38</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B49-ijms-23-07784" aria-expanded="false" aria-haspopup="true">49</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B50-ijms-23-07784" aria-expanded="false" aria-haspopup="true">50</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B51-ijms-23-07784" aria-expanded="false" aria-haspopup="true">51</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B54-ijms-23-07784" aria-expanded="false" aria-haspopup="true">54</a>]. On the other hand, Li et al., demonstrated that edible films embedded with 2% LAB prolong shelf life and prevent banana blackening [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B52-ijms-23-07784" aria-expanded="false" aria-haspopup="true">52</a>]. In addition, the same author observed the antioxidant activity of the composite film, and affirmed its uses in food packaging applications [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B52-ijms-23-07784" aria-expanded="false" aria-haspopup="true">52</a>].</p>
<div id="ijms-23-07784-t002" class="table-wrap anchored whole_rhythm">
<h3>Table 2</h3>
<div class="caption">
<p>Lactic acid bacteria and their active compounds against plant pathogenic fungi.</p>
</div>
<div class="xtable">
<table class="rendered small default_table" frame="hsides" rules="groups">
<thead>
<tr>
<th colspan="1" rowspan="1" align="left" valign="middle">Strains</th>
<th colspan="1" rowspan="1" align="left" valign="middle">Source</th>
<th colspan="1" rowspan="1" align="left" valign="middle">Active Compound</th>
<th colspan="1" rowspan="1" align="left" valign="middle">Active Spectrum</th>
<th colspan="1" rowspan="1" align="left" valign="middle">References</th>
</tr>
</thead>
<tbody>
<tr>
<td colspan="5" rowspan="1" align="left" valign="middle"><strong>Antibacterial</strong></td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>L. plantarum</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">Cucumber pickle</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Organic acids</td>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>Pseudomonas campestris</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B67-ijms-23-07784" aria-expanded="false" aria-haspopup="true">67</a>]</td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle">LAB strain</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Tomato rhizosphere</td>
<td colspan="1" rowspan="1" align="left" valign="middle">None</td>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>Ralstonia solanacearum</em>, <em>Xanthomonas campestris</em> pv. <em>vesicatoria</em>,<br />
<em>Pectobacterium carotovorum</em> subsp. <em>carotovorum</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B65-ijms-23-07784" aria-expanded="false" aria-haspopup="true">65</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B66-ijms-23-07784" aria-expanded="false" aria-haspopup="true">66</a>]</td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle">LAB strain</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Unknown</td>
<td colspan="1" rowspan="1" align="left" valign="middle">None</td>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>Xanthomonas campestris</em> pv. <em>vesicatoria</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B65-ijms-23-07784" aria-expanded="false" aria-haspopup="true">65</a>]</td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>L. lactis</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">Curd</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Glycolipid biosurfactants</td>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>E. coli</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B63-ijms-23-07784" aria-expanded="false" aria-haspopup="true">63</a>]</td>
</tr>
<tr>
<td colspan="5" rowspan="1" align="left" valign="middle"><strong>Antifungal</strong></td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>Lactobacillus</em> species</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Type culture</td>
<td colspan="1" rowspan="1" align="left" valign="middle">3-Phenyllactic acid</td>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>P. expansum</em>, <em>A. flavus</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B13-ijms-23-07784" aria-expanded="false" aria-haspopup="true">13</a>]</td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>L. acidophilus</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">Chicken intestine</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Organic acid</td>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>Fusarium</em> sp., <em>Alternaria alternate</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B36-ijms-23-07784" aria-expanded="false" aria-haspopup="true">36</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B77-ijms-23-07784" aria-expanded="false" aria-haspopup="true">77</a>]</td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>L. amylovorus</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">Gluten-free sourdough</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Fatty acid, LA, salicyclic acid</td>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>P. paneum</em>, <em>Cladosporium</em> sp., <em>Rhizopus oryzae</em>, <em>Endomyces fibuliger</em>, <em>Aspergillus</em> sp., <em>Fusarium culmorum</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B36-ijms-23-07784" aria-expanded="false" aria-haspopup="true">36</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B78-ijms-23-07784" aria-expanded="false" aria-haspopup="true">78</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B79-ijms-23-07784" aria-expanded="false" aria-haspopup="true">79</a>]</td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>L. brevis</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">Brewing barley</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Organic acid, proteinaceous</td>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>A. flavus</em>, <em>F. culmorum</em>, <em>Trichophyton tonsurans</em>, <em>Eurotium repens</em>,<br />
<em>Penicillium</em> sp.</td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B79-ijms-23-07784" aria-expanded="false" aria-haspopup="true">79</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B80-ijms-23-07784" aria-expanded="false" aria-haspopup="true">80</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B81-ijms-23-07784" aria-expanded="false" aria-haspopup="true">81</a>].</td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>L casei</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">Dairy products</td>
<td colspan="1" rowspan="1" align="left" valign="middle">None</td>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>Trichophyton tonsurans</em>, <em>Penicillium</em> sp.</td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B80-ijms-23-07784" aria-expanded="false" aria-haspopup="true">80</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B82-ijms-23-07784" aria-expanded="false" aria-haspopup="true">82</a>]</td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>L. coryniformis</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">Silage, flower, sourdough</td>
<td colspan="1" rowspan="1" align="left" valign="middle">PLA, proteinaceous</td>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>Aspergillus</em> sp., <em>Fusarium</em>, <em>Rhodotorula</em> sp., <em>Talaromyces flavus</em>,<br />
<em>Kluyveromyces</em> sp.</td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B77-ijms-23-07784" aria-expanded="false" aria-haspopup="true">77</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B79-ijms-23-07784" aria-expanded="false" aria-haspopup="true">79</a>]</td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>L. fermentum</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">Fermented food and dairy products</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Proteinaceous, PLA</td>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>A. niger</em>, <em>Fusarium graminearum</em>, <em>A. oryzae</em>, <em>A. niger</em>, <em>Fusarium</em> sp.</td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B83-ijms-23-07784" aria-expanded="false" aria-haspopup="true">83</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B84-ijms-23-07784" aria-expanded="false" aria-haspopup="true">84</a>]</td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>L. harbinensis</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">Type strain</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Fatty acids</td>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>Mucor racemosus</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B85-ijms-23-07784" aria-expanded="false" aria-haspopup="true">85</a>]</td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>L. lactis</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">Wheat semolina</td>
<td colspan="1" rowspan="1" align="left" valign="middle">None</td>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>P. expansum</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B82-ijms-23-07784" aria-expanded="false" aria-haspopup="true">82</a>]</td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>L. mesenteroides</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">Raw milk</td>
<td colspan="1" rowspan="1" align="left" valign="middle">LA, succinic acid, fatty acids</td>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>Penicillium</em> species</td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B86-ijms-23-07784" aria-expanded="false" aria-haspopup="true">86</a>]</td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>L. plantarum</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">Plant materials, food grains, fermented soybean, raw milk</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Fatty acids, LA, cyclic dipeptide, phenyllactic acid, peptides, succinic acid</td>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>Broad spectrum</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B53-ijms-23-07784" aria-expanded="false" aria-haspopup="true">53</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B72-ijms-23-07784" aria-expanded="false" aria-haspopup="true">72</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B77-ijms-23-07784" aria-expanded="false" aria-haspopup="true">77</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B86-ijms-23-07784" aria-expanded="false" aria-haspopup="true">86</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B87-ijms-23-07784" aria-expanded="false" aria-haspopup="true">87</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B88-ijms-23-07784" aria-expanded="false" aria-haspopup="true">88</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B89-ijms-23-07784" aria-expanded="false" aria-haspopup="true">89</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B90-ijms-23-07784" aria-expanded="false" aria-haspopup="true">90</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B91-ijms-23-07784" aria-expanded="false" aria-haspopup="true">91</a>]</td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>L. paracasei</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">Dairy products, raw milk</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Proteinaceous, LA, succinic acid, fatty acids</td>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>Fusarium</em> sp.</td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B86-ijms-23-07784" aria-expanded="false" aria-haspopup="true">86</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B92-ijms-23-07784" aria-expanded="false" aria-haspopup="true">92</a>]</td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>L. pentosus</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">Fruit and fermented food</td>
<td colspan="1" rowspan="1" align="left" valign="middle">PLA</td>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>A. oryzae</em>, <em>A. niger</em>, <em>Fusarium</em> sp.</td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B86-ijms-23-07784" aria-expanded="false" aria-haspopup="true">86</a>]</td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>Pediococcus pentosaceus</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">None</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Proteinaceous, cyclic acids</td>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>Penicillium</em> sp., <em>Aspergillus</em> sp., <em>Fusarium</em> sp., <em>Rhizopus stolonifer</em>, <em>Sclerotium oryzae</em>, <em>Rhizoctonia solani</em>, <em>Botrytis cinerea</em>,<br />
<em>Sclerotinia minor</em>, <em>Rhodotorula</em> sp.</td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B10-ijms-23-07784" aria-expanded="false" aria-haspopup="true">10</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B17-ijms-23-07784" aria-expanded="false" aria-haspopup="true">17</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B77-ijms-23-07784" aria-expanded="false" aria-haspopup="true">77</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B84-ijms-23-07784" aria-expanded="false" aria-haspopup="true">84</a>]</td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>L. reuteri</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">Murine gut, porcine</td>
<td colspan="1" rowspan="1" align="left" valign="middle">None</td>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>F. graminearum</em>, <em>A. niger</em>, <em>Fusarium</em> sp.</td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B80-ijms-23-07784" aria-expanded="false" aria-haspopup="true">80</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B83-ijms-23-07784" aria-expanded="false" aria-haspopup="true">83</a>]</td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>L. sakei</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">Leaves, dandelions, flour</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Peptide, PLA</td>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>A. fumigatus</em>, <em>Fusarium</em> species</td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B77-ijms-23-07784" aria-expanded="false" aria-haspopup="true">77</a>]</td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>L. salivarius</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">Chicken intestine</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Peptide, PLA</td>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>A. nidulans</em>, <em>F. sporotrichioies</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B77-ijms-23-07784" aria-expanded="false" aria-haspopup="true">77</a>]</td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>Weissella cibaria</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">Food grains, fruits,<br />
and vegetables</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Organic acids, proteinaceous</td>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>Fusarium culmorum</em>, <em>Penicillium</em> sp., <em>Aspergillus</em> sp., <em>Rhodotorula</em> sp., <em>Endomyces fibuliger</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B10-ijms-23-07784" aria-expanded="false" aria-haspopup="true">10</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B18-ijms-23-07784" aria-expanded="false" aria-haspopup="true">18</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B93-ijms-23-07784" aria-expanded="false" aria-haspopup="true">93</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B94-ijms-23-07784" aria-expanded="false" aria-haspopup="true">94</a>]</td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>W. confuse</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">Food grains</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Organic acids, proteinaceous</td>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>Penicillium</em> sp., <em>Aspergillus nidulans</em>, <em>Rhodotorula</em> sp.,<br />
<em>Endomyces fibuliger</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B10-ijms-23-07784" aria-expanded="false" aria-haspopup="true">10</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B70-ijms-23-07784" aria-expanded="false" aria-haspopup="true">70</a>]</td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>W. paramesenteroides</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">Fermented wax gourd</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Organic acids</td>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>Penicillium</em> sp., <em>Fusarium graminearum</em>, <em>Rhizopus stolonifer</em>, <em>Sclerotium oryzae</em>, <em>Rhizoctonia solani</em>, <em>Botrytis cinerea</em>,<br />
<em>Sclerotinia minor</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B17-ijms-23-07784" aria-expanded="false" aria-haspopup="true">17</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B93-ijms-23-07784" aria-expanded="false" aria-haspopup="true">93</a>]</td>
</tr>
</tbody>
</table>
</div>
<div id="largeobj_idm140428892727856" class="largeobj-link align_right"><a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/table/ijms-23-07784-t002/?report=objectonly" target="object" rel="noopener">Open in a separate window</a></div>
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<p class="p">Nevertheless, increased resistance of pathogenic fungi toward commercial fungicides and climate change impedes the control of fungi in the food supply and necessitates the development of complementary fungicides. LAB-derived metabolites significantly inhibit the pathogenic fungal population and neutralize the mycotoxin levels in fruit and vegetable crops. In addition, they reduce post-harvest decay and inhibit the production of mycotoxins in fermented food products [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B69-ijms-23-07784" aria-expanded="false" aria-haspopup="true">69</a>]. By increasing the level of the natural antimicrobial compound phenyllactic acid (PLA) during kimchi fermentation, PLA content might enhance the safety of the food products [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B70-ijms-23-07784" aria-expanded="false" aria-haspopup="true">70</a>]. Furthermore, fatty acids derived from <em>L. pentosus</em> exhibit the antifungal activity of various filamentous fungi and yeast pathogens [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B71-ijms-23-07784" aria-expanded="false" aria-haspopup="true">71</a>]. 3-hydroxyl fatty acid derived from <em>L. plantarum</em> inhibited yeasts more actively than filamentous fungi [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B72-ijms-23-07784" aria-expanded="false" aria-haspopup="true">72</a>]. Lappa et al., demonstrated that LAB act as a potential biocontrol agent against toxigenic fungi in table grapes [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B73-ijms-23-07784" aria-expanded="false" aria-haspopup="true">73</a>]. In addition, LAB significantly reduced the mycotoxin level in viticulture by 32–92%. LAB combined with carboxymethyl cellulose coatings on fresh strawberries reduced the yeast and mold growth and improved the fruits’ shelf life [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B49-ijms-23-07784" aria-expanded="false" aria-haspopup="true">49</a>]. In addition, the biocontrol properties of LAB strains on <em>Cucumis sativus</em>, <em>Citrus japonica</em>, <em>Selenicereus undatus</em> (pitahaya), and other fruits and vegetables have also been reported [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B50-ijms-23-07784" aria-expanded="false" aria-haspopup="true">50</a>]. LAB-derived coriolic acid inhibited the phytopathogenic blast fungi [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B74-ijms-23-07784" aria-expanded="false" aria-haspopup="true">74</a>]. However, pathogenic fungi are the primary causative agent for fruit deterioration and cause considerable losses in the viticulture industry. The <em>Lactobacillus plantarum</em> strain inhibits halos against fungi from <em>Aspergillus</em> and <em>Penicillium</em> genera. <em>Lactobacillus plantarum</em> essential oils combined with a fermented filter showed a synergic antifungal effect against necrotrophic fungus <em>B. cinerea</em> [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B75-ijms-23-07784" aria-expanded="false" aria-haspopup="true">75</a>]. Omedi et al., reported that the phenolic compounds dihydrocaffeic acid, benzoic acid, caffeic acid, phenyllactic acid, p-coumaric acid, and syringic acid showed antifungal activity [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B50-ijms-23-07784" aria-expanded="false" aria-haspopup="true">50</a>]. LAB strains incorporate an edible coating that protects grapefruits from fungi infection and extends shelf life [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B76-ijms-23-07784" aria-expanded="false" aria-haspopup="true">76</a>]. However, several authors reported that LAB metabolites showed an antagonistic effect against various economically significant plant pathogenic fungi (<a class="fig-table-link figpopup" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/table/ijms-23-07784-t002/" target="table" rel="noopener">Table 2</a>).</p>
</div>
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<h2 id="sec6-ijms-23-07784title" class="head no_bottom_margin ui-helper-clearfix">6. Biopesticides and Insecticides of LAB</h2>
<p class="p p-first-last">Global climate change and extreme temperatures significantly impact crop production and agricultural pests. Climate change can favor insect and pest populations and prolong their lifespan and survival rate [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B95-ijms-23-07784" aria-expanded="false" aria-haspopup="true">95</a>]. However, pests and insects cause severe economic damage to many crops and fruit trees. Therefore, the agrochemical industry produces several insecticides and pesticides worldwide. Organophosphorus is a chemical pesticide that causes acute poisoning in humans and animals [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B96-ijms-23-07784" aria-expanded="false" aria-haspopup="true">96</a>]. Therefore, researchers and the agro-farm industry are looking for alternative tools to prevent agricultural pests. Biopesticides are an alternative to conventional chemical pesticides, and they are eco-friendly and target specific. In addition, microbial-based pesticides comprise numerous microbes such as fungi, bacteria, and nematode-associated bacteria that protect crops from pests and nematodes [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B97-ijms-23-07784" aria-expanded="false" aria-haspopup="true">97</a>]. For example, LAB species <em>L. sakei</em> and <em>L. curvatus</em> can efficiently produce metabolites, which tend to kill nematodes [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B98-ijms-23-07784" aria-expanded="false" aria-haspopup="true">98</a>]. Alawamleh et al., reported that the lactic acid bacteria <em>Oenococcus oeni</em> release versatile metabolites and were desirable for spotted wing drosophila [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B99-ijms-23-07784" aria-expanded="false" aria-haspopup="true">99</a>]. In contrast, the high attraction of fruit fly drosophila results in a high capture rate in traps. However, further study of LAB fermented dairy products in the presence of commercial insecticides that accelerated the acetic condition might have elevated the insecticide activity [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B100-ijms-23-07784" aria-expanded="false" aria-haspopup="true">100</a>]. Takei et al., demonstrated that LAB enclosing poly(ε-caprolactone) microcapsules are efficient in removing root-knot nematodes [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B101-ijms-23-07784" aria-expanded="false" aria-haspopup="true">101</a>]. LAB-based microcapsules have been used in horticultural crops to remove root-knot nematodes. In addition, poly(ε-caprolactone) exhibited higher LA production and enhanced the viability and entrapment of LAB cells [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B101-ijms-23-07784" aria-expanded="false" aria-haspopup="true">101</a>]. In recent years, nanobiotechnology has gained much attention in the agriculture and food sectors. Microbial-based agro-nanotechnology is an eco-friendly approach that might reduce the usage of hazardous chemicals. At the same time, the systematic approach (controlled release) for applying fertilizers and pesticides to crops might enhance the yield and quality of the agro-food. Indeed, nano-based approaches promise an effect on plant health and yield, and these advantages support sustainable agriculture. In addition, nanomaterials have also been tested for pest management of insects in agricultural and urban management [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B102-ijms-23-07784" aria-expanded="false" aria-haspopup="true">102</a>]. Zinc oxide and silver nanoparticles are widely used due to their antibacterial and antifungal activity [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B103-ijms-23-07784" aria-expanded="false" aria-haspopup="true">103</a>]. In addition, enzyme-based zinc oxide nanoparticles (ZnONPs) control insect pests and pathogens [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B104-ijms-23-07784" aria-expanded="false" aria-haspopup="true">104</a>]. The chitinase from <em>L. coryniformis</em> immobilizes ZnONPs and its effect on corn lice as a potential insecticide in agricultural bioprocesses, which supports the economy.</p>
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<h2 id="sec7-ijms-23-07784title" class="head no_bottom_margin ui-helper-clearfix">7. Biostimulants of LAB</h2>
<p class="p p-first">Plant-associated microorganisms synthesize phytohormones, and the structure and functional properties are similar. Microbial phytohormones exhibit a similar effect on the plants, and they stimulate or inhibit microbial proliferation [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B105-ijms-23-07784" aria-expanded="false" aria-haspopup="true">105</a>]. There is limited evidence of LAB-related growth hormones. However, LAB stimulate plant growth and resistance to water and abiotic stress. According to Ampraya et al., LAB exhibit plant-growth-promoting (PGP) properties, and they can produce auxin indole-3-acetic acid (IAA) and solubilize minerals [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B106-ijms-23-07784" aria-expanded="false" aria-haspopup="true">106</a>]. Lynch precisely reported that the LAB growth hormones cytokinins and other metabolites were found in the soil [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B107-ijms-23-07784" aria-expanded="false" aria-haspopup="true">107</a>]. In a hypothetical view, LAB gradually incorporated into plant rhizospheric soil may alter plants’ physical properties to maximize the yield. For example, rice seeds coated with <em>Lactococcus lactis</em> significantly promoted the root length and shoot length. In addition, <em>L. lactis</em> significantly promotes cabbage growth and yield [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B108-ijms-23-07784" aria-expanded="false" aria-haspopup="true">108</a>]. In addition, several bacterial species produce bacterial exopolysaccharides (EPS) that promote plant growth and enhance soil fertility [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B105-ijms-23-07784" aria-expanded="false" aria-haspopup="true">105</a>]. LAB-derived EPS exhibits a variety of structural and functional properties. EPS is used in functional food, medicine, and pharmaceuticals. However, there is a lack of evidence on agricultural applications.</p>
<p class="p p-last">Even though further studies on LAB could enhance organic decomposition and soil humus formation, resulting in high growth and yield in cucumbers [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B109-ijms-23-07784" aria-expanded="false" aria-haspopup="true">109</a>], high organic matter stimulates specific bacteria populations. It changes the microbiota, which could be highly beneficial to plant and soil fertility. According to a concept formulated by H.P. Rusch, soil fertility of organic agricultural soils can be related to lactic acid bacteria (no literature evidence yet to be disclosed) [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B110-ijms-23-07784" aria-expanded="false" aria-haspopup="true">110</a>]. Somers et al., found that <em>Bacillus</em>, <em>Paenibacillus</em>, and <em>Staphylococcus</em> species isolated from organic farms significantly promote plant growth in crops [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B108-ijms-23-07784" aria-expanded="false" aria-haspopup="true">108</a>]. In addition, <em>Rhodobacter sphaeroides</em>, <em>L. plantarum</em>, and yeast species promote plant growth and increase plant hormones, amino acids, and nutrient content in cucumber [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B111-ijms-23-07784" aria-expanded="false" aria-haspopup="true">111</a>]. Lutz et al., found that a few <em>Lactobacillus</em> strains act as biocontrol and biostimulant agents [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B112-ijms-23-07784" aria-expanded="false" aria-haspopup="true">112</a>]. LAB colonized in pepper (<em>Capsicum annum</em>) rhizosphere produced IAA and siderophore metabolites. LAB strains solubilize phosphate to promote plant growth and control the bacterial spot diseases in pepper [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B113-ijms-23-07784" aria-expanded="false" aria-haspopup="true">113</a>]. Strafella et al., investigated the comparative genomics and plant growth promotion properties in <em>L. plantarum</em> isolated from the wheat rhizosphere [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B114-ijms-23-07784" aria-expanded="false" aria-haspopup="true">114</a>]. The recombinant <em>L. plantarum</em> produced higher succinic acid in the fermented substrate, stimulating plant growth [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B115-ijms-23-07784" aria-expanded="false" aria-haspopup="true">115</a>]. Several studies have shown that LAB promote plant growth and can act as a biocontrol agent in horticultural crops (<a class="fig-table-link figpopup" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/table/ijms-23-07784-t003/" target="table" rel="noopener">Table 3</a>). However, some limitations, often related to plant stimulation effects and inconsistent performance in field conditions, need to promote wide LAB use in agriculture.</p>
<div id="ijms-23-07784-t003" class="table-wrap anchored whole_rhythm">
<h3>Table 3</h3>
<div class="caption">
<p>LAB biostimulants and biofertilizer properties on sustainable crop production (PGPR—plant-growth-promoting rhizobacteria; IAA—indole acetic acid; LA—lactic acid).</p>
</div>
<div class="xtable">
<table class="rendered small default_table" frame="hsides" rules="groups">
<thead>
<tr>
<th colspan="1" rowspan="1" align="left" valign="middle">Strains</th>
<th colspan="1" rowspan="1" align="left" valign="middle">Source</th>
<th colspan="1" rowspan="1" align="left" valign="middle">Crops</th>
<th colspan="1" rowspan="1" align="left" valign="middle">Effects</th>
<th colspan="1" rowspan="1" align="left" valign="middle">Mechanisms</th>
<th colspan="1" rowspan="1" align="left" valign="middle">References</th>
</tr>
</thead>
<tbody>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>L. plantarum</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">EM-4, type strain, grape must</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Radish, tomato</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Increased yield, shoot branching, shoot and root growth</td>
<td colspan="1" rowspan="1" align="left" valign="middle">None</td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B35-ijms-23-07784" aria-expanded="false" aria-haspopup="true">35</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B109-ijms-23-07784" aria-expanded="false" aria-haspopup="true">109</a>]</td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>L. plantarum</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">Grape must, oyster mushroom</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Tomato</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Increased germination, increased shoot and root growth</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Bacteriogenic metabolites</td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B116-ijms-23-07784" aria-expanded="false" aria-haspopup="true">116</a>]</td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>L. plantarum</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">Commercial phytostimulant</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Cucumber</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Increased germination and seedling growth</td>
<td colspan="1" rowspan="1" align="left" valign="middle">None</td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B117-ijms-23-07784" aria-expanded="false" aria-haspopup="true">117</a>]</td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>L. plantarum</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">Dairy products</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Tomato</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Increasing germination rate and root growth</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Bacteriogenic metabolites</td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B116-ijms-23-07784" aria-expanded="false" aria-haspopup="true">116</a>]</td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>L. plantarum</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">Human probiotic</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Wheat</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Osmotic stress alleviation</td>
<td colspan="1" rowspan="1" align="left" valign="middle">None</td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B118-ijms-23-07784" aria-expanded="false" aria-haspopup="true">118</a>]</td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>L. plantarum</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">PGPR Corp. (Korea)</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Cucumber</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Increased growth, nutrient uptake, and amino acid content</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Increased nutrient availability via succinic acid and LA</td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B111-ijms-23-07784" aria-expanded="false" aria-haspopup="true">111</a>]</td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>L. plantarum</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">Unknown</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Swertia chirayita</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Salt stress tolerant</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Stress response</td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B119-ijms-23-07784" aria-expanded="false" aria-haspopup="true">119</a>]</td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>L. acidophilus</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">Dairy products</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Tomato</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Increased shoot branching, shoot and root growth</td>
<td colspan="1" rowspan="1" align="left" valign="middle">None</td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B35-ijms-23-07784" aria-expanded="false" aria-haspopup="true">35</a>]</td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>Lactobacillus</em> sp.</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Dairy products</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Tomato</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Increased shoot branching, shoot and root growth</td>
<td colspan="1" rowspan="1" align="left" valign="middle">None</td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B35-ijms-23-07784" aria-expanded="false" aria-haspopup="true">35</a>]</td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle">LAB</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Unknown</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Pepper</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Biocontrol and biostimulant property</td>
<td colspan="1" rowspan="1" align="left" valign="middle">IAA and siderophores</td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B112-ijms-23-07784" aria-expanded="false" aria-haspopup="true">112</a>]</td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>L. acidophilus</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">Wheat rhizosphere</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Wheat</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Increased plant length and chlorophyll content</td>
<td colspan="1" rowspan="1" align="left" valign="middle">IAA</td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B120-ijms-23-07784" aria-expanded="false" aria-haspopup="true">120</a>]</td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle"><em>L. casei</em></td>
<td colspan="1" rowspan="1" align="left" valign="middle">Commercial phytostimulant</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Cucumber</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Increased germination rate</td>
<td colspan="1" rowspan="1" align="left" valign="middle">None</td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B117-ijms-23-07784" aria-expanded="false" aria-haspopup="true">117</a>]</td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle">LAB strain KLF01</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Tomato rhizosphere</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Pepper</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Increased root and shoot length, root fresh weight, and chlorophyll content</td>
<td colspan="1" rowspan="1" align="left" valign="middle">IAA, phosphate solubilization</td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B113-ijms-23-07784" aria-expanded="false" aria-haspopup="true">113</a>]</td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle">LAB strain KLCO2, KPD03</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Unknown</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Pepper</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Increased root and shoot length, root fresh weight and chlorophyll content</td>
<td colspan="1" rowspan="1" align="left" valign="middle">IAA, phosphate solubilization</td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B113-ijms-23-07784" aria-expanded="false" aria-haspopup="true">113</a>]</td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle">LAB strain BL06</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Sugarcane ferment</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Citrus seedling</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Increased height, stem diameter, root and shoot weight</td>
<td colspan="1" rowspan="1" align="left" valign="middle">Phosphate solubilization, nitrogen fixation</td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B121-ijms-23-07784" aria-expanded="false" aria-haspopup="true">121</a>]</td>
</tr>
<tr>
<td colspan="1" rowspan="1" align="left" valign="middle">LAB</td>
<td colspan="1" rowspan="1" align="left" valign="middle">None</td>
<td colspan="1" rowspan="1" align="left" valign="middle">None</td>
<td colspan="1" rowspan="1" align="left" valign="middle">PGP properties</td>
<td colspan="1" rowspan="1" align="left" valign="middle">IAA and mineral solubilization</td>
<td colspan="1" rowspan="1" align="left" valign="middle">[<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B106-ijms-23-07784" aria-expanded="false" aria-haspopup="true">106</a>]</td>
</tr>
</tbody>
</table>
</div>
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<h2 id="sec8-ijms-23-07784title" class="head no_bottom_margin ui-helper-clearfix">8. Biofertilizer of LAB</h2>
<p class="p p-first">Anthropogenic ammonia emissions are major risk factors that cause secondary pollution, reduce nitrogen availability, and damage forests and vegetation. Biofertilizers are substances containing a variety of microbes to protect the plant and enhance the plant’s nutrients. However, LAB and nitrification bacteria reduce ammonia emissions and promote nitrification [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B122-ijms-23-07784" aria-expanded="false" aria-haspopup="true">122</a>]. Recently, LAB and other Bacillus-based biofertilizers have been validated with established microbes in agriculture and the environment. Microbial-based biofertilizers increase crop yield and accelerate the mineral update of the plant root. Further, they enhance the organic matter catabolism (<a class="fig-table-link figpopup" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/table/ijms-23-07784-t003/" target="table" rel="noopener">Table 3</a>). Spay and soil injection methods are highly recommended for commercial applications. LAB-based liquid fertilizer spray on the plant and soil is hypothesized to assist plant health. Fermented LAB, yeast, and phototrophic bacteria cocktails are used as biofertilizers and biocontrol agents. At the same time, LAB and bacillus-based biofertilizers showed a high crop yield and enhanced the organic matter degradation (patent no: CA2598539A1, 2006) [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B123-ijms-23-07784" aria-expanded="false" aria-haspopup="true">123</a>]. In this context, farmyard manure and plant-based compost is integral to organic farming and sustainable agriculture. LAB decompose and bio-stabilize the animal and plant waste to improve the agronomic value and assimilate organic matter such as lignin and cellulose materials [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B22-ijms-23-07784" aria-expanded="false" aria-haspopup="true">22</a>]. Wang et al., found that <em>Bacillus stearothermophilus</em> elevate the relative abundance of LAB strains in soil [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B122-ijms-23-07784" aria-expanded="false" aria-haspopup="true">122</a>]. In addition, LAB strains exhibit an antagonistic effect against phytopathogenic agents in soil.</p>
<p>Globally, the mushroom industry has grown rapidly in recent years, with a market value of USD 11.9 million in 2019 [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B124-ijms-23-07784" aria-expanded="false" aria-haspopup="true">124</a>]. At the same time, spent mushroom substrate (SMS) is a residual material remaining after the harvest: 5 kg of SMS is produced from 1 kg of mushroom harvest. SMS is an alternative animal feed and manure source for horticultural crops [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B125-ijms-23-07784" aria-expanded="false" aria-haspopup="true">125</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B126-ijms-23-07784" aria-expanded="false" aria-haspopup="true">126</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B127-ijms-23-07784" aria-expanded="false" aria-haspopup="true">127</a>]. Compost temperature, average pH, and microaerobic conditions accelerated the LAB growth in SMS. Several LAB species have been isolated from SMS and composting substrate. The most compatible identified in SMS, <em>L. plantarum</em>, may have promoted fermentation [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B128-ijms-23-07784" aria-expanded="false" aria-haspopup="true">128</a>]. Chuang et al., reported that SMS contains multiple constituents, such as a mushroom mycelium, metabolites, organic acid, lactic acid, and polysaccharides. Those metabolites improve animal health and antioxidant capacity while feeding SMS [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B129-ijms-23-07784" aria-expanded="false" aria-haspopup="true">129</a>].</p>
<p class="p p-last">In addition, LAB-based fermented compost materials increase soil fertility, soil structure, aeration, neutralize alkalinity, and promote moisture retention. Cacace et al., found that LAB produces enormous organic acids during food and backer waste ferment [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B130-ijms-23-07784" aria-expanded="false" aria-haspopup="true">130</a>]. For this reason, LAB-based composting materials are well suitable for alkaline soils that promote phosphorous and iron precipitates, such as Ca phosphates and iron oxides [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B131-ijms-23-07784" aria-expanded="false" aria-haspopup="true">131</a>]. Those conditions led to a significant availability of Mn, Fe, and Cu in soils [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B132-ijms-23-07784" aria-expanded="false" aria-haspopup="true">132</a>]. Some hypothetical views revealed that LAB fix atmospheric nitrogen and produce iron-chelating compounds [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B130-ijms-23-07784" aria-expanded="false" aria-haspopup="true">130</a>]. However, the comparative genomics data for LAB and food-related strains were differentiated. The recent comparative genomic analysis carried out by Mao et al., provides evidence that the LAB strains differ according to the food niche [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B133-ijms-23-07784" aria-expanded="false" aria-haspopup="true">133</a>]. Hence, LAB strains exhibit high genomic diversity based on function and substrate, while gene manipulating and metabolic engineering tools alter the gene expression, resulting in plant growth and protection.</p>
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<h2 id="sec9-ijms-23-07784title" class="head no_bottom_margin ui-helper-clearfix">9. Soil Bioremediation of Lactic Acid Bacteria</h2>
<p class="p p-first-last">Soil carbon pools are the most significant terrestrial carbon stored in the soil, and they affect the physical, chemical, biological properties. Further, soil organic matter accumulation is crucial for soil fertility, water retention, and crop production. The terrestrial plants utilize inorganic and organic sources of carbon. Hence, modern agricultural practices have negatively impacted the soil ecosystem, due to factors such as intensive tillage, commercial fertilizers, and chemical pesticides. Microorganisms degrade organic and inorganic wastes in soil by the process of bioremediation. Fungi are the predominant species in the soil ecosystem, and they mineralize carbon sources and biosorbent heavy metals from polluted soils. In addition, LAB strains are prevalent in the soil and have been used in the bioremediation process (<a class="fig-table-link figpopup" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/figure/ijms-23-07784-f003/" target="figure" rel="noopener">Figure 3</a>). LAB strains are essential for improving the soil carbon pool, removing heavy metals, and detoxifying the mycotoxins [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B134-ijms-23-07784" aria-expanded="false" aria-haspopup="true">134</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B135-ijms-23-07784" aria-expanded="false" aria-haspopup="true">135</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B136-ijms-23-07784" aria-expanded="false" aria-haspopup="true">136</a>]. Heavy metals are adsorbed by electrostatic and hydrophobic interactions [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B137-ijms-23-07784" aria-expanded="false" aria-haspopup="true">137</a>]. Therefore, LAB might be used to produce commercial bio-filters to purify water contaminated with heavy metals and aflatoxin. <em>Lactobacillus plantarum</em> is a promising biosorbent for removing cationic metals ion such as cadmium and lead from industrial wastewater [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B135-ijms-23-07784" aria-expanded="false" aria-haspopup="true">135</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B138-ijms-23-07784" aria-expanded="false" aria-haspopup="true">138</a>]. However, many authors proposed LAB heavy metal biosorption mechanisms [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B138-ijms-23-07784" aria-expanded="false" aria-haspopup="true">138</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B139-ijms-23-07784" aria-expanded="false" aria-haspopup="true">139</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B140-ijms-23-07784" aria-expanded="false" aria-haspopup="true">140</a>], while the bacterial functional groups carboxyl, hydroxyl, and phosphate are involved in this process. Formerly, LAB-based microcapsules exhibited desirable biodegradability properties compared to hydrogel and synthetic polymers [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B101-ijms-23-07784" aria-expanded="false" aria-haspopup="true">101</a>]. The LA-based microcapsule was more efficient, and the production capacity was comparatively higher than commercial soil amendments. Furthermore, LAB detoxify and degrade pesticides in fermented milk and other fermented food products [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B141-ijms-23-07784" aria-expanded="false" aria-haspopup="true">141</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B142-ijms-23-07784" aria-expanded="false" aria-haspopup="true">142</a>]. Zhou and Zhao found that LAB degrade nine different organophosphorus pesticides in dairy products [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B143-ijms-23-07784" aria-expanded="false" aria-haspopup="true">143</a>].</p>
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<p>The role of LAB in bioremediation for sustainable agriculture.</p>
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<h2 id="sec10-ijms-23-07784title" class="head no_bottom_margin ui-helper-clearfix">10. Modern Technology and Metabolic Engineering of LAB</h2>
<p class="p p-first-last">LAB degrade macromolecule substances through lactic acid fermentation and produce several metabolic end-products. Hence, LAB metabolites are commercially important, with wide applications in food and medicine [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B144-ijms-23-07784" aria-expanded="false" aria-haspopup="true">144</a>]. LAB are favorable for metabolism modification since they have a small genome and encode a limited range of biosynthesis capabilities. In recent years, LAB have been receiving much attention as alternative cell factories for the producers of valuable metabolites by metabolic engineering. Genetic manipulation methods have been well established in LAB, promoting industrial application [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B144-ijms-23-07784" aria-expanded="false" aria-haspopup="true">144</a>]. In addition, LAB strains are widely used in CRISPR-Cas-based genome editing. They are currently a trove of potential for many industries, whether for new vaccine delivery systems or more robust probiotics and starter cultures [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B145-ijms-23-07784" aria-expanded="false" aria-haspopup="true">145</a>]. The metabolic engineered LAB strains produce lactic acid from an unconventional carbon source, and lactic acid is an essential chemical source for polylactic acid (PLA) and other value-added products. At the same time, metabolic engineered LAB species fermented a considerable quantity of agricultural biomass and produced lactic acid at a low cost with conventional methods. PLA is a biodegradable plastic with excellent biocompatibility and processability. It has been used in agricultural applications such as netting for vegetation and weed prevention [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B146-ijms-23-07784" aria-expanded="false" aria-haspopup="true">146</a>]. Tsuji et al., demonstrated that recombinant <em>L. plantarum</em> produced a higher succinic acid [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B115-ijms-23-07784" aria-expanded="false" aria-haspopup="true">115</a>]. LAB-derived lactic acid and succinic acids stimulate plant growth. However, the succinic acid fermentation process has not been commercialized yet. Despite these success stories, highly efficient LAB inoculants are not used in sustainable agriculture, although metabolic engineering tools provide efficient cell factories tailor-made to produce beneficial industrial and agro-products.</p>
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<h2 id="sec11-ijms-23-07784title" class="head no_bottom_margin ui-helper-clearfix">11. Limitations and Future Prospects of LAB</h2>
<p class="p p-first-last">Since ancient times, lactic acid bacteria have been used as food and medicine, and are the most commonly used probiotics in food. They synthesize various organic acids and other metabolites in the fermentation process. At the same time, the primary acidification process in the fermentation of food and feed substrates prevents the spoilage of microbe populations. Hence, LAB are the most promising candidates for preventing food spoilage and are used as food/feed preservatives [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B10-ijms-23-07784" aria-expanded="false" aria-haspopup="true">10</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B75-ijms-23-07784" aria-expanded="false" aria-haspopup="true">75</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B78-ijms-23-07784" aria-expanded="false" aria-haspopup="true">78</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B79-ijms-23-07784" aria-expanded="false" aria-haspopup="true">79</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B129-ijms-23-07784" aria-expanded="false" aria-haspopup="true">129</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B131-ijms-23-07784" aria-expanded="false" aria-haspopup="true">131</a>]. LAB-derived metabolites are highly beneficial to human and animal health, and are used as food supplements, medicine, and cosmetic products. In contrast, LAB uptake is a high carbon source as an energy source during fermentation, while yielding low biomass and a limited number of metabolites. In addition, acidification and coagulation, low buffering capacity, and sugar depletion are the main limiting factors during fermentation [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B8-ijms-23-07784" aria-expanded="false" aria-haspopup="true">8</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B90-ijms-23-07784" aria-expanded="false" aria-haspopup="true">90</a>]. In addition, the high production cost and acidic conditions are drawbacks, limiting the commercial application. However, several studies have pointed out that LAB probiotics are complementary to treating urinary tract infections and respiratory tract infections in humans. However, very limited studies elucidated the role of LAB in the rhizosphere and their plant-growth-promoting properties [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B27-ijms-23-07784" aria-expanded="false" aria-haspopup="true">27</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B30-ijms-23-07784" aria-expanded="false" aria-haspopup="true">30</a>]. LAB promote growth in different crops, even though the underlying mechanisms behind this bio-stimulation remain unclear. In addition, LAB showed weak inhibitory activity against plant pathogenic fungi and bacteria. However, LAB exhibited a wide range of antagonistic effects against Gram-positive bacteria. They have minimal effects on Gram-negative bacteria [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B15-ijms-23-07784" aria-expanded="false" aria-haspopup="true">15</a>]. Plant-growth-promoting properties were limited in LAB, while their performance was poor compared to other beneficial bacteria and fungi. Recently, metabolic engineered microbes have been used in food and agricultural sectors. Although genetically engineered LAB strains positively affect the food and feed industry, fewer studies have investigated agricultural applications. The positive explanation regarding genetically modified LAB was found to have limited evidence, and legal issues limit advanced technology. However, specialization in the LAB gene structure and function and amino acid biosynthesis pathways are warranted. In addition, LAB-based modern farming, LA, PLA, and bacteriocins can be produced sustainably, stimulating technology adoption. LAB strains are highly beneficial to animal health, and they inhibit harmful microbes and promote animal health in nutrition. Various reports have shown that the LAB strains are isolated from forage, control infectious pathogens, and promote the gut microbiota of humans and animals [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B23-ijms-23-07784" aria-expanded="false" aria-haspopup="true">23</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B129-ijms-23-07784" aria-expanded="false" aria-haspopup="true">129</a>,<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B147-ijms-23-07784" aria-expanded="false" aria-haspopup="true">147</a>]. In the future, those emerging technologies will increase the yield and build sustainability across crop cultivation and animal husbandry.</p>
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<h2 id="sec12-ijms-23-07784title" class="head no_bottom_margin ui-helper-clearfix">12. Conclusions</h2>
<p class="p p-first-last">Sustainable agriculture has recently been more concerned with a sustainable food system, and organic farming is most important for global health. Microbial-based agricultural practices would help alleviate these concerns and supply sufficient food for the world population. In this context, novel soil amendments and the exploitation of plant-growth-promoting microorganism potential are promising tools for sustainable agriculture. In contrast, LAB uptake is a high carbon source as an energy source during fermentation with a limited number of yielded metabolites. The acidification and coagulation, low buffering capacity, and sugar depletion of LAB strains are the main limiting factors during mass production. In addition, production cost and high acidic conditions are drawbacks in commercial applications. However, very few studies elucidated the role of LAB and their plant-growth-promoting and biostimulant properties in agricultural applications. In nature, few beneficial microbes that can fit into sustainable agriculture. However, LAB strains are used as a plant growth promoter and biocontrol agent in fruit trees, rice, and horticultural crops. LAB can ferment and decompose animal and mushroom spent substrate waste. They can detoxify the mycotoxin and pesticides in food and feed substrates. In addition, LAB and their antimicrobial and growth-promoting compounds can replace inorganic fertilizer and pesticides. Furthermore, LAB incorporated starch films to protect fruits and vegetables from oxidation damage. This strategy may enhance shelf life without altering the quality of food packaging applications. Recently, LAB encapsulation with different matrices has been used as probiotics in aquaculture [<a class=" bibr popnode" role="button" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9322495/#B148-ijms-23-07784" aria-expanded="false" aria-haspopup="true">148</a>]. LAB nanomaterials and nano chemicals have appeared as promising agents for plant growth promotion and disease control agents in the near future. The overall agro-based benefits of LAB have been discussed in this review, and we conclude that lactic acid bacteria are a promising candidate for sustainable agriculture.</p>
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<p>The first author is thankful to the Agricultural Microbiology Division (Project No. <strong>PJ01577903</strong>), provided by the National Institute of Agricultural Sciences, Rural Development Administration, Republic of Korea, for the postdoctoral fellowship.</p>
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<p>This work was supported by the National Institute of Agricultural Sciences (Project No. PJ01577903) Rural Development Administration, Republic of Korea.</p>
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<h2 id="notes-a.n.ctitle" class="head no_bottom_margin ui-helper-clearfix">Author Contributions</h2>
<p>J.R. was involved in the writing—review and editing of the original draft; S.-J.K. provided supervision and validation; J.-S.K. provided literature collection and reviewing; Y.-J.K. was involved in reviewing; K.R.C., H.E. and D.Y. contributed to visualization. All authors have read and agreed to the published version of the manuscript.</p>
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<h2 id="ref-list-a.n.htitle" class="head no_bottom_margin ui-helper-clearfix">References</h2>
<div id="reference-list" class="ref-list-sec sec">
<div id="B1-ijms-23-07784" class="ref-cit-blk half_rhythm">1. <span class="element-citation">[(accessed on 20 June 2020)]. Available online: <a href="http://www.fao.org/faostat/en/#country" target="_blank" rel="noopener" data-ga-action="click_feat_suppl">http://www.fao.org/faostat/en/#country</a></span></div>
<div id="B2-ijms-23-07784" class="ref-cit-blk half_rhythm">2. <span class="element-citation">Avis T.J., Gravel V.R., Antoun H., Tweddell R.J. Multifaceted beneficial effects of rhizosphere microorganisms on plant health and productivity. <span class="ref-journal">Soil Biol. Biochem. </span>2008;<span class="ref-vol">40</span>:1733–1740. doi: 10.1016/j.soilbio.2008.02.013. [<a href="https://doi.org/10.1016%2Fj.soilbio.2008.02.013" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Soil+Biol.+Biochem.&amp;title=Multifaceted+beneficial+effects+of+rhizosphere+microorganisms+on+plant+health+and+productivity&amp;author=T.J.+Avis&amp;author=V.R.+Gravel&amp;author=H.+Antoun&amp;author=R.J.+Tweddell&amp;volume=40&amp;publication_year=2008&amp;pages=1733-1740&amp;doi=10.1016/j.soilbio.2008.02.013&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B3-ijms-23-07784" class="ref-cit-blk half_rhythm">3. <span class="element-citation">Lamont J.R., Wilkins O., Bywater-Ekegärd M., Smith D.L. From yogurt to yield: Potential applications of lactic acid bacteria in plant production. <span class="ref-journal">Soil Biol. Biochem. </span>2017;<span class="ref-vol">111</span>:1–9. doi: 10.1016/j.soilbio.2017.03.015. [<a href="https://doi.org/10.1016%2Fj.soilbio.2017.03.015" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Soil+Biol.+Biochem.&amp;title=From+yogurt+to+yield:+Potential+applications+of+lactic+acid+bacteria+in+plant+production&amp;author=J.R.+Lamont&amp;author=O.+Wilkins&amp;author=M.+Bywater-Ekeg%C3%A4rd&amp;author=D.L.+Smith&amp;volume=111&amp;publication_year=2017&amp;pages=1-9&amp;doi=10.1016/j.soilbio.2017.03.015&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B4-ijms-23-07784" class="ref-cit-blk half_rhythm">4. <span class="element-citation">Vessey J.K. Plant growth promoting rhizobacteria as biofertilizers. <span class="ref-journal">Plant Soil. </span>2003;<span class="ref-vol">255</span>:571–586. doi: 10.1023/A:1026037216893. [<a href="https://doi.org/10.1023%2FA%3A1026037216893" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Plant+Soil&amp;title=Plant+growth+promoting+rhizobacteria+as+biofertilizers&amp;author=J.K.+Vessey&amp;volume=255&amp;publication_year=2003&amp;pages=571-586&amp;doi=10.1023/A:1026037216893&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B5-ijms-23-07784" class="ref-cit-blk half_rhythm">5. <span class="element-citation">Duar R.M., Lin X.B., Zheng J., Martino M.E., Grenier T., Perez-Muñoz M.E., Leulier F., Ganzle M., Walter J. Lifestyles in transition: Evolution and natural history of the genus <em>Lactobacillus</em>. <span class="ref-journal">FEMS Microbiol. Rev. </span>2017;<span class="ref-vol">41</span>:S27–S48. doi: 10.1093/femsre/fux030. [<a href="https://pubmed.ncbi.nlm.nih.gov/28673043">PubMed</a>] [<a href="https://doi.org/10.1093%2Ffemsre%2Ffux030" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=FEMS+Microbiol.+Rev.&amp;title=Lifestyles+in+transition:+Evolution+and+natural+history+of+the+genus+Lactobacillus&amp;author=R.M.+Duar&amp;author=X.B.+Lin&amp;author=J.+Zheng&amp;author=M.E.+Martino&amp;author=T.+Grenier&amp;volume=41&amp;publication_year=2017&amp;pages=S27-S48&amp;pmid=28673043&amp;doi=10.1093/femsre/fux030&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B6-ijms-23-07784" class="ref-cit-blk half_rhythm">6. <span class="element-citation">Sadiq F.A., Yan B., Tian F., Zhao J., Zhang H., Chen W. Lactic Acid Bacteria as Antifungal and Anti-Mycotoxigenic Agents: A Comprehensive Review. <span class="ref-journal">Compr. Rev. Food Sci. Food Saf. </span>2019;<span class="ref-vol">18</span>:1403–1436. doi: 10.1111/1541-4337.12481. [<a href="https://pubmed.ncbi.nlm.nih.gov/33336904">PubMed</a>] [<a href="https://doi.org/10.1111%2F1541-4337.12481" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Compr.+Rev.+Food+Sci.+Food+Saf.&amp;title=Lactic+Acid+Bacteria+as+Antifungal+and+Anti-Mycotoxigenic+Agents:+A+Comprehensive+Review&amp;author=F.A.+Sadiq&amp;author=B.+Yan&amp;author=F.+Tian&amp;author=J.+Zhao&amp;author=H.+Zhang&amp;volume=18&amp;publication_year=2019&amp;pages=1403-1436&amp;pmid=33336904&amp;doi=10.1111/1541-4337.12481&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B7-ijms-23-07784" class="ref-cit-blk half_rhythm">7. <span class="element-citation">Chen H., Yan X., Du G., Guo Q., Shi Y., Chang J., Wang X., Yuan Y., Yue T. Recent developments in antifungal lactic acid bacteria: Application, screening methods, separation, purification of antifungal compounds and antifungal mechanisms. <span class="ref-journal">Crit. Rev. Food Sci. Nutr. </span>2021;<span class="ref-vol">15</span>:1–15. doi: 10.1080/10408398.2021.1977610. [<a href="https://pubmed.ncbi.nlm.nih.gov/34523362">PubMed</a>] [<a href="https://doi.org/10.1080%2F10408398.2021.1977610" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Crit.+Rev.+Food+Sci.+Nutr.&amp;title=Recent+developments+in+antifungal+lactic+acid+bacteria:+Application,+screening+methods,+separation,+purification+of+antifungal+compounds+and+antifungal+mechanisms&amp;author=H.+Chen&amp;author=X.+Yan&amp;author=G.+Du&amp;author=Q.+Guo&amp;author=Y.+Shi&amp;volume=15&amp;publication_year=2021&amp;pages=1-15&amp;doi=10.1080/10408398.2021.1977610&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B8-ijms-23-07784" class="ref-cit-blk half_rhythm">8. <span class="element-citation">Arena M.P., Russo P., Spano G., Capozzi V. Exploration of the Microbial Biodiversity Associated with North Apulian Sourdoughs and the Effect of the Increasing Number of Inoculated Lactic Acid Bacteria Strains on the Biocontrol against Fungal Spoilage. <span class="ref-journal">Fermentation. </span>2019;<span class="ref-vol">5</span>:97. doi: 10.3390/fermentation5040097. [<a href="https://doi.org/10.3390%2Ffermentation5040097" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Fermentation&amp;title=Exploration+of+the+Microbial+Biodiversity+Associated+with+North+Apulian+Sourdoughs+and+the+Effect+of+the+Increasing+Number+of+Inoculated+Lactic+Acid+Bacteria+Strains+on+the+Biocontrol+against+Fungal+Spoilage&amp;author=M.P.+Arena&amp;author=P.+Russo&amp;author=G.+Spano&amp;author=V.+Capozzi&amp;volume=5&amp;publication_year=2019&amp;pages=97&amp;doi=10.3390/fermentation5040097&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B9-ijms-23-07784" class="ref-cit-blk half_rhythm">9. <span class="element-citation">Gajbhiye M.H., Kapadnis B.P. Antifungal-Activity-Producing Lactic Acid Bacteria as Biocontrol Agents in Plants. <span class="ref-journal">Biocontrol Sci. Technol. </span>2016;<span class="ref-vol">26</span>:1451–1470. doi: 10.1080/09583157.2016.1213793. [<a href="https://doi.org/10.1080%2F09583157.2016.1213793" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Biocontrol+Sci.+Technol.&amp;title=Antifungal-Activity-Producing+Lactic+Acid+Bacteria+as+Biocontrol+Agents+in+Plants&amp;author=M.H.+Gajbhiye&amp;author=B.P.+Kapadnis&amp;volume=26&amp;publication_year=2016&amp;pages=1451-1470&amp;doi=10.1080/09583157.2016.1213793&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B10-ijms-23-07784" class="ref-cit-blk half_rhythm">10. <span class="element-citation">Rouse S., Harnett D., Vaughan A., Sinderen D. Lactic acid bacteria with potential to eliminate fungal spoilage in foods. <span class="ref-journal">J. Appl. Microbiol. </span>2008;<span class="ref-vol">104</span>:915–923. doi: 10.1111/j.1365-2672.2007.03619.x. [<a href="https://pubmed.ncbi.nlm.nih.gov/17976175">PubMed</a>] [<a href="https://doi.org/10.1111%2Fj.1365-2672.2007.03619.x" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=J.+Appl.+Microbiol.&amp;title=Lactic+acid+bacteria+with+potential+to+eliminate+fungal+spoilage+in+foods&amp;author=S.+Rouse&amp;author=D.+Harnett&amp;author=A.+Vaughan&amp;author=D.+Sinderen&amp;volume=104&amp;publication_year=2008&amp;pages=915-923&amp;pmid=17976175&amp;doi=10.1111/j.1365-2672.2007.03619.x&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B11-ijms-23-07784" class="ref-cit-blk half_rhythm">11. <span class="element-citation">Desbois A.P., Smith V.J. Antibacterial free fatty acids: Activities, mechanisms of action and biotechnological potential. <span class="ref-journal">Appl. Microbiol. Biotechnol. </span>2010;<span class="ref-vol">85</span>:1629–1642. doi: 10.1007/s00253-009-2355-3. [<a href="https://pubmed.ncbi.nlm.nih.gov/19956944">PubMed</a>] [<a href="https://doi.org/10.1007%2Fs00253-009-2355-3" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Appl.+Microbiol.+Biotechnol.&amp;title=Antibacterial+free+fatty+acids:+Activities,+mechanisms+of+action+and+biotechnological+potential&amp;author=A.P.+Desbois&amp;author=V.J.+Smith&amp;volume=85&amp;publication_year=2010&amp;pages=1629-1642&amp;pmid=19956944&amp;doi=10.1007/s00253-009-2355-3&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B12-ijms-23-07784" class="ref-cit-blk half_rhythm">12. <span class="element-citation">Patel M., Siddiqui A.J., Hamadou W.S., Surti M., Awadelkareem A.M., Ashraf S.A., Alreshidi M., Snoussi M., Rizvi S.M.D., Bardakci F., et al. Inhibition of bacterial adhesion and antibiofilm activities of a glycolipid biosurfactant from <em>Lactobacillus rhamnosus</em> with its physicochemical and functional properties. <span class="ref-journal">Antibiotics. </span>2021;<span class="ref-vol">17</span>:1546. doi: 10.3390/antibiotics10121546. <span class="nowrap">[<a class="int-reflink" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8698754/">PMC free article</a>]</span> [<a href="https://pubmed.ncbi.nlm.nih.gov/34943758">PubMed</a>] [<a href="https://doi.org/10.3390%2Fantibiotics10121546" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Antibiotics&amp;title=Inhibition+of+bacterial+adhesion+and+antibiofilm+activities+of+a+glycolipid+biosurfactant+from+Lactobacillus+rhamnosus+with+its+physicochemical+and+functional+properties&amp;author=M.+Patel&amp;author=A.J.+Siddiqui&amp;author=W.S.+Hamadou&amp;author=M.+Surti&amp;author=A.M.+Awadelkareem&amp;volume=17&amp;publication_year=2021&amp;pages=1546&amp;pmid=34943758&amp;doi=10.3390/antibiotics10121546&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B13-ijms-23-07784" class="ref-cit-blk half_rhythm">13. <span class="element-citation">Cortes-Zavaleta O., Lopez-Malo A., Hernandez-Mendoza A., Garcia H.S. Antifungal Activity of <em>Lactobacilli</em> and Its Relationship with 3-Phenyllactic Acid Production. <span class="ref-journal">Int. J. Food Microbiol. </span>2014;<span class="ref-vol">173</span>:30–35. [<a href="https://pubmed.ncbi.nlm.nih.gov/24412414">PubMed</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Int.+J.+Food+Microbiol.&amp;title=Antifungal+Activity+of+Lactobacilli+and+Its+Relationship+with+3-Phenyllactic+Acid+Production&amp;author=O.+Cortes-Zavaleta&amp;author=A.+Lopez-Malo&amp;author=A.+Hernandez-Mendoza&amp;author=H.S.+Garcia&amp;volume=173&amp;publication_year=2014&amp;pages=30-35&amp;pmid=24412414&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B14-ijms-23-07784" class="ref-cit-blk half_rhythm">14. <span class="element-citation">Hashemi S.M.B., Jafarpour D. Bioactive Edible Film Based on Konjac Glucomannan and Probiotic <em>Lactobacillus plantarum</em> Strains: Physicochemical Properties and Shelf Life of Fresh-Cut Kiwis. <span class="ref-journal">J. Food Sci. </span>2021;<span class="ref-vol">86</span>:513–522. doi: 10.1111/1750-3841.15568. [<a href="https://pubmed.ncbi.nlm.nih.gov/33415755">PubMed</a>] [<a href="https://doi.org/10.1111%2F1750-3841.15568" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=J.+Food+Sci.&amp;title=Bioactive+Edible+Film+Based+on+Konjac+Glucomannan+and+Probiotic+Lactobacillus+plantarum+Strains:+Physicochemical+Properties+and+Shelf+Life+of+Fresh-Cut+Kiwis&amp;author=S.M.B.+Hashemi&amp;author=D.+Jafarpour&amp;volume=86&amp;publication_year=2021&amp;pages=513-522&amp;pmid=33415755&amp;doi=10.1111/1750-3841.15568&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B15-ijms-23-07784" class="ref-cit-blk half_rhythm">15. <span class="element-citation">Govindaraj K., Samayanpaulraj V., Narayanadoss V., Uthandakalaipandian R. Isolation of Lactic Acid Bacteria from Intestine of Freshwater Fishes and Elucidation of Probiotic Potential for Aquaculture Application. <span class="ref-journal">Probiotics Antimicrob. Proteins. </span>2021;<span class="ref-vol">13</span>:1598–1610. doi: 10.1007/s12602-021-09811-6. [<a href="https://pubmed.ncbi.nlm.nih.gov/34164781">PubMed</a>] [<a href="https://doi.org/10.1007%2Fs12602-021-09811-6" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Probiotics+Antimicrob.+Proteins.&amp;title=Isolation+of+Lactic+Acid+Bacteria+from+Intestine+of+Freshwater+Fishes+and+Elucidation+of+Probiotic+Potential+for+Aquaculture+Application&amp;author=K.+Govindaraj&amp;author=V.+Samayanpaulraj&amp;author=V.+Narayanadoss&amp;author=R.+Uthandakalaipandian&amp;volume=13&amp;publication_year=2021&amp;pages=1598-1610&amp;pmid=34164781&amp;doi=10.1007/s12602-021-09811-6&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B16-ijms-23-07784" class="ref-cit-blk half_rhythm">16. <span class="element-citation">Bintsis T. Lactic acid bacteriaas starter cultures: An update in their metabolism and genetics. <span class="ref-journal">Aims Microbiol. </span>2018;<span class="ref-vol">4</span>:665–684. doi: 10.3934/microbiol.2018.4.665. <span class="nowrap">[<a class="int-reflink" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6613329/">PMC free article</a>]</span> [<a href="https://pubmed.ncbi.nlm.nih.gov/31294241">PubMed</a>] [<a href="https://doi.org/10.3934%2Fmicrobiol.2018.4.665" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Aims+Microbiol.&amp;title=Lactic+acid+bacteriaas+starter+cultures:+An+update+in+their+metabolism+and+genetics&amp;author=T.+Bintsis&amp;volume=4&amp;publication_year=2018&amp;pages=665-684&amp;pmid=31294241&amp;doi=10.3934/microbiol.2018.4.665&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B17-ijms-23-07784" class="ref-cit-blk half_rhythm">17. <span class="element-citation">Sathe S., Nawani N., Dhakephalkar P., Kapadnis B. Antifungal lactic acid bacteria with potential to prolong shelf-life of fresh vegetables. <span class="ref-journal">J. Appl. Microbiol. </span>2007;<span class="ref-vol">103</span>:2622–2628. doi: 10.1111/j.1365-2672.2007.03525.x. [<a href="https://pubmed.ncbi.nlm.nih.gov/17850302">PubMed</a>] [<a href="https://doi.org/10.1111%2Fj.1365-2672.2007.03525.x" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=J.+Appl.+Microbiol.&amp;title=Antifungal+lactic+acid+bacteria+with+potential+to+prolong+shelf-life+of+fresh+vegetables&amp;author=S.+Sathe&amp;author=N.+Nawani&amp;author=P.+Dhakephalkar&amp;author=B.+Kapadnis&amp;volume=103&amp;publication_year=2007&amp;pages=2622-2628&amp;pmid=17850302&amp;doi=10.1111/j.1365-2672.2007.03525.x&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B18-ijms-23-07784" class="ref-cit-blk half_rhythm">18. <span class="element-citation">Trias R., Bañeras L., Montesinos E., Badosa E. Lactic acid bacteria from fresh fruit and vegetables as biocontrol agents of phytopathogenic bacteria and fungi. <span class="ref-journal">Int. Microbiol. </span>2008;<span class="ref-vol">11</span>:231–236. [<a href="https://pubmed.ncbi.nlm.nih.gov/19204894">PubMed</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Int.+Microbiol.&amp;title=Lactic+acid+bacteria+from+fresh+fruit+and+vegetables+as+biocontrol+agents+of+phytopathogenic+bacteria+and+fungi&amp;author=R.+Trias&amp;author=L.+Ba%C3%B1eras&amp;author=E.+Montesinos&amp;author=E.+Badosa&amp;volume=11&amp;publication_year=2008&amp;pages=231-236&amp;pmid=19204894&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B19-ijms-23-07784" class="ref-cit-blk half_rhythm">19. <span class="element-citation">Djadouni F., Kihal M. Antimicrobial activity of lactic acid bacteria and the spectrum of their biopeptides against spoiling germs in foods. <span class="ref-journal">Braz. Arch. Biol. Technol. </span>2012;<span class="ref-vol">55</span>:435–443. doi: 10.1590/S1516-89132012000300015. [<a href="https://doi.org/10.1590%2FS1516-89132012000300015" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Braz.+Arch.+Biol.+Technol.&amp;title=Antimicrobial+activity+of+lactic+acid+bacteria+and+the+spectrum+of+their+biopeptides+against+spoiling+germs+in+foods&amp;author=F.+Djadouni&amp;author=M.+Kihal&amp;volume=55&amp;publication_year=2012&amp;pages=435-443&amp;doi=10.1590/S1516-89132012000300015&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B20-ijms-23-07784" class="ref-cit-blk half_rhythm">20. <span class="element-citation">Liu W., Pang H., Zhang H., Cai Y. Biodiversity of lactic acid bacteria. In: Zhang Y., Cai Y., editors. <span class="ref-journal">Lactic Acid Bacteria.</span> Springer Science &amp; Business Media; Dordrecht, The Netherlands: 2014. <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?title=Lactic+Acid+Bacteria&amp;author=W.+Liu&amp;author=H.+Pang&amp;author=H.+Zhang&amp;author=Y.+Cai&amp;publication_year=2014&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B21-ijms-23-07784" class="ref-cit-blk half_rhythm">21. <span class="element-citation">Khalid K. An overview of lactic acid bacteria. <span class="ref-journal">Int. J. Biosci. </span>2011;<span class="ref-vol">1</span>:1–13. <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Int.+J.+Biosci.&amp;title=An+overview+of+lactic+acid+bacteria&amp;author=K.+Khalid&amp;volume=1&amp;publication_year=2011&amp;pages=1-13&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B22-ijms-23-07784" class="ref-cit-blk half_rhythm">22. <span class="element-citation">Hidalgo D., Corona F., Martín-Marroquin J. Manure biostabilization by effective microorganisms as a way to improve its agronomic value. <span class="ref-journal">Biomass Convers. Bioref. </span>2022 doi: 10.1007/s13399-022-02428-x. [<a href="https://doi.org/10.1007%2Fs13399-022-02428-x" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Biomass+Convers.+Bioref.&amp;title=Manure+biostabilization+by+effective+microorganisms+as+a+way+to+improve+its+agronomic+value&amp;author=D.+Hidalgo&amp;author=F.+Corona&amp;author=J.+Mart%C3%ADn-Marroquin&amp;publication_year=2022&amp;doi=10.1007/s13399-022-02428-x&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B23-ijms-23-07784" class="ref-cit-blk half_rhythm">23. <span class="element-citation">Han H., Ogata Y., Yamamoto Y., Nagao S., Nishino N. Identification of lactic acid bacteria in the rumen and feces of dairy cows fed total mixed ration silage to assess the survival of silage bacteria in the gut. <span class="ref-journal">J. Dairy Sci. </span>2014;<span class="ref-vol">97</span>:5754–5762. doi: 10.3168/jds.2014-7968. [<a href="https://pubmed.ncbi.nlm.nih.gov/24996273">PubMed</a>] [<a href="https://doi.org/10.3168%2Fjds.2014-7968" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=J.+Dairy+Sci.&amp;title=Identification+of+lactic+acid+bacteria+in+the+rumen+and+feces+of+dairy+cows+fed+total+mixed+ration+silage+to+assess+the+survival+of+silage+bacteria+in+the+gut&amp;author=H.+Han&amp;author=Y.+Ogata&amp;author=Y.+Yamamoto&amp;author=S.+Nagao&amp;author=N.+Nishino&amp;volume=97&amp;publication_year=2014&amp;pages=5754-5762&amp;pmid=24996273&amp;doi=10.3168/jds.2014-7968&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B24-ijms-23-07784" class="ref-cit-blk half_rhythm">24. <span class="element-citation">McDonald L.C., McFeeters R.F., Daeschel M.A., Fleming H.P. A differential medium for the enumeration of homofermentative and heterofermentative lactic acid bacteria. <span class="ref-journal">Appl. Environ. Microbiol. </span>1987;<span class="ref-vol">53</span>:1382–1384. doi: 10.1128/aem.53.6.1382-1384.1987. <span class="nowrap">[<a class="int-reflink" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC203874/">PMC free article</a>]</span> [<a href="https://pubmed.ncbi.nlm.nih.gov/16347367">PubMed</a>] [<a href="https://doi.org/10.1128%2Faem.53.6.1382-1384.1987" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Appl.+Environ.+Microbiol.&amp;title=A+differential+medium+for+the+enumeration+of+homofermentative+and+heterofermentative+lactic+acid+bacteria&amp;author=L.C.+McDonald&amp;author=R.F.+McFeeters&amp;author=M.A.+Daeschel&amp;author=H.P.+Fleming&amp;volume=53&amp;publication_year=1987&amp;pages=1382-1384&amp;pmid=16347367&amp;doi=10.1128/aem.53.6.1382-1384.1987&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B25-ijms-23-07784" class="ref-cit-blk half_rhythm">25. <span class="element-citation">Minervini F., Celano G., Lattanzi A., Tedone L., De Mastro G., Gobbetti M., De Angelis M. Lactic acid bacteria in durum wheat flour are endophytic components of the plant during its entire life cycle. <span class="ref-journal">Appl. Environ. Microbiol. </span>2015;<span class="ref-vol">81</span>:6736–6748. doi: 10.1128/AEM.01852-15. <span class="nowrap">[<a class="int-reflink" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4561690/">PMC free article</a>]</span> [<a href="https://pubmed.ncbi.nlm.nih.gov/26187970">PubMed</a>] [<a href="https://doi.org/10.1128%2FAEM.01852-15" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Appl.+Environ.+Microbiol.&amp;title=Lactic+acid+bacteria+in+durum+wheat+flour+are+endophytic+components+of+the+plant+during+its+entire+life+cycle&amp;author=F.+Minervini&amp;author=G.+Celano&amp;author=A.+Lattanzi&amp;author=L.+Tedone&amp;author=G.+De+Mastro&amp;volume=81&amp;publication_year=2015&amp;pages=6736-6748&amp;pmid=26187970&amp;doi=10.1128/AEM.01852-15&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B26-ijms-23-07784" class="ref-cit-blk half_rhythm">26. <span class="element-citation">Ekundayo F.O. Isolation and identification of lactic acid bacteria from rhizosphere soils of three fruit trees, fish and ogi. <span class="ref-journal">Int. J. Curr. Microbiol. Appl. Sci. </span>2014;<span class="ref-vol">3</span>:991–998. <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Int.+J.+Curr.+Microbiol.+Appl.+Sci.&amp;title=Isolation+and+identification+of+lactic+acid+bacteria+from+rhizosphere+soils+of+three+fruit+trees,+fish+and+ogi&amp;author=F.O.+Ekundayo&amp;volume=3&amp;publication_year=2014&amp;pages=991-998&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B27-ijms-23-07784" class="ref-cit-blk half_rhythm">27. <span class="element-citation">Chen Y.S., Yanagida F., Shinohara T. Isolation and identification of lactic acid bacteria from soil using an enrichment procedure. <span class="ref-journal">Lett. Appl. Microbiol. </span>2005;<span class="ref-vol">40</span>:195–200. doi: 10.1111/j.1472-765X.2005.01653.x. [<a href="https://pubmed.ncbi.nlm.nih.gov/15715644">PubMed</a>] [<a href="https://doi.org/10.1111%2Fj.1472-765X.2005.01653.x" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Lett.+Appl.+Microbiol.&amp;title=Isolation+and+identification+of+lactic+acid+bacteria+from+soil+using+an+enrichment+procedure&amp;author=Y.S.+Chen&amp;author=F.+Yanagida&amp;author=T.+Shinohara&amp;volume=40&amp;publication_year=2005&amp;pages=195-200&amp;pmid=15715644&amp;doi=10.1111/j.1472-765X.2005.01653.x&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B28-ijms-23-07784" class="ref-cit-blk half_rhythm">28. <span class="element-citation">Canarini A., Kaiser C., Merchant A., Richter A., Wanek W. Root Exudation of Primary Metabolites: Mechanisms and Their Roles in Plant Responses to Environmental Stimuli. <span class="ref-journal">Front. Plant Sci. </span>2019;<span class="ref-vol">10</span>:157. doi: 10.3389/fpls.2019.00157. <span class="nowrap">[<a class="int-reflink" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6407669/">PMC free article</a>]</span> [<a href="https://pubmed.ncbi.nlm.nih.gov/30881364">PubMed</a>] [<a href="https://doi.org/10.3389%2Ffpls.2019.00157" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Front.+Plant+Sci.&amp;title=Root+Exudation+of+Primary+Metabolites:+Mechanisms+and+Their+Roles+in+Plant+Responses+to+Environmental+Stimuli&amp;author=A.+Canarini&amp;author=C.+Kaiser&amp;author=A.+Merchant&amp;author=A.+Richter&amp;author=W.+Wanek&amp;volume=10&amp;publication_year=2019&amp;pages=157&amp;pmid=30881364&amp;doi=10.3389/fpls.2019.00157&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B29-ijms-23-07784" class="ref-cit-blk half_rhythm">29. <span class="element-citation">Jones D.L. Organic acid in the rhizosphere—A critical review. <span class="ref-journal">Plant Soil. </span>1998;<span class="ref-vol">205</span>:25–44. doi: 10.1023/A:1004356007312. [<a href="https://doi.org/10.1023%2FA%3A1004356007312" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Plant+Soil.&amp;title=Organic+acid+in+the+rhizosphere%E2%80%94A+critical+review&amp;author=D.L.+Jones&amp;volume=205&amp;publication_year=1998&amp;pages=25-44&amp;doi=10.1023/A:1004356007312&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B30-ijms-23-07784" class="ref-cit-blk half_rhythm">30. <span class="element-citation">Fhoula I., Najjari A., Turki Y., Jaballah S., Boudabous A., Ouzari H. Diversity and antimicrobial properties of lactic acid bacteria isolated from rhizosphere of olive trees and desert truffles of Tunisia. <span class="ref-journal">Biomed. Res. Int. </span>2013;<span class="ref-vol">2013</span>:405708. doi: 10.1155/2013/405708. <span class="nowrap">[<a class="int-reflink" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3787589/">PMC free article</a>]</span> [<a href="https://pubmed.ncbi.nlm.nih.gov/24151598">PubMed</a>] [<a href="https://doi.org/10.1155%2F2013%2F405708" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Biomed.+Res.+Int.&amp;title=Diversity+and+antimicrobial+properties+of+lactic+acid+bacteria+isolated+from+rhizosphere+of+olive+trees+and+desert+truffles+of+Tunisia&amp;author=I.+Fhoula&amp;author=A.+Najjari&amp;author=Y.+Turki&amp;author=S.+Jaballah&amp;author=A.+Boudabous&amp;volume=2013&amp;publication_year=2013&amp;pages=405708&amp;pmid=24151598&amp;doi=10.1155/2013/405708&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B31-ijms-23-07784" class="ref-cit-blk half_rhythm">31. <span class="element-citation">Varsha K.K., Nampoothiri K.M. Appraisal of lactic acid bacteria as protective cultures. <span class="ref-journal">Food Control. </span>2016;<span class="ref-vol">69</span>:61–64. doi: 10.1016/j.foodcont.2016.04.032. [<a href="https://doi.org/10.1016%2Fj.foodcont.2016.04.032" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Food+Control&amp;title=Appraisal+of+lactic+acid+bacteria+as+protective+cultures&amp;author=K.K.+Varsha&amp;author=K.M.+Nampoothiri&amp;volume=69&amp;publication_year=2016&amp;pages=61-64&amp;doi=10.1016/j.foodcont.2016.04.032&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B32-ijms-23-07784" class="ref-cit-blk half_rhythm">32. <span class="element-citation">Eskola M., Kos G., Elliott C.T., Hajslova J., Mayar S., Krska R. Worldwide contamination of food-crops with mycotoxins: Validity of the widely cited “FAO estimate” of 25. <span class="ref-journal">Crit. Rev. Food Sci. Nutr. </span>2020;<span class="ref-vol">60</span>:2773–2789. doi: 10.1080/10408398.2019.1658570. [<a href="https://pubmed.ncbi.nlm.nih.gov/31478403">PubMed</a>] [<a href="https://doi.org/10.1080%2F10408398.2019.1658570" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Crit.+Rev.+Food+Sci.+Nutr.&amp;title=Worldwide+contamination+of+food-crops+with+mycotoxins:+Validity+of+the+widely+cited+%E2%80%9CFAO+estimate%E2%80%9D+of+25&amp;author=M.+Eskola&amp;author=G.+Kos&amp;author=C.T.+Elliott&amp;author=J.+Hajslova&amp;author=S.+Mayar&amp;volume=60&amp;publication_year=2020&amp;pages=2773-2789&amp;pmid=31478403&amp;doi=10.1080/10408398.2019.1658570&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B33-ijms-23-07784" class="ref-cit-blk half_rhythm">33. <span class="element-citation">Wagacha J.M., Muthomi J.W. Mycotoxin problem in Africa: Current status, implications to food safety and health and possible management strategies. <span class="ref-journal">Int. J. Food Microbiol. </span>2008;<span class="ref-vol">124</span>:1–12. doi: 10.1016/j.ijfoodmicro.2008.01.008. [<a href="https://pubmed.ncbi.nlm.nih.gov/18258326">PubMed</a>] [<a href="https://doi.org/10.1016%2Fj.ijfoodmicro.2008.01.008" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Int.+J.+Food+Microbiol.&amp;title=Mycotoxin+problem+in+Africa:+Current+status,+implications+to+food+safety+and+health+and+possible+management+strategies&amp;author=J.M.+Wagacha&amp;author=J.W.+Muthomi&amp;volume=124&amp;publication_year=2008&amp;pages=1-12&amp;pmid=18258326&amp;doi=10.1016/j.ijfoodmicro.2008.01.008&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B34-ijms-23-07784" class="ref-cit-blk half_rhythm">34. <span class="element-citation">Paradhipta D.H.V., Joo Y.H., Lee H.J., Lee S.S., Noh H.T., Choi J.S., Kim J., Min H.G., Kim S.C. Effects of Inoculants Producing Antifungal and Carboxylesterase Activities on Corn Silage and Its Shelf Life against Mold Contamination at Feed-Out Phase. <span class="ref-journal">Microorganisms. </span>2021;<span class="ref-vol">9</span>:558. doi: 10.3390/microorganisms9030558. <span class="nowrap">[<a class="int-reflink" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8000624/">PMC free article</a>]</span> [<a href="https://pubmed.ncbi.nlm.nih.gov/33800497">PubMed</a>] [<a href="https://doi.org/10.3390%2Fmicroorganisms9030558" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Microorganisms&amp;title=Effects+of+Inoculants+Producing+Antifungal+and+Carboxylesterase+Activities+on+Corn+Silage+and+Its+Shelf+Life+against+Mold+Contamination+at+Feed-Out+Phase&amp;author=D.H.V.+Paradhipta&amp;author=Y.H.+Joo&amp;author=H.J.+Lee&amp;author=S.S.+Lee&amp;author=H.T.+Noh&amp;volume=9&amp;publication_year=2021&amp;pages=558&amp;pmid=33800497&amp;doi=10.3390/microorganisms9030558&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B35-ijms-23-07784" class="ref-cit-blk half_rhythm">35. <span class="element-citation">Hamed H.A., Moustafa Y.A., Abdel-Aziz S.M. In vivo efficacy of lactic acid bacteria in biological control against <em>Fusarium oxysporum</em> for protection of tomato plant. <span class="ref-journal">Life Sci. </span>2011;<span class="ref-vol">8</span>:462–468. <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Life+Sci.&amp;title=In+vivo+efficacy+of+lactic+acid+bacteria+in+biological+control+against+Fusarium+oxysporum+for+protection+of+tomato+plant&amp;author=H.A.+Hamed&amp;author=Y.A.+Moustafa&amp;author=S.M.+Abdel-Aziz&amp;volume=8&amp;publication_year=2011&amp;pages=462-468&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B36-ijms-23-07784" class="ref-cit-blk half_rhythm">36. <span class="element-citation">Oliveira P.M., Zannini E., Arendt E.K. Cereal fungal infection, mycotoxins, and lactic acid bacteria mediated bioprotection: From crop farming to cereal products. <span class="ref-journal">Food Microbiol. </span>2014;<span class="ref-vol">37</span>:78–95. doi: 10.1016/j.fm.2013.06.003. [<a href="https://pubmed.ncbi.nlm.nih.gov/24230476">PubMed</a>] [<a href="https://doi.org/10.1016%2Fj.fm.2013.06.003" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Food+Microbiol.&amp;title=Cereal+fungal+infection,+mycotoxins,+and+lactic+acid+bacteria+mediated+bioprotection:+From+crop+farming+to+cereal+products&amp;author=P.M.+Oliveira&amp;author=E.+Zannini&amp;author=E.K.+Arendt&amp;volume=37&amp;publication_year=2014&amp;pages=78-95&amp;pmid=24230476&amp;doi=10.1016/j.fm.2013.06.003&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B37-ijms-23-07784" class="ref-cit-blk half_rhythm">37. <span class="element-citation">Laury-Shaw A., Gragg S.E., Echeverry A., Brashears M.M. Survival of <em>Escherichia coli</em> O157: H7 after application of lactic acid bacteria. <span class="ref-journal">J. Sci. Food Agric. </span>2019;<span class="ref-vol">99</span>:1548–1553. doi: 10.1002/jsfa.9332. [<a href="https://pubmed.ncbi.nlm.nih.gov/30144058">PubMed</a>] [<a href="https://doi.org/10.1002%2Fjsfa.9332" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=J.+Sci.+Food+Agric.&amp;title=Survival+of+Escherichia+coli+O157:+H7+after+application+of+lactic+acid+bacteria&amp;author=A.+Laury-Shaw&amp;author=S.E.+Gragg&amp;author=A.+Echeverry&amp;author=M.M.+Brashears&amp;volume=99&amp;publication_year=2019&amp;pages=1548-1553&amp;pmid=30144058&amp;doi=10.1002/jsfa.9332&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B38-ijms-23-07784" class="ref-cit-blk half_rhythm">38. <span class="element-citation">Prusky D., Kobiler I., Akerman M., Miyara I. Effect of acidic solutions and acidic prochloraz on the control of postharvest decay caused by <em>Alternaria alternata</em> in mango and persimmon fruit. <span class="ref-journal">Postharvest Biol. Technol. </span>2006;<span class="ref-vol">42</span>:134–141. doi: 10.1016/j.postharvbio.2006.06.001. [<a href="https://doi.org/10.1016%2Fj.postharvbio.2006.06.001" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Postharvest+Biol.+Technol.&amp;title=Effect+of+acidic+solutions+and+acidic+prochloraz+on+the+control+of+postharvest+decay+caused+by+Alternaria+alternata+in+mango+and+persimmon+fruit&amp;author=D.+Prusky&amp;author=I.+Kobiler&amp;author=M.+Akerman&amp;author=I.+Miyara&amp;volume=42&amp;publication_year=2006&amp;pages=134-141&amp;doi=10.1016/j.postharvbio.2006.06.001&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B39-ijms-23-07784" class="ref-cit-blk half_rhythm">39. <span class="element-citation">Wang H., Sun Y., Chen C., Sun Z., Zhou Y., Shen F., Zhang H., Dai Y. Genome shuffling of <em>Lactobacillus plantarum</em> for improving antifungal activity. <span class="ref-journal">Food Control. </span>2013;<span class="ref-vol">32</span>:341–347. doi: 10.1016/j.foodcont.2012.12.020. [<a href="https://doi.org/10.1016%2Fj.foodcont.2012.12.020" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Food+Control&amp;title=Genome+shuffling+of+Lactobacillus+plantarum+for+improving+antifungal+activity&amp;author=H.+Wang&amp;author=Y.+Sun&amp;author=C.+Chen&amp;author=Z.+Sun&amp;author=Y.+Zhou&amp;volume=32&amp;publication_year=2013&amp;pages=341-347&amp;doi=10.1016/j.foodcont.2012.12.020&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B40-ijms-23-07784" class="ref-cit-blk half_rhythm">40. <span class="element-citation">Crowley S., Mahony J., van Sinderen D. Comparative analysis of two antifungal <em>Lactobacillus plantarum</em> isolates and their application as bioprotectants in refrigerated foods. <span class="ref-journal">J. Appl. Microbiol. </span>2012;<span class="ref-vol">113</span>:1417–1427. doi: 10.1111/jam.12012. [<a href="https://pubmed.ncbi.nlm.nih.gov/22978783">PubMed</a>] [<a href="https://doi.org/10.1111%2Fjam.12012" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=J.+Appl.+Microbiol.&amp;title=Comparative+analysis+of+two+antifungal+Lactobacillus+plantarum+isolates+and+their+application+as+bioprotectants+in+refrigerated+foods&amp;author=S.+Crowley&amp;author=J.+Mahony&amp;author=D.+van+Sinderen&amp;volume=113&amp;publication_year=2012&amp;pages=1417-1427&amp;pmid=22978783&amp;doi=10.1111/jam.12012&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B41-ijms-23-07784" class="ref-cit-blk half_rhythm">41. <span class="element-citation">Gupta R., Srivastava S. Antifungal effect of antimicrobial peptides (AMPs LR14) derived from <em>Lactobacillus plantarum</em> strain LR/14 and their applications in prevention of grain spoilage. <span class="ref-journal">Food Microbiol. </span>2014;<span class="ref-vol">42</span>:1–7. doi: 10.1016/j.fm.2014.02.005. [<a href="https://pubmed.ncbi.nlm.nih.gov/24929709">PubMed</a>] [<a href="https://doi.org/10.1016%2Fj.fm.2014.02.005" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Food+Microbiol.&amp;title=Antifungal+effect+of+antimicrobial+peptides+(AMPs+LR14)+derived+from+Lactobacillus+plantarum+strain+LR/14+and+their+applications+in+prevention+of+grain+spoilage&amp;author=R.+Gupta&amp;author=S.+Srivastava&amp;volume=42&amp;publication_year=2014&amp;pages=1-7&amp;pmid=24929709&amp;doi=10.1016/j.fm.2014.02.005&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B42-ijms-23-07784" class="ref-cit-blk half_rhythm">42. <span class="element-citation">Ghosh R., Barman S., Mukhopadhyay A., Mandal N.C. Biological control of fruit-rot of jackfruit by rhizobacteria and food grade lactic acid bacteria. <span class="ref-journal">Biol. Control. </span>2015;<span class="ref-vol">83</span>:29–36. doi: 10.1016/j.biocontrol.2014.12.020. [<a href="https://doi.org/10.1016%2Fj.biocontrol.2014.12.020" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Biol.+Control.&amp;title=Biological+control+of+fruit-rot+of+jackfruit+by+rhizobacteria+and+food+grade+lactic+acid+bacteria&amp;author=R.+Ghosh&amp;author=S.+Barman&amp;author=A.+Mukhopadhyay&amp;author=N.C.+Mandal&amp;volume=83&amp;publication_year=2015&amp;pages=29-36&amp;doi=10.1016/j.biocontrol.2014.12.020&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B43-ijms-23-07784" class="ref-cit-blk half_rhythm">43. <span class="element-citation">Matei G.M., Matei S., Matei A., Cornea C.P., Draghici E.M., Jerca I.O. Bioprotection of fresh food productsagainst blue mold using lactic acid bacteria with antifungal properties. <span class="ref-journal">Rom. Biotechnol. Lett. </span>2016;<span class="ref-vol">21</span>:11201–11208. <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Rom.+Biotechnol.+Lett.&amp;title=Bioprotection+of+fresh+food+productsagainst+blue+mold+using+lactic+acid+bacteria+with+antifungal+properties&amp;author=G.M.+Matei&amp;author=S.+Matei&amp;author=A.+Matei&amp;author=C.P.+Cornea&amp;author=E.M.+Draghici&amp;volume=21&amp;publication_year=2016&amp;pages=11201-11208&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B44-ijms-23-07784" class="ref-cit-blk half_rhythm">44. <span class="element-citation">Lynch K.M., Zannini E., Guo J., Axel C., Arendt E.K., Kildea S., Coffey A. Control of <em>Zymoseptoria tritici</em> cause of septoria tritici blotch of wheat using antifungal <em>Lactobacillus</em> strains. <span class="ref-journal">J. Appl. Microbiol. </span>2016;<span class="ref-vol">121</span>:485–494. doi: 10.1111/jam.13171. [<a href="https://pubmed.ncbi.nlm.nih.gov/27155088">PubMed</a>] [<a href="https://doi.org/10.1111%2Fjam.13171" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=J.+Appl.+Microbiol.&amp;title=Control+of+Zymoseptoria+tritici+cause+of+septoria+tritici+blotch+of+wheat+using+antifungal+Lactobacillus+strains&amp;author=K.M.+Lynch&amp;author=E.+Zannini&amp;author=J.+Guo&amp;author=C.+Axel&amp;author=E.K.+Arendt&amp;volume=121&amp;publication_year=2016&amp;pages=485-494&amp;pmid=27155088&amp;doi=10.1111/jam.13171&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B45-ijms-23-07784" class="ref-cit-blk half_rhythm">45. <span class="element-citation">Liang N., Cai P., Wu D., Pan Y., Curtis J.M., Ganzle M.G. High-speed counter-current chromatography (HSCCC) purification of antifungal hydroxy unsaturated fatty acids from plant-seed oil and <em>Lactobacillus</em> cultures. <span class="ref-journal">J. Agric. Food Chem. </span>2017;<span class="ref-vol">65</span>:11229–11236. doi: 10.1021/acs.jafc.7b05658. [<a href="https://pubmed.ncbi.nlm.nih.gov/29224354">PubMed</a>] [<a href="https://doi.org/10.1021%2Facs.jafc.7b05658" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=J.+Agric.+Food+Chem.&amp;title=High-speed+counter-current+chromatography+(HSCCC)+purification+of+antifungal+hydroxy+unsaturated+fatty+acids+from+plant-seed+oil+and+Lactobacillus+cultures&amp;author=N.+Liang&amp;author=P.+Cai&amp;author=D.+Wu&amp;author=Y.+Pan&amp;author=J.M.+Curtis&amp;volume=65&amp;publication_year=2017&amp;pages=11229-11236&amp;pmid=29224354&amp;doi=10.1021/acs.jafc.7b05658&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B46-ijms-23-07784" class="ref-cit-blk half_rhythm">46. <span class="element-citation">Kharazian Z.A., Jouzani G.S., Aghdasi M., Khorvash M., Zamani M., Mohammadzadeh H. Biocontrol potential of <em>Lactobacillus</em> strains isolated from corn silages against some plant pathogenic fungi. <span class="ref-journal">Biol. Control. </span>2017;<span class="ref-vol">110</span>:33–43. doi: 10.1016/j.biocontrol.2017.04.004. [<a href="https://doi.org/10.1016%2Fj.biocontrol.2017.04.004" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Biol.+Control&amp;title=Biocontrol+potential+of+Lactobacillus+strains+isolated+from+corn+silages+against+some+plant+pathogenic+fungi&amp;author=Z.A.+Kharazian&amp;author=G.S.+Jouzani&amp;author=M.+Aghdasi&amp;author=M.+Khorvash&amp;author=M.+Zamani&amp;volume=110&amp;publication_year=2017&amp;pages=33-43&amp;doi=10.1016/j.biocontrol.2017.04.004&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B47-ijms-23-07784" class="ref-cit-blk half_rhythm">47. <span class="element-citation">Juodeikiene G., Bartkiene E., Cernauskas D., Cizeikiene D., Zadeike D., Lele V., Bartkevics V. Antifungal activity of lactic acid bacteria and their application for <em>Fusarium</em> mycotoxin reduction in malting wheat grains. <span class="ref-journal">LWT. </span>2018;<span class="ref-vol">89</span>:307–314. doi: 10.1016/j.lwt.2017.10.061. [<a href="https://doi.org/10.1016%2Fj.lwt.2017.10.061" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=LWT&amp;title=Antifungal+activity+of+lactic+acid+bacteria+and+their+application+for+Fusarium+mycotoxin+reduction+in+malting+wheat+grains&amp;author=G.+Juodeikiene&amp;author=E.+Bartkiene&amp;author=D.+Cernauskas&amp;author=D.+Cizeikiene&amp;author=D.+Zadeike&amp;volume=89&amp;publication_year=2018&amp;pages=307-314&amp;doi=10.1016/j.lwt.2017.10.061&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B48-ijms-23-07784" class="ref-cit-blk half_rhythm">48. <span class="element-citation">Ma J., Hong Y., Deng L., Yi L., Zeng K. Screening and characterization of lactic acid bacteria with antifungal activity against <em>Penicillium digitatum</em> on citrus. <span class="ref-journal">Biol. Control. </span>2019;<span class="ref-vol">138</span>:104044. doi: 10.1016/j.biocontrol.2019.104044. [<a href="https://doi.org/10.1016%2Fj.biocontrol.2019.104044" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Biol.+Control&amp;title=Screening+and+characterization+of+lactic+acid+bacteria+with+antifungal+activity+against+Penicillium+digitatum+on+citrus&amp;author=J.+Ma&amp;author=Y.+Hong&amp;author=L.+Deng&amp;author=L.+Yi&amp;author=K.+Zeng&amp;volume=138&amp;publication_year=2019&amp;pages=104044&amp;doi=10.1016/j.biocontrol.2019.104044&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B49-ijms-23-07784" class="ref-cit-blk half_rhythm">49. <span class="element-citation">Khodaei D., Hamidi-Esfahani Z. Influence of bioactive edible coatings loaded with <em>Lactobacillus plantarum</em> on physicochemical properties of fresh strawberries. <span class="ref-journal">Postharvest Biol. Technol. </span>2019;<span class="ref-vol">156</span>:110944. doi: 10.1016/j.postharvbio.2019.110944. [<a href="https://doi.org/10.1016%2Fj.postharvbio.2019.110944" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Postharvest+Biol.+Technol.&amp;title=Influence+of+bioactive+edible+coatings+loaded+with+Lactobacillus+plantarum+on+physicochemical+properties+of+fresh+strawberries&amp;author=D.+Khodaei&amp;author=Z.+Hamidi-Esfahani&amp;volume=156&amp;publication_year=2019&amp;pages=110944&amp;doi=10.1016/j.postharvbio.2019.110944&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B50-ijms-23-07784" class="ref-cit-blk half_rhythm">50. <span class="element-citation">Omedi J.O., Huang W., Zheng J. Effect of sourdough lactic acid bacteria fermentation on phenolic acid release and antifungal activity in pitaya fruit substrate. <span class="ref-journal">Food Sci. Technol. </span>2019;<span class="ref-vol">111</span>:309–317. doi: 10.1016/j.lwt.2019.05.038. [<a href="https://doi.org/10.1016%2Fj.lwt.2019.05.038" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Food+Sci.+Technol.&amp;title=Effect+of+sourdough+lactic+acid+bacteria+fermentation+on+phenolic+acid+release+and+antifungal+activity+in+pitaya+fruit+substrate&amp;author=J.O.+Omedi&amp;author=W.+Huang&amp;author=J.+Zheng&amp;volume=111&amp;publication_year=2019&amp;pages=309-317&amp;doi=10.1016/j.lwt.2019.05.038&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B51-ijms-23-07784" class="ref-cit-blk half_rhythm">51. <span class="element-citation">Luz C., D’Opazo V., Quiles J.M., Romano R., Manes J., Meca G. Biopreservation of tomatoes using fermented media by lactic acid bacteria. <span class="ref-journal">LWT. </span>2020;<span class="ref-vol">130</span>:109618. doi: 10.1016/j.lwt.2020.109618. [<a href="https://doi.org/10.1016%2Fj.lwt.2020.109618" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=LWT&amp;title=Biopreservation+of+tomatoes+using+fermented+media+by+lactic+acid+bacteria&amp;author=C.+Luz&amp;author=V.+D%E2%80%99Opazo&amp;author=J.M.+Quiles&amp;author=R.+Romano&amp;author=J.+Manes&amp;volume=130&amp;publication_year=2020&amp;pages=109618&amp;doi=10.1016/j.lwt.2020.109618&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B52-ijms-23-07784" class="ref-cit-blk half_rhythm">52. <span class="element-citation">Li Z., Wang L., Xie B., Hu S., Zheng Y., Jin P. Effects of exogenous calcium and calcium chelant on cold tolerance of postharvest loquat fruit. <span class="ref-journal">Sci. Hortic. </span>2020;<span class="ref-vol">269</span>:109391. doi: 10.1016/j.scienta.2020.109391. [<a href="https://doi.org/10.1016%2Fj.scienta.2020.109391" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Sci.+Hortic.&amp;title=Effects+of+exogenous+calcium+and+calcium+chelant+on+cold+tolerance+of+postharvest+loquat+fruit&amp;author=Z.+Li&amp;author=L.+Wang&amp;author=B.+Xie&amp;author=S.+Hu&amp;author=Y.+Zheng&amp;volume=269&amp;publication_year=2020&amp;pages=109391&amp;doi=10.1016/j.scienta.2020.109391&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B53-ijms-23-07784" class="ref-cit-blk half_rhythm">53. <span class="element-citation">Muhialdin B.J., Algboory H.L., Kadum H., Mohammed N.K., Saari N., Hassan Z., Hussin A.S.M. Antifungal activity determination for the peptides generated by <em>Lactobacillus plantarum</em> TE10 against <em>Aspergillus flavus</em> in maize seeds. <span class="ref-journal">Food Control. </span>2020;<span class="ref-vol">109</span>:106898. doi: 10.1016/j.foodcont.2019.106898. [<a href="https://doi.org/10.1016%2Fj.foodcont.2019.106898" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Food+Control&amp;title=Antifungal+activity+determination+for+the+peptides+generated+by+Lactobacillus+plantarum+TE10+against+Aspergillus+flavus+in+maize+seeds&amp;author=B.J.+Muhialdin&amp;author=H.L.+Algboory&amp;author=H.+Kadum&amp;author=N.K.+Mohammed&amp;author=N.+Saari&amp;volume=109&amp;publication_year=2020&amp;pages=106898&amp;doi=10.1016/j.foodcont.2019.106898&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B54-ijms-23-07784" class="ref-cit-blk half_rhythm">54. <span class="element-citation">De Simone N., Capozzi V., de Chiara M.L.V., Amodio M.L., Brahimi S., Colelli G., Drider D., Spano G., Russo P. Screening of Lactic Acid Bacteria for the Bio-Control of <em>Botrytis cinerea</em> and the Potential of <em>Lactiplantibacillus plantarum</em> for Eco-Friendly Preservation of Fresh-Cut Kiwifruit. <span class="ref-journal">Microorganisms. </span>2021;<span class="ref-vol">9</span>:773. doi: 10.3390/microorganisms9040773. <span class="nowrap">[<a class="int-reflink" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8068009/">PMC free article</a>]</span> [<a href="https://pubmed.ncbi.nlm.nih.gov/33917211">PubMed</a>] [<a href="https://doi.org/10.3390%2Fmicroorganisms9040773" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Microorganisms&amp;title=Screening+of+Lactic+Acid+Bacteria+for+the+Bio-Control+of+Botrytis+cinerea+and+the+Potential+of+Lactiplantibacillus+plantarum+for+Eco-Friendly+Preservation+of+Fresh-Cut+Kiwifruit&amp;author=N.+De+Simone&amp;author=V.+Capozzi&amp;author=M.L.V.+de+Chiara&amp;author=M.L.+Amodio&amp;author=S.+Brahimi&amp;volume=9&amp;publication_year=2021&amp;pages=773&amp;pmid=33917211&amp;doi=10.3390/microorganisms9040773&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B55-ijms-23-07784" class="ref-cit-blk half_rhythm">55. <span class="element-citation">Diep D.B., Nes I.F. Ribosomally synthesized antibacterial peptides in Gram positive bacteria. <span class="ref-journal">Curr. Drug Targets. </span>2002;<span class="ref-vol">3</span>:107–122. doi: 10.2174/1389450024605409. [<a href="https://pubmed.ncbi.nlm.nih.gov/11958295">PubMed</a>] [<a href="https://doi.org/10.2174%2F1389450024605409" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Curr.+Drug+Targets&amp;title=Ribosomally+synthesized+antibacterial+peptides+in+Gram+positive+bacteria&amp;author=D.B.+Diep&amp;author=I.F.+Nes&amp;volume=3&amp;publication_year=2002&amp;pages=107-122&amp;pmid=11958295&amp;doi=10.2174/1389450024605409&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B56-ijms-23-07784" class="ref-cit-blk half_rhythm">56. <span class="element-citation">Kumariya R., Garsa A.K., Rajput Y.S., Sood S.K., Akhtar N., Patel S. Bacteriocins: Classification, synthesis, mechanism of action and resistance development in food spoilage causing bacteria. <span class="ref-journal">Microb. Pathog. </span>2019;<span class="ref-vol">128</span>:171–177. doi: 10.1016/j.micpath.2019.01.002. [<a href="https://pubmed.ncbi.nlm.nih.gov/30610901">PubMed</a>] [<a href="https://doi.org/10.1016%2Fj.micpath.2019.01.002" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Microb.+Pathog.&amp;title=Bacteriocins:+Classification,+synthesis,+mechanism+of+action+and+resistance+development+in+food+spoilage+causing+bacteria&amp;author=R.+Kumariya&amp;author=A.K.+Garsa&amp;author=Y.S.+Rajput&amp;author=S.K.+Sood&amp;author=N.+Akhtar&amp;volume=128&amp;publication_year=2019&amp;pages=171-177&amp;pmid=30610901&amp;doi=10.1016/j.micpath.2019.01.002&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B57-ijms-23-07784" class="ref-cit-blk half_rhythm">57. <span class="element-citation">Deegan L.H., Cotter P.D., Hill C., Ross P. Bacteriocins: Biological tools for bio-preservation and shelf-life extension. <span class="ref-journal">Int. Dairy J. </span>2006;<span class="ref-vol">16</span>:1058–1071. doi: 10.1016/j.idairyj.2005.10.026. [<a href="https://doi.org/10.1016%2Fj.idairyj.2005.10.026" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Int.+Dairy+J.&amp;title=Bacteriocins:+Biological+tools+for+bio-preservation+and+shelf-life+extension&amp;author=L.H.+Deegan&amp;author=P.D.+Cotter&amp;author=C.+Hill&amp;author=P.+Ross&amp;volume=16&amp;publication_year=2006&amp;pages=1058-1071&amp;doi=10.1016/j.idairyj.2005.10.026&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B58-ijms-23-07784" class="ref-cit-blk half_rhythm">58. <span class="element-citation">Cotter P.D., Hill C., Ross R.P. Bacteriocins: Developing innate immunity for food. <span class="ref-journal">Nat. Rev. Microbiol. </span>2005;<span class="ref-vol">3</span>:777–788. doi: 10.1038/nrmicro1273. [<a href="https://pubmed.ncbi.nlm.nih.gov/16205711">PubMed</a>] [<a href="https://doi.org/10.1038%2Fnrmicro1273" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Nat.+Rev.+Microbiol.&amp;title=Bacteriocins:+Developing+innate+immunity+for+food&amp;author=P.D.+Cotter&amp;author=C.+Hill&amp;author=R.P.+Ross&amp;volume=3&amp;publication_year=2005&amp;pages=777-788&amp;pmid=16205711&amp;doi=10.1038/nrmicro1273&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B59-ijms-23-07784" class="ref-cit-blk half_rhythm">59. <span class="element-citation">Montville T.J., Chen Y. Mechanistic action of pediocin and nisin: Recent progress and unresolved questions. <span class="ref-journal">Appl. Microbiol. Biotechnol. </span>1998;<span class="ref-vol">50</span>:511–519. doi: 10.1007/s002530051328. [<a href="https://pubmed.ncbi.nlm.nih.gov/9917136">PubMed</a>] [<a href="https://doi.org/10.1007%2Fs002530051328" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Appl.+Microbiol.+Biotechnol.&amp;title=Mechanistic+action+of+pediocin+and+nisin:+Recent+progress+and+unresolved+questions&amp;author=T.J.+Montville&amp;author=Y.+Chen&amp;volume=50&amp;publication_year=1998&amp;pages=511-519&amp;pmid=9917136&amp;doi=10.1007/s002530051328&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B60-ijms-23-07784" class="ref-cit-blk half_rhythm">60. <span class="element-citation">Rooney W.M., Grinter R.W., Correia A., Parkhill J., Walker D.C., Milner J.J. Engineering bacteriocin-mediated resistance against the plant pathogen <em>Pseudomonas syringae</em>. <span class="ref-journal">Plant Biotechnol. J. </span>2020;<span class="ref-vol">18</span>:1296–1306. doi: 10.1111/pbi.13294. <span class="nowrap">[<a class="int-reflink" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7152609/">PMC free article</a>]</span> [<a href="https://pubmed.ncbi.nlm.nih.gov/31705720">PubMed</a>] [<a href="https://doi.org/10.1111%2Fpbi.13294" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Plant+Biotechnol.+J.&amp;title=Engineering+bacteriocin-mediated+resistance+against+the+plant+pathogen+Pseudomonas+syringae&amp;author=W.M.+Rooney&amp;author=R.W.+Grinter&amp;author=A.+Correia&amp;author=J.+Parkhill&amp;author=D.C.+Walker&amp;volume=18&amp;publication_year=2020&amp;pages=1296-1306&amp;pmid=31705720&amp;doi=10.1111/pbi.13294&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B61-ijms-23-07784" class="ref-cit-blk half_rhythm">61. <span class="element-citation">Quadriya H., Ali S.A.M., Parameshwar J., Manasa M., Khan M.Y., Hameeda B. <span class="ref-journal">Implication of Quorum Sensing System in Biofilm Formation and Virulence.</span> Springer; Berlin/Heidelberg, Germany: 2018. Microbes Living Together: Exploiting the Art for Making Biosurfactants and Biofilms; pp. 161–177. <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?title=Implication+of+Quorum+Sensing+System+in+Biofilm+Formation+and+Virulence&amp;author=H.+Quadriya&amp;author=S.A.M.+Ali&amp;author=J.+Parameshwar&amp;author=M.+Manasa&amp;author=M.Y.+Khan&amp;publication_year=2018&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B62-ijms-23-07784" class="ref-cit-blk half_rhythm">62. <span class="element-citation">Rodrigues L., van der Mei H.C., Teixeira J., Oliveira R. Biosurfactant from <em>Lactococcus lactis</em> 53 inhibits microbial adhesion on silicone rubber. <span class="ref-journal">Appl. Microbiol. Biotechnol. </span>2004;<span class="ref-vol">66</span>:306–311. doi: 10.1007/s00253-004-1674-7. [<a href="https://pubmed.ncbi.nlm.nih.gov/15290139">PubMed</a>] [<a href="https://doi.org/10.1007%2Fs00253-004-1674-7" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Appl.+Microbiol.+Biotechnol.&amp;title=Biosurfactant+from+Lactococcus+lactis+53+inhibits+microbial+adhesion+on+silicone+rubber&amp;author=L.+Rodrigues&amp;author=H.C.+van+der+Mei&amp;author=J.+Teixeira&amp;author=R.+Oliveira&amp;volume=66&amp;publication_year=2004&amp;pages=306-311&amp;pmid=15290139&amp;doi=10.1007/s00253-004-1674-7&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B63-ijms-23-07784" class="ref-cit-blk half_rhythm">63. <span class="element-citation">Saravanakumari P., Mani K. Structural characterization of a novel xylolipid biosurfactant from <em>Lactococcus lactis</em> and analysis of antibacterial activity against multi-drug resistant pathogens. <span class="ref-journal">Bioresour. Technol. </span>2010;<span class="ref-vol">101</span>:8851–8854. doi: 10.1016/j.biortech.2010.06.104. [<a href="https://pubmed.ncbi.nlm.nih.gov/20637606">PubMed</a>] [<a href="https://doi.org/10.1016%2Fj.biortech.2010.06.104" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Bioresour.+Technol.&amp;title=Structural+characterization+of+a+novel+xylolipid+biosurfactant+from+Lactococcus+lactis+and+analysis+of+antibacterial+activity+against+multi-drug+resistant+pathogens&amp;author=P.+Saravanakumari&amp;author=K.+Mani&amp;volume=101&amp;publication_year=2010&amp;pages=8851-8854&amp;pmid=20637606&amp;doi=10.1016/j.biortech.2010.06.104&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B64-ijms-23-07784" class="ref-cit-blk half_rhythm">64. <span class="element-citation">Ahn K.B., Baik J.E., Park O.J., Yun C.H., Han S.H. <em>Lactobacillus plantarum</em> lipoteichoic acid inhibits biofilm formation of <em>Streptococcus mutans</em>. <span class="ref-journal">PLoS ONE. </span>2018;<span class="ref-vol">13</span>:e0192694. doi: 10.1371/journal.pone.0192694. <span class="nowrap">[<a class="int-reflink" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5805336/">PMC free article</a>]</span> [<a href="https://pubmed.ncbi.nlm.nih.gov/29420616">PubMed</a>] [<a href="https://doi.org/10.1371%2Fjournal.pone.0192694" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=PLoS+ONE&amp;title=Lactobacillus+plantarum+lipoteichoic+acid+inhibits+biofilm+formation+of+Streptococcus+mutans&amp;author=K.B.+Ahn&amp;author=J.E.+Baik&amp;author=O.J.+Park&amp;author=C.H.+Yun&amp;author=S.H.+Han&amp;volume=13&amp;publication_year=2018&amp;pages=e0192694&amp;pmid=29420616&amp;doi=10.1371/journal.pone.0192694&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B65-ijms-23-07784" class="ref-cit-blk half_rhythm">65. <span class="element-citation">Shrestha A., Kim E.C., Lim C.K., Cho S.Y., Hur J.H., Park D.H. Biological control of soft rot on Chinese cabbage using beneficial bacterial agents in greenhouse and field. <span class="ref-journal">Korean J. Pestic. Sci. </span>2009;<span class="ref-vol">13</span>:325–331. <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Korean+J.+Pestic.+Sci.&amp;title=Biological+control+of+soft+rot+on+Chinese+cabbage+using+beneficial+bacterial+agents+in+greenhouse+and+field&amp;author=A.+Shrestha&amp;author=E.C.+Kim&amp;author=C.K.+Lim&amp;author=S.Y.+Cho&amp;author=J.H.+Hur&amp;volume=13&amp;publication_year=2009&amp;pages=325-331&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B66-ijms-23-07784" class="ref-cit-blk half_rhythm">66. <span class="element-citation">Shrestha A., Choi K.U., Lim C.K., Hur J.H., Cho S.Y. Antagonistic effect of <em>Lactobacillus</em> sp. Strain KLF01 against plant pathogenic bacteria <em>Ralstonia solanacearum</em>. <span class="ref-journal">J. Pestic. Sci. </span>2009;<span class="ref-vol">13</span>:45–53. <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=J.+Pestic.+Sci.&amp;title=Antagonistic+effect+of+Lactobacillus+sp.+Strain+KLF01+against+plant+pathogenic+bacteria+Ralstonia+solanacearum&amp;author=A.+Shrestha&amp;author=K.U.+Choi&amp;author=C.K.+Lim&amp;author=J.H.+Hur&amp;author=S.Y.+Cho&amp;volume=13&amp;publication_year=2009&amp;pages=45-53&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B67-ijms-23-07784" class="ref-cit-blk half_rhythm">67. <span class="element-citation">Visser R., Holzapfel W.H., Bezuidenhout J.J., Kotze J.M. Antagonism of lactic acid bacteria against phytopathogenic bacteria. <span class="ref-journal">Appl. Environ. Microbiol. </span>1986;<span class="ref-vol">52</span>:552–555. doi: 10.1128/aem.52.3.552-555.1986. <span class="nowrap">[<a class="int-reflink" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC203571/">PMC free article</a>]</span> [<a href="https://pubmed.ncbi.nlm.nih.gov/16347150">PubMed</a>] [<a href="https://doi.org/10.1128%2Faem.52.3.552-555.1986" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Appl.+Environ.+Microbiol.&amp;title=Antagonism+of+lactic+acid+bacteria+against+phytopathogenic+bacteria&amp;author=R.+Visser&amp;author=W.H.+Holzapfel&amp;author=J.J.+Bezuidenhout&amp;author=J.M.+Kotze&amp;volume=52&amp;publication_year=1986&amp;pages=552-555&amp;pmid=16347150&amp;doi=10.1128/aem.52.3.552-555.1986&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B68-ijms-23-07784" class="ref-cit-blk half_rhythm">68. <span class="element-citation">Baffoni L., Gaggia F., Dalanaj N., Prodi A., Nipoti P., Pisi A., Biavati B., Di Gioia D. Microbial inoculants for the biocontrol of <em>Fusarium</em> spp. in durum wheat. <span class="ref-journal">BMC Microbiol. </span>2015;<span class="ref-vol">15</span>:242. doi: 10.1186/s12866-015-0573-7. <span class="nowrap">[<a class="int-reflink" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4628387/">PMC free article</a>]</span> [<a href="https://pubmed.ncbi.nlm.nih.gov/26518441">PubMed</a>] [<a href="https://doi.org/10.1186%2Fs12866-015-0573-7" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=BMC+Microbiol.&amp;title=Microbial+inoculants+for+the+biocontrol+of+Fusarium+spp.+in+durum+wheat&amp;author=L.+Baffoni&amp;author=F.+Gaggia&amp;author=N.+Dalanaj&amp;author=A.+Prodi&amp;author=P.+Nipoti&amp;volume=15&amp;publication_year=2015&amp;pages=242&amp;pmid=26518441&amp;doi=10.1186/s12866-015-0573-7&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B69-ijms-23-07784" class="ref-cit-blk half_rhythm">69. <span class="element-citation">Tsitsigiannis D.I., Dimakopoulou M., Antoniou P.P., Tjamos E.C. Biological control strategies of mycotoxigenic fungi and associated mycotoxins in Mediterranean basin crops. <span class="ref-journal">Phytopathol. Mediterr. </span>2012;<span class="ref-vol">51</span>:158–174. <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Phytopathol.+Mediterr.&amp;title=Biological+control+strategies+of+mycotoxigenic+fungi+and+associated+mycotoxins+in+Mediterranean+basin+crops&amp;author=D.I.+Tsitsigiannis&amp;author=M.+Dimakopoulou&amp;author=P.P.+Antoniou&amp;author=E.C.+Tjamos&amp;volume=51&amp;publication_year=2012&amp;pages=158-174&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B70-ijms-23-07784" class="ref-cit-blk half_rhythm">70. <span class="element-citation">Valerio F., Lavermicocca P., Pascale M., Visconti A. Production of phenyllactic acid by lactic acid bacteria: An approach to the selection of strains contributing to food quality and preservation. <span class="ref-journal">FEMS Microbiol. Lett. </span>2004;<span class="ref-vol">233</span>:289–295. doi: 10.1111/j.1574-6968.2004.tb09494.x. [<a href="https://pubmed.ncbi.nlm.nih.gov/15063498">PubMed</a>] [<a href="https://doi.org/10.1111%2Fj.1574-6968.2004.tb09494.x" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=FEMS+Microbiol.+Lett.&amp;title=Production+of+phenyllactic+acid+by+lactic+acid+bacteria:+An+approach+to+the+selection+of+strains+contributing+to+food+quality+and+preservation&amp;author=F.+Valerio&amp;author=P.+Lavermicocca&amp;author=M.+Pascale&amp;author=A.+Visconti&amp;volume=233&amp;publication_year=2004&amp;pages=289-295&amp;pmid=15063498&amp;doi=10.1111/j.1574-6968.2004.tb09494.x&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B71-ijms-23-07784" class="ref-cit-blk half_rhythm">71. <span class="element-citation">Lipinska L., Klewicki R., Sojka M., Bonikowski R., Zyzelewiz D., Kolodziejczyk K., Klrwicka E. Antifungal Activity of <em>Lactobacillus pentosus</em> ŁOCK 0979 in the Presence of Polyols and Galactosyl-Polyols. <span class="ref-journal">Probiotics Antimicro. Proteins. </span>2018;<span class="ref-vol">10</span>:186–200. doi: 10.1007/s12602-017-9344-0. <span class="nowrap">[<a class="int-reflink" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5974004/">PMC free article</a>]</span> [<a href="https://pubmed.ncbi.nlm.nih.gov/29110259">PubMed</a>] [<a href="https://doi.org/10.1007%2Fs12602-017-9344-0" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Probiotics+Antimicro.+Proteins&amp;title=Antifungal+Activity+of+Lactobacillus+pentosus+%C5%81OCK+0979+in+the+Presence+of+Polyols+and+Galactosyl-Polyols&amp;author=L.+Lipinska&amp;author=R.+Klewicki&amp;author=M.+Sojka&amp;author=R.+Bonikowski&amp;author=D.+Zyzelewiz&amp;volume=10&amp;publication_year=2018&amp;pages=186-200&amp;doi=10.1007/s12602-017-9344-0&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B72-ijms-23-07784" class="ref-cit-blk half_rhythm">72. <span class="element-citation">Sjogren J., Magnusson J., Broberg A., Schnürer J., Kenne L. Antifungal 3-hydroxy fatty acids from <em>Lactobacillus plantarum</em> MiLAB 14. <span class="ref-journal">Appl. Environ. Microbiol. </span>2003;<span class="ref-vol">69</span>:7554–7557. doi: 10.1128/AEM.69.12.7554-7557.2003. <span class="nowrap">[<a class="int-reflink" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC309954/">PMC free article</a>]</span> [<a href="https://pubmed.ncbi.nlm.nih.gov/14660414">PubMed</a>] [<a href="https://doi.org/10.1128%2FAEM.69.12.7554-7557.2003" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Appl.+Environ.+Microbiol.&amp;title=Antifungal+3-hydroxy+fatty+acids+from+Lactobacillus+plantarum+MiLAB+14&amp;author=J.+Sjogren&amp;author=J.+Magnusson&amp;author=A.+Broberg&amp;author=J.+Schn%C3%BCrer&amp;author=L.+Kenne&amp;volume=69&amp;publication_year=2003&amp;pages=7554-7557&amp;pmid=14660414&amp;doi=10.1128/AEM.69.12.7554-7557.2003&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B73-ijms-23-07784" class="ref-cit-blk half_rhythm">73. <span class="element-citation">Lappa I.K., Mparampouti S., Lanza B., Panagou E.Z. Control of <em>Aspergillus carbonarius</em> in grape berries by <em>Lactobacillus plantarum</em>: A phenotypic and gene transcription study. <span class="ref-journal">Int. J. Food Microbiol. </span>2018;<span class="ref-vol">275</span>:56–65. doi: 10.1016/j.ijfoodmicro.2018.04.001. [<a href="https://pubmed.ncbi.nlm.nih.gov/29635101">PubMed</a>] [<a href="https://doi.org/10.1016%2Fj.ijfoodmicro.2018.04.001" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Int.+J.+Food+Microbiol.&amp;title=Control+of+Aspergillus+carbonarius+in+grape+berries+by+Lactobacillus+plantarum:+A+phenotypic+and+gene+transcription+study&amp;author=I.K.+Lappa&amp;author=S.+Mparampouti&amp;author=B.+Lanza&amp;author=E.Z.+Panagou&amp;volume=275&amp;publication_year=2018&amp;pages=56-65&amp;pmid=29635101&amp;doi=10.1016/j.ijfoodmicro.2018.04.001&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B74-ijms-23-07784" class="ref-cit-blk half_rhythm">74. <span class="element-citation">Pohl C.H., Kock J.L.F., Thibane V.S. Antifungal free fatty acids: A review. In: Mendez-Vilas A., editor. <span class="ref-journal">Science against Microbial Pathogens: Current Research and Technological Advances.</span> Volume 1. Formatex; Badajoz, Spain: 2011. pp. 61–71. <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?title=Science+against+Microbial+Pathogens:+Current+Research+and+Technological+Advances&amp;author=C.H.+Pohl&amp;author=J.L.F.+Kock&amp;author=V.S.+Thibane&amp;publication_year=2011&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B75-ijms-23-07784" class="ref-cit-blk half_rhythm">75. <span class="element-citation">Dopazo V., Luz C., Quiles J.M., Calpe J., Romano R., Manes J., Meca G. Potential application of lactic acid bacteria in the biopreservation of red grape from mycotoxigenic fungi. <span class="ref-journal">J. Sci. Food Agric. </span>2022;<span class="ref-vol">102</span>:898–907. doi: 10.1002/jsfa.11422. [<a href="https://pubmed.ncbi.nlm.nih.gov/34240436">PubMed</a>] [<a href="https://doi.org/10.1002%2Fjsfa.11422" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=J.+Sci.+Food+Agric.&amp;title=Potential+application+of+lactic+acid+bacteria+in+the+biopreservation+of+red+grape+from+mycotoxigenic+fungi&amp;author=V.+Dopazo&amp;author=C.+Luz&amp;author=J.M.+Quiles&amp;author=J.+Calpe&amp;author=R.+Romano&amp;volume=102&amp;publication_year=2022&amp;pages=898-907&amp;pmid=34240436&amp;doi=10.1002/jsfa.11422&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B76-ijms-23-07784" class="ref-cit-blk half_rhythm">76. <span class="element-citation">Marin A., Plotto A., Atares L., Chiralt A. Lactic acid bacteria incorporated into edible coatings to control fungal growth and maintain postharvest quality of grapes. <span class="ref-journal">HortScience. </span>2019;<span class="ref-vol">54</span>:337–343. doi: 10.21273/HORTSCI13661-18. [<a href="https://doi.org/10.21273%2FHORTSCI13661-18" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=HortScience&amp;title=Lactic+acid+bacteria+incorporated+into+edible+coatings+to+control+fungal+growth+and+maintain+postharvest+quality+of+grapes&amp;author=A.+Marin&amp;author=A.+Plotto&amp;author=L.+Atares&amp;author=A.+Chiralt&amp;volume=54&amp;publication_year=2019&amp;pages=337-343&amp;doi=10.21273/HORTSCI13661-18&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B77-ijms-23-07784" class="ref-cit-blk half_rhythm">77. <span class="element-citation">Magnusson J., Strom K., Roos S., Sjogren J., Schnürer J. Broad and complex antifungal activity among environmental isolates of lactic acid bacteria. <span class="ref-journal">FEMS Microbiol. Lett. </span>2003;<span class="ref-vol">219</span>:129–135. doi: 10.1016/S0378-1097(02)01207-7. [<a href="https://pubmed.ncbi.nlm.nih.gov/12594034">PubMed</a>] [<a href="https://doi.org/10.1016%2FS0378-1097(02)01207-7" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=FEMS+Microbiol.+Lett.&amp;title=Broad+and+complex+antifungal+activity+among+environmental+isolates+of+lactic+acid+bacteria&amp;author=J.+Magnusson&amp;author=K.+Strom&amp;author=S.+Roos&amp;author=J.+Sjogren&amp;author=J.+Schn%C3%BCrer&amp;volume=219&amp;publication_year=2003&amp;pages=129-135&amp;pmid=12594034&amp;doi=10.1016/S0378-1097(02)01207-7&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B78-ijms-23-07784" class="ref-cit-blk half_rhythm">78. <span class="element-citation">Ryan L.A.M., Zannini E., Dal Bello F.B., Pawlowska A., Koehler P., Arendt E.K. <em>Lactobacillus amylovorus</em> DSM 19280 as a novel food-grade antifungal agent for bakery products. <span class="ref-journal">Int. J. Food Microbiol. </span>2011;<span class="ref-vol">146</span>:276–283. doi: 10.1016/j.ijfoodmicro.2011.02.036. [<a href="https://pubmed.ncbi.nlm.nih.gov/21429613">PubMed</a>] [<a href="https://doi.org/10.1016%2Fj.ijfoodmicro.2011.02.036" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Int.+J.+Food+Microbiol.&amp;title=Lactobacillus+amylovorus+DSM+19280+as+a+novel+food-grade+antifungal+agent+for+bakery+products&amp;author=L.A.M.+Ryan&amp;author=E.+Zannini&amp;author=F.B.+Dal+Bello&amp;author=A.+Pawlowska&amp;author=P.+Koehler&amp;volume=146&amp;publication_year=2011&amp;pages=276-283&amp;pmid=21429613&amp;doi=10.1016/j.ijfoodmicro.2011.02.036&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B79-ijms-23-07784" class="ref-cit-blk half_rhythm">79. <span class="element-citation">De Muynck C., Leroy A.I.J., De Maeseneire S., Arnaut F., Soetaert W., Vandamme E.J. Potential of selected lactic acid bacteria to produce food compatible antifungal metabolites. <span class="ref-journal">Microbiol. Res. </span>2004;<span class="ref-vol">159</span>:339–346. doi: 10.1016/j.micres.2004.07.002. [<a href="https://pubmed.ncbi.nlm.nih.gov/15646380">PubMed</a>] [<a href="https://doi.org/10.1016%2Fj.micres.2004.07.002" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Microbiol.+Res.&amp;title=Potential+of+selected+lactic+acid+bacteria+to+produce+food+compatible+antifungal+metabolites&amp;author=C.+De+Muynck&amp;author=A.I.J.+Leroy&amp;author=S.+De+Maeseneire&amp;author=F.+Arnaut&amp;author=W.+Soetaert&amp;volume=159&amp;publication_year=2004&amp;pages=339-346&amp;pmid=15646380&amp;doi=10.1016/j.micres.2004.07.002&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B80-ijms-23-07784" class="ref-cit-blk half_rhythm">80. <span class="element-citation">Guo J., Mauch A., Galle S., Murphy P., Arendt E., Coffey A. Inhibition of growth of Trichophyton tonsurans by <em>Lactobacillus reuteri</em>. <span class="ref-journal">J. Appl. Microbiol. </span>2011;<span class="ref-vol">111</span>:474–483. doi: 10.1111/j.1365-2672.2011.05032.x. [<a href="https://pubmed.ncbi.nlm.nih.gov/21645181">PubMed</a>] [<a href="https://doi.org/10.1111%2Fj.1365-2672.2011.05032.x" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=J.+Appl.+Microbiol.&amp;title=Inhibition+of+growth+of+Trichophyton+tonsurans+by+Lactobacillus+reuteri&amp;author=J.+Guo&amp;author=A.+Mauch&amp;author=S.+Galle&amp;author=P.+Murphy&amp;author=E.+Arendt&amp;volume=111&amp;publication_year=2011&amp;pages=474-483&amp;pmid=21645181&amp;doi=10.1111/j.1365-2672.2011.05032.x&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B81-ijms-23-07784" class="ref-cit-blk half_rhythm">81. <span class="element-citation">Falguni P., Shilpa V., Mann B. Production of proteinaceous antifungal substances from <em>Lactobacillus brevis</em> NCDC 02. <span class="ref-journal">Int. J. Dairy Technol. </span>2010;<span class="ref-vol">63</span>:70–76. doi: 10.1111/j.1471-0307.2009.00553.x. [<a href="https://doi.org/10.1111%2Fj.1471-0307.2009.00553.x" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Int.+J.+Dairy+Technol.&amp;title=Production+of+proteinaceous+antifungal+substances+from+Lactobacillus+brevis+NCDC+02&amp;author=P.+Falguni&amp;author=V.+Shilpa&amp;author=B.+Mann&amp;volume=63&amp;publication_year=2010&amp;pages=70-76&amp;doi=10.1111/j.1471-0307.2009.00553.x&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B82-ijms-23-07784" class="ref-cit-blk half_rhythm">82. <span class="element-citation">Florianowicz T. Antifungal activity of some microorganisms against <em>Penicillium expansum</em>. <span class="ref-journal">Eur. Food Res. Technol. </span>2001;<span class="ref-vol">212</span>:282–286. doi: 10.1007/s002170000261. [<a href="https://doi.org/10.1007%2Fs002170000261" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Eur.+Food+Res.+Technol.&amp;title=Antifungal+activity+of+some+microorganisms+against+Penicillium+expansum&amp;author=T.+Florianowicz&amp;volume=212&amp;publication_year=2001&amp;pages=282-286&amp;doi=10.1007/s002170000261&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B83-ijms-23-07784" class="ref-cit-blk half_rhythm">83. <span class="element-citation">Gerez C., Torres M.J., Font de Valdez G., Rollan G. Control of spoilage fungi by lactic acid bacteria. <span class="ref-journal">Biol. Control. </span>2012;<span class="ref-vol">64</span>:231–237. doi: 10.1016/j.biocontrol.2012.10.009. [<a href="https://doi.org/10.1016%2Fj.biocontrol.2012.10.009" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Biol.+Control&amp;title=Control+of+spoilage+fungi+by+lactic+acid+bacteria&amp;author=C.+Gerez&amp;author=M.J.+Torres&amp;author=G.+Font+de+Valdez&amp;author=G.+Rollan&amp;volume=64&amp;publication_year=2012&amp;pages=231-237&amp;doi=10.1016/j.biocontrol.2012.10.009&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B84-ijms-23-07784" class="ref-cit-blk half_rhythm">84. <span class="element-citation">Muhialdin B.J., Hassan Z., Sadon S.K., Zulkifli N.A., Azfar A. Effect of pH and heat treatment on antifungal activity of <em>Lactobacillus fermentum</em> Te007, <em>Lactobacillus pentosus</em> G004 and <em>Pediococcus pentosaceus</em> Te010. <span class="ref-journal">Innov. Rom. Food Biotechnol. </span>2011;<span class="ref-vol">8</span>:41–53. [<a href="https://pubmed.ncbi.nlm.nih.gov/21806613">PubMed</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Innov.+Rom.+Food+Biotechnol.&amp;title=Effect+of+pH+and+heat+treatment+on+antifungal+activity+of+Lactobacillus+fermentum+Te007,+Lactobacillus+pentosus+G004+and+Pediococcus+pentosaceus+Te010&amp;author=B.J.+Muhialdin&amp;author=Z.+Hassan&amp;author=S.K.+Sadon&amp;author=N.A.+Zulkifli&amp;author=A.+Azfar&amp;volume=8&amp;publication_year=2011&amp;pages=41-53&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B85-ijms-23-07784" class="ref-cit-blk half_rhythm">85. <span class="element-citation">Salas M.L., Mounier J., Maillard M.B., Valence F., Coton E., Thierry A. Identification and quantification of natural compounds produced by antifungal bioprotective cultures in dairy products. <span class="ref-journal">Food Chem. </span>2019;<span class="ref-vol">301</span>:125260. doi: 10.1016/j.foodchem.2019.125260. [<a href="https://pubmed.ncbi.nlm.nih.gov/31404803">PubMed</a>] [<a href="https://doi.org/10.1016%2Fj.foodchem.2019.125260" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Food+Chem.&amp;title=Identification+and+quantification+of+natural+compounds+produced+by+antifungal+bioprotective+cultures+in+dairy+products&amp;author=M.L.+Salas&amp;author=J.+Mounier&amp;author=M.B.+Maillard&amp;author=F.+Valence&amp;author=E.+Coton&amp;volume=301&amp;publication_year=2019&amp;pages=125260&amp;pmid=31404803&amp;doi=10.1016/j.foodchem.2019.125260&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B86-ijms-23-07784" class="ref-cit-blk half_rhythm">86. <span class="element-citation">Ouiddir M., Bettache G., Salas M.L., Pawtowski A., Donot C., Brahimi S., Mabrouk K., Coton E., Mounier J. Selection of Algerian lactic acid bacteria for use as antifungal bioprotective cultures and application in dairy and bakery products. <span class="ref-journal">Food Microbiol. </span>2019;<span class="ref-vol">82</span>:160–170. doi: 10.1016/j.fm.2019.01.020. [<a href="https://pubmed.ncbi.nlm.nih.gov/31027770">PubMed</a>] [<a href="https://doi.org/10.1016%2Fj.fm.2019.01.020" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Food+Microbiol.&amp;title=Selection+of+Algerian+lactic+acid+bacteria+for+use+as+antifungal+bioprotective+cultures+and+application+in+dairy+and+bakery+products&amp;author=M.+Ouiddir&amp;author=G.+Bettache&amp;author=M.L.+Salas&amp;author=A.+Pawtowski&amp;author=C.+Donot&amp;volume=82&amp;publication_year=2019&amp;pages=160-170&amp;pmid=31027770&amp;doi=10.1016/j.fm.2019.01.020&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B87-ijms-23-07784" class="ref-cit-blk half_rhythm">87. <span class="element-citation">Lavermicocca P., Valerio F., Evidente A., Lazzaroni S., Corsettti A., Gobbetti M. Purification and characterization of novel antifungal compounds from the sourdough <em>Lactobacillus plantarum</em> strain 21 B. <span class="ref-journal">Appl. Environ. Microbiol. </span>2000;<span class="ref-vol">6</span>:4084–4090. doi: 10.1128/AEM.66.9.4084-4090.2000. <span class="nowrap">[<a class="int-reflink" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC92262/">PMC free article</a>]</span> [<a href="https://pubmed.ncbi.nlm.nih.gov/10966432">PubMed</a>] [<a href="https://doi.org/10.1128%2FAEM.66.9.4084-4090.2000" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Appl.+Environ.+Microbiol.&amp;title=Purification+and+characterization+of+novel+antifungal+compounds+from+the+sourdough+Lactobacillus+plantarum+strain+21+B&amp;author=P.+Lavermicocca&amp;author=F.+Valerio&amp;author=A.+Evidente&amp;author=S.+Lazzaroni&amp;author=A.+Corsettti&amp;volume=6&amp;publication_year=2000&amp;pages=4084-4090&amp;pmid=10966432&amp;doi=10.1128/AEM.66.9.4084-4090.2000&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B88-ijms-23-07784" class="ref-cit-blk half_rhythm">88. <span class="element-citation">Strom K., Sjogren J., Broberg A., Schnürer J. <em>Lactobacillus plantarum</em> MiLAB 393 produces the antifungal cyclic dipeptides cyclo(L-Phe-L-Pro) and cyclo(L-Phe-trans-4-OH-L-Pro) and 3-phenyllactic acid. <span class="ref-journal">Appl. Environ. Microbiol. </span>2002;<span class="ref-vol">68</span>:4322–4327. doi: 10.1128/AEM.68.9.4322-4327.2002. <span class="nowrap">[<a class="int-reflink" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC124062/">PMC free article</a>]</span> [<a href="https://pubmed.ncbi.nlm.nih.gov/12200282">PubMed</a>] [<a href="https://doi.org/10.1128%2FAEM.68.9.4322-4327.2002" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Appl.+Environ.+Microbiol.&amp;title=Lactobacillus+plantarum+MiLAB+393+produces+the+antifungal+cyclic+dipeptides+cyclo(L-Phe-L-Pro)+and+cyclo(L-Phe-trans-4-OH-L-Pro)+and+3-phenyllactic+acid&amp;author=K.+Strom&amp;author=J.+Sjogren&amp;author=A.+Broberg&amp;author=J.+Schn%C3%BCrer&amp;volume=68&amp;publication_year=2002&amp;pages=4322-4327&amp;pmid=12200282&amp;doi=10.1128/AEM.68.9.4322-4327.2002&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B89-ijms-23-07784" class="ref-cit-blk half_rhythm">89. <span class="element-citation">Sangmanee P., Hongpattarakere T. Inhibitory of multiple antifungal components produced by <em>Lactobacillus plantarum</em> K35 on growth, aflatoxin production and ultrastructure alterations of <em>Aspergillus flavus</em> and <em>Aspergillus parasiticus</em>. <span class="ref-journal">Food Control. </span>2014;<span class="ref-vol">40</span>:224–233. doi: 10.1016/j.foodcont.2013.12.005. [<a href="https://doi.org/10.1016%2Fj.foodcont.2013.12.005" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Food+Control&amp;title=Inhibitory+of+multiple+antifungal+components+produced+by+Lactobacillus+plantarum+K35+on+growth,+aflatoxin+production+and+ultrastructure+alterations+of+Aspergillus+flavus+and+Aspergillus+parasiticus&amp;author=P.+Sangmanee&amp;author=T.+Hongpattarakere&amp;volume=40&amp;publication_year=2014&amp;pages=224-233&amp;doi=10.1016/j.foodcont.2013.12.005&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B90-ijms-23-07784" class="ref-cit-blk half_rhythm">90. <span class="element-citation">Dal Bello F., Clarke C.I., Ryan L.A.M., Ulmer H., Schober T.J., Strom K., van Sinderen D., Schnurer J., Arendt E.K. Improvement of the quality and shelf life of wheat bread by fermentation with the antifungal strain <em>Lactobacillus plantarum</em> FST 1.7. <span class="ref-journal">J. Cereal Sci. </span>2007;<span class="ref-vol">45</span>:309–318. doi: 10.1016/j.jcs.2006.09.004. [<a href="https://doi.org/10.1016%2Fj.jcs.2006.09.004" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=J.+Cereal+Sci.&amp;title=Improvement+of+the+quality+and+shelf+life+of+wheat+bread+by+fermentation+with+the+antifungal+strain+Lactobacillus+plantarum+FST+1.7&amp;author=F.+Dal+Bello&amp;author=C.I.+Clarke&amp;author=L.A.M.+Ryan&amp;author=H.+Ulmer&amp;author=T.J.+Schober&amp;volume=45&amp;publication_year=2007&amp;pages=309-318&amp;doi=10.1016/j.jcs.2006.09.004&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B91-ijms-23-07784" class="ref-cit-blk half_rhythm">91. <span class="element-citation">Yang E.J., Chang H.C. Purification of a new antifungal compound produced by <em>Lactobacillus plantarum</em> AF1 isolated from kimchi. <span class="ref-journal">Int. J. Food Microbiol. </span>2010;<span class="ref-vol">139</span>:56–63. doi: 10.1016/j.ijfoodmicro.2010.02.012. [<a href="https://pubmed.ncbi.nlm.nih.gov/20226553">PubMed</a>] [<a href="https://doi.org/10.1016%2Fj.ijfoodmicro.2010.02.012" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Int.+J.+Food+Microbiol.&amp;title=Purification+of+a+new+antifungal+compound+produced+by+Lactobacillus+plantarum+AF1+isolated+from+kimchi&amp;author=E.J.+Yang&amp;author=H.C.+Chang&amp;volume=139&amp;publication_year=2010&amp;pages=56-63&amp;pmid=20226553&amp;doi=10.1016/j.ijfoodmicro.2010.02.012&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B92-ijms-23-07784" class="ref-cit-blk half_rhythm">92. <span class="element-citation">Franco T., Garcia S., Hirooka E., Ono Y., dos Santos J. Lactic acid bacteria in the inhibition of <em>Fusarium graminearum</em> and deoxynivalenol detoxification. <span class="ref-journal">J. Appl. Microbiol. </span>2011;<span class="ref-vol">111</span>:739–748. doi: 10.1111/j.1365-2672.2011.05074.x. [<a href="https://pubmed.ncbi.nlm.nih.gov/21672097">PubMed</a>] [<a href="https://doi.org/10.1111%2Fj.1365-2672.2011.05074.x" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=J.+Appl.+Microbiol.&amp;title=Lactic+acid+bacteria+in+the+inhibition+of+Fusarium+graminearum+and+deoxynivalenol+detoxification&amp;author=T.+Franco&amp;author=S.+Garcia&amp;author=E.+Hirooka&amp;author=Y.+Ono&amp;author=J.+dos+Santos&amp;volume=111&amp;publication_year=2011&amp;pages=739-748&amp;pmid=21672097&amp;doi=10.1111/j.1365-2672.2011.05074.x&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B93-ijms-23-07784" class="ref-cit-blk half_rhythm">93. <span class="element-citation">Lan W., Chen Y., Wu H., Yanagida F. Bio-protective potential of lactic acid bacteria isolated from fermented wax gourd. <span class="ref-journal">Folia Microbiol. </span>2012;<span class="ref-vol">57</span>:99–105. doi: 10.1007/s12223-012-0101-1. [<a href="https://pubmed.ncbi.nlm.nih.gov/22307833">PubMed</a>] [<a href="https://doi.org/10.1007%2Fs12223-012-0101-1" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Folia+Microbiol.&amp;title=Bio-protective+potential+of+lactic+acid+bacteria+isolated+from+fermented+wax+gourd&amp;author=W.+Lan&amp;author=Y.+Chen&amp;author=H.+Wu&amp;author=F.+Yanagida&amp;volume=57&amp;publication_year=2012&amp;pages=99-105&amp;pmid=22307833&amp;doi=10.1007/s12223-012-0101-1&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B94-ijms-23-07784" class="ref-cit-blk half_rhythm">94. <span class="element-citation">Valerio F., Favilla M., De Bellis P., Sisto A., de Candia S., Lavermicocca P. Antifungal activity of strains of lactic acid bacteria isolated from a semolina ecosystem against <em>Penicillium roqueforti</em>, <em>Aspergillus niger</em> and <em>Endomyces fibuliger</em> contaminating bakery products. <span class="ref-journal">Syst. Appl. Microbiol. </span>2009;<span class="ref-vol">32</span>:438–448. doi: 10.1016/j.syapm.2009.01.004. [<a href="https://pubmed.ncbi.nlm.nih.gov/19243908">PubMed</a>] [<a href="https://doi.org/10.1016%2Fj.syapm.2009.01.004" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Syst.+Appl.+Microbiol.&amp;title=Antifungal+activity+of+strains+of+lactic+acid+bacteria+isolated+from+a+semolina+ecosystem+against+Penicillium+roqueforti,+Aspergillus+niger+and+Endomyces+fibuliger+contaminating+bakery+products&amp;author=F.+Valerio&amp;author=M.+Favilla&amp;author=P.+De+Bellis&amp;author=A.+Sisto&amp;author=S.+de+Candia&amp;volume=32&amp;publication_year=2009&amp;pages=438-448&amp;pmid=19243908&amp;doi=10.1016/j.syapm.2009.01.004&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B95-ijms-23-07784" class="ref-cit-blk half_rhythm">95. <span class="element-citation">Skendzic S., Zovko M., Zivković I.P., Lesic V., Lemic D. The Impact of Climate Change on Agricultural Insect Pests. <span class="ref-journal">Insects. </span>2021;<span class="ref-vol">12</span>:440. doi: 10.3390/insects12050440. <span class="nowrap">[<a class="int-reflink" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8150874/">PMC free article</a>]</span> [<a href="https://pubmed.ncbi.nlm.nih.gov/34066138">PubMed</a>] [<a href="https://doi.org/10.3390%2Finsects12050440" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Insects&amp;title=The+Impact+of+Climate+Change+on+Agricultural+Insect+Pests&amp;author=S.+Skendzic&amp;author=M.+Zovko&amp;author=I.P.+Zivkovi%C4%87&amp;author=V.+Lesic&amp;author=D.+Lemic&amp;volume=12&amp;publication_year=2021&amp;pages=440&amp;pmid=34066138&amp;doi=10.3390/insects12050440&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B96-ijms-23-07784" class="ref-cit-blk half_rhythm">96. <span class="element-citation">Karami-Mohajeri S., Ahmadipour A., Rahimi H.R., Abdollahi M. Adverse effects of organophosphorus pesticides on the liver: A brief summary of four decades of research. <span class="ref-journal">Arh. Hig. Rada. Toksikol. </span>2017;<span class="ref-vol">68</span>:261–275. doi: 10.1515/aiht-2017-68-2989. [<a href="https://pubmed.ncbi.nlm.nih.gov/29337682">PubMed</a>] [<a href="https://doi.org/10.1515%2Faiht-2017-68-2989" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Arh.+Hig.+Rada.+Toksikol.&amp;title=Adverse+effects+of+organophosphorus+pesticides+on+the+liver:+A+brief+summary+of+four+decades+of+research&amp;author=S.+Karami-Mohajeri&amp;author=A.+Ahmadipour&amp;author=H.R.+Rahimi&amp;author=M.+Abdollahi&amp;volume=68&amp;publication_year=2017&amp;pages=261-275&amp;pmid=29337682&amp;doi=10.1515/aiht-2017-68-2989&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B97-ijms-23-07784" class="ref-cit-blk half_rhythm">97. <span class="element-citation">Ruiu L. Microbial Biopesticides in Agroecosystems. <span class="ref-journal">Agronomy. </span>2018;<span class="ref-vol">8</span>:235. doi: 10.3390/agronomy8110235. [<a href="https://doi.org/10.3390%2Fagronomy8110235" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Agronomy&amp;title=Microbial+Biopesticides+in+Agroecosystems&amp;author=L.+Ruiu&amp;volume=8&amp;publication_year=2018&amp;pages=235&amp;doi=10.3390/agronomy8110235&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B98-ijms-23-07784" class="ref-cit-blk half_rhythm">98. <span class="element-citation">Kim H.M., Park J.H., Choi I.S., Wi S.G., Ha S., Chun H.H., Hwang I.M., Chang J.Y., Choi H.J., Kim J.C., et al. Effective approach to organic acid production from agricultural kimchi cabbage waste and its potential application. <span class="ref-journal">PLoS ONE. </span>2018;<span class="ref-vol">13</span>:e0207801. doi: 10.1371/journal.pone.0207801. <span class="nowrap">[<a class="int-reflink" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6245790/">PMC free article</a>]</span> [<a href="https://pubmed.ncbi.nlm.nih.gov/30458042">PubMed</a>] [<a href="https://doi.org/10.1371%2Fjournal.pone.0207801" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=PLoS+ONE&amp;title=Effective+approach+to+organic+acid+production+from+agricultural+kimchi+cabbage+waste+and+its+potential+application&amp;author=H.M.+Kim&amp;author=J.H.+Park&amp;author=I.S.+Choi&amp;author=S.G.+Wi&amp;author=S.+Ha&amp;volume=13&amp;publication_year=2018&amp;pages=e0207801&amp;pmid=30458042&amp;doi=10.1371/journal.pone.0207801&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B99-ijms-23-07784" class="ref-cit-blk half_rhythm">99. <span class="element-citation">Alawamleh A., Durovic G., Maddalena G., Guzzon R., Ganassi S., Hashmi M.M., Wäckers F., Anfora G., Cristofaro A.D. Selection of Lactic Acid Bacteria Species and Strains for Efficient Trapping of <em>Drosophila suzukii</em>. <span class="ref-journal">Insects. </span>2021;<span class="ref-vol">12</span>:153. doi: 10.3390/insects12020153. <span class="nowrap">[<a class="int-reflink" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7918454/">PMC free article</a>]</span> [<a href="https://pubmed.ncbi.nlm.nih.gov/33670332">PubMed</a>] [<a href="https://doi.org/10.3390%2Finsects12020153" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Insects&amp;title=Selection+of+Lactic+Acid+Bacteria+Species+and+Strains+for+Efficient+Trapping+of+Drosophila+suzukii&amp;author=A.+Alawamleh&amp;author=G.+Durovic&amp;author=G.+Maddalena&amp;author=R.+Guzzon&amp;author=S.+Ganassi&amp;volume=12&amp;publication_year=2021&amp;pages=153&amp;pmid=33670332&amp;doi=10.3390/insects12020153&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B100-ijms-23-07784" class="ref-cit-blk half_rhythm">100. <span class="element-citation">Al-Mahin A., Sonomoto K. Nisin tolerance of DnaK-overexpressing <em>Lactococcus lactis</em> strains at 40 °C. <span class="ref-journal">Am. J. Biochem. Mol. Biol. </span>2012;<span class="ref-vol">2</span>:157–166. doi: 10.3923/ajbmb.2012.157.166. [<a href="https://doi.org/10.3923%2Fajbmb.2012.157.166" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Am.+J.+Biochem.+Mol.+Biol.&amp;title=Nisin+tolerance+of+DnaK-overexpressing+Lactococcus+lactis+strains+at+40+%C2%B0C&amp;author=A.+Al-Mahin&amp;author=K.+Sonomoto&amp;volume=2&amp;publication_year=2012&amp;pages=157-166&amp;doi=10.3923/ajbmb.2012.157.166&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B101-ijms-23-07784" class="ref-cit-blk half_rhythm">101. <span class="element-citation">Takei T., Yoshida M., Hatate Y., Shiomori K., Kiyoyama S. Lactic acid bacteria-enclosing poly(epsilon-caprolactone) microcapsules as soil bioamendment. <span class="ref-journal">J. Biosci. Bioeng. </span>2008;<span class="ref-vol">106</span>:268–272. doi: 10.1263/jbb.106.268. [<a href="https://pubmed.ncbi.nlm.nih.gov/18930004">PubMed</a>] [<a href="https://doi.org/10.1263%2Fjbb.106.268" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=J.+Biosci.+Bioeng.&amp;title=Lactic+acid+bacteria-enclosing+poly(epsilon-caprolactone)+microcapsules+as+soil+bioamendment&amp;author=T.+Takei&amp;author=M.+Yoshida&amp;author=Y.+Hatate&amp;author=K.+Shiomori&amp;author=S.+Kiyoyama&amp;volume=106&amp;publication_year=2008&amp;pages=268-272&amp;pmid=18930004&amp;doi=10.1263/jbb.106.268&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B102-ijms-23-07784" class="ref-cit-blk half_rhythm">102. <span class="element-citation">Athanassiou C.G., Kavallieratos N.G., Benelli G., Losic D., Rani P.U., Desneux N. Nanoparticles for pest control: Current status and future perspectives. <span class="ref-journal">J. Pest Sci. </span>2018;<span class="ref-vol">91</span>:1–15. doi: 10.1007/s10340-017-0898-0. [<a href="https://doi.org/10.1007%2Fs10340-017-0898-0" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=J.+Pest+Sci.&amp;title=Nanoparticles+for+pest+control:+Current+status+and+future+perspectives&amp;author=C.G.+Athanassiou&amp;author=N.G.+Kavallieratos&amp;author=G.+Benelli&amp;author=D.+Losic&amp;author=P.U.+Rani&amp;volume=91&amp;publication_year=2018&amp;pages=1-15&amp;doi=10.1007/s10340-017-0898-0&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B103-ijms-23-07784" class="ref-cit-blk half_rhythm">103. <span class="element-citation">Chen H.D., Yada R.N. Nanotechnologies in agriculture: New tools for sustainable development. <span class="ref-journal">Trends Food Sci. Technol. </span>2011;<span class="ref-vol">22</span>:585–594. doi: 10.1016/j.tifs.2011.09.004. [<a href="https://doi.org/10.1016%2Fj.tifs.2011.09.004" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Trends+Food+Sci.+Technol.&amp;title=Nanotechnologies+in+agriculture:+New+tools+for+sustainable+development&amp;author=H.D.+Chen&amp;author=R.N.+Yada&amp;volume=22&amp;publication_year=2011&amp;pages=585-594&amp;doi=10.1016/j.tifs.2011.09.004&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B104-ijms-23-07784" class="ref-cit-blk half_rhythm">104. <span class="element-citation">Dikbas N., Ucar S., Tozlu G., Ozer T.O., Kotan R. Bacterial Chitinase Biochemical Properties, Immobilization on Zinc Oxide (ZnO) Nanoparticle and its Effect on <em>Sitophilus zeamais</em> as a Potential Insecticide. <span class="ref-journal">World J. Microbiol. Biotechnol. </span>2021;<span class="ref-vol">37</span>:173. doi: 10.1007/s11274-021-03138-8. [<a href="https://pubmed.ncbi.nlm.nih.gov/34519907">PubMed</a>] [<a href="https://doi.org/10.1007%2Fs11274-021-03138-8" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=World+J.+Microbiol.+Biotechnol.&amp;title=Bacterial+Chitinase+Biochemical+Properties,+Immobilization+on+Zinc+Oxide+(ZnO)+Nanoparticle+and+its+Effect+on+Sitophilus+zeamais+as+a+Potential+Insecticide&amp;author=N.+Dikbas&amp;author=S.+Ucar&amp;author=G.+Tozlu&amp;author=T.O.+Ozer&amp;author=R.+Kotan&amp;volume=37&amp;publication_year=2021&amp;pages=173&amp;pmid=34519907&amp;doi=10.1007/s11274-021-03138-8&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B105-ijms-23-07784" class="ref-cit-blk half_rhythm">105. <span class="element-citation">Tsavkelova E.A., Klimova S.Y., Cherdyntseva T.A., Netrusov A.I. Microbial producers of plant growth stimulators and their practical use: A review. <span class="ref-journal">Appl. Biochem. Microbiol. </span>2006;<span class="ref-vol">42</span>:117–126. doi: 10.1134/S0003683806020013. [<a href="https://pubmed.ncbi.nlm.nih.gov/16761564">PubMed</a>] [<a href="https://doi.org/10.1134%2FS0003683806020013" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Appl.+Biochem.+Microbiol.&amp;title=Microbial+producers+of+plant+growth+stimulators+and+their+practical+use:+A+review&amp;author=E.A.+Tsavkelova&amp;author=S.Y.+Klimova&amp;author=T.A.+Cherdyntseva&amp;author=A.I.+Netrusov&amp;volume=42&amp;publication_year=2006&amp;pages=117-126&amp;doi=10.1134/S0003683806020013&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B106-ijms-23-07784" class="ref-cit-blk half_rhythm">106. <span class="element-citation">Amprayna K., Supawonga V., Kengkwasingha P., Getmalab A. Plant Growth Promoting Traits of Lactic Acid Bacterium Isolated from Rice Rhizosphere and Its Effect on Rice Growth; Proceedings of the 5th Burapha University International Conference STP-029-10; Pattaya, Thailand. 28–29 July 2016. <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Proceedings+of+the+5th+Burapha+University+International+Conference+STP-029-10&amp;title=Plant+Growth+Promoting+Traits+of+Lactic+Acid+Bacterium+Isolated+from+Rice+Rhizosphere+and+Its+Effect+on+Rice+Growth&amp;author=K.+Amprayna&amp;author=V.+Supawonga&amp;author=P.+Kengkwasingha&amp;author=A.+Getmalab&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B107-ijms-23-07784" class="ref-cit-blk half_rhythm">107. <span class="element-citation">Lynch J.M. Origin, Nature and Biological Activity of Aliphatic Substances and Growth Hormones Found in Soil. In: Vaughan D., Malcolm R.E., editors. <span class="ref-journal">Soil Organic Matter and Biological Activity. Developments in Plant and Soil Sciences.</span> Volume 16 Springer; Dordrecht, The Netherlands: 1985. <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?title=Soil+Organic+Matter+and+Biological+Activity.+Developments+in+Plant+and+Soil+Sciences&amp;author=J.M.+Lynch&amp;publication_year=1985&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B108-ijms-23-07784" class="ref-cit-blk half_rhythm">108. <span class="element-citation">Somers E., Amake A., Croonenborghs A., Overbeek L.S., Vanderleyden J. Lactic acid bacterial in organic agricultural soil; Proceedings of the Rhizosphere 2; Montpellier, France. 26–31 August 2007. <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Proceedings+of+the+Rhizosphere+2&amp;title=Lactic+acid+bacterial+in+organic+agricultural+soil&amp;author=E.+Somers&amp;author=A.+Amake&amp;author=A.+Croonenborghs&amp;author=L.S.+Overbeek&amp;author=J.+Vanderleyden&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B109-ijms-23-07784" class="ref-cit-blk half_rhythm">109. <span class="element-citation">Higa T., Kinjo S. Effect of lactic acid fermentation bacteria on plant growth and soil humus formation. In: Parr J.F., Hornick S.B., Whitman C.E., editors. <span class="ref-journal">Proceedings of the First International Conference on Kyusei Nature Farming, Khon Kaen, Thailand, 17–21 October 1989.</span> US Department of Agriculture; Washington, DC, USA: 1991. pp. 140–147. <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?title=Proceedings+of+the+First+International+Conference+on+Kyusei+Nature+Farming,+Khon+Kaen,+Thailand,+17%E2%80%9321+October+1989&amp;author=T.+Higa&amp;author=S.+Kinjo&amp;publication_year=1991&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B110-ijms-23-07784" class="ref-cit-blk half_rhythm">110. <span class="element-citation">Rusch H.P. <span class="ref-journal">Bodenfruchtbarkeit.</span> Karl F. Haug Verlag; Heidelberg, Germany: 1964. <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?title=Bodenfruchtbarkeit&amp;author=H.P.+Rusch&amp;publication_year=1964&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B111-ijms-23-07784" class="ref-cit-blk half_rhythm">111. <span class="element-citation">Kang S.M., Radhakrishnan R., You Y.H., Khan A.L., Park J.M., Lee S.M., Lee I.J. Cucumber performance is improved by inoculation with plant growth-promoting microorganisms. <span class="ref-journal">Acta Agric. Scand. B soil Plant Sci. </span>2015;<span class="ref-vol">65</span>:36–44. doi: 10.1080/09064710.2014.960889. [<a href="https://doi.org/10.1080%2F09064710.2014.960889" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Acta+Agric.+Scand.+B+soil+Plant+Sci.&amp;title=Cucumber+performance+is+improved+by+inoculation+with+plant+growth-promoting+microorganisms&amp;author=S.M.+Kang&amp;author=R.+Radhakrishnan&amp;author=Y.H.+You&amp;author=A.L.+Khan&amp;author=J.M.+Park&amp;volume=65&amp;publication_year=2015&amp;pages=36-44&amp;doi=10.1080/09064710.2014.960889&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B112-ijms-23-07784" class="ref-cit-blk half_rhythm">112. <span class="element-citation">Lutz M.P., Michel V., Martinez C., Camps C. Lactic acid bacteria as biocontrol agents of soil-borne pathogens biological control of fungal and bacterial plant pathogens. <span class="ref-journal">Biol. Control Fungal Bact. Plant Pathog. </span>2012;<span class="ref-vol">78</span>:285–288. <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Biol.+Control+Fungal+Bact.+Plant+Pathog.&amp;title=Lactic+acid+bacteria+as+biocontrol+agents+of+soil-borne+pathogens+biological+control+of+fungal+and+bacterial+plant+pathogens&amp;author=M.P.+Lutz&amp;author=V.+Michel&amp;author=C.+Martinez&amp;author=C.+Camps&amp;volume=78&amp;publication_year=2012&amp;pages=285-288&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B113-ijms-23-07784" class="ref-cit-blk half_rhythm">113. <span class="element-citation">Shrestha A., Kim B.S., Park D.H. Biological control of bacterial spot disease and plant growth-promoting effects of lactic acid bacteria on pepper. <span class="ref-journal">Biocontrol Sci. Technol. </span>2014;<span class="ref-vol">24</span>:763–779. doi: 10.1080/09583157.2014.894495. [<a href="https://doi.org/10.1080%2F09583157.2014.894495" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Biocontrol+Sci.+Technol.&amp;title=Biological+control+of+bacterial+spot+disease+and+plant+growth-promoting+effects+of+lactic+acid+bacteria+on+pepper&amp;author=A.+Shrestha&amp;author=B.S.+Kim&amp;author=D.H.+Park&amp;volume=24&amp;publication_year=2014&amp;pages=763-779&amp;doi=10.1080/09583157.2014.894495&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B114-ijms-23-07784" class="ref-cit-blk half_rhythm">114. <span class="element-citation">Strafella S., Simpson D.J., Yaghoubi Khanghahi M., De Angelis M., Ganzle M., Minervini F., Crecchio C. Comparative genomics and in vitro plant growth promotion and biocontrol traits of lactic acid bacteria from the wheat rhizosphere. <span class="ref-journal">Microorganisms. </span>2021;<span class="ref-vol">9</span>:78. doi: 10.3390/microorganisms9010078. <span class="nowrap">[<a class="int-reflink" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7823429/">PMC free article</a>]</span> [<a href="https://pubmed.ncbi.nlm.nih.gov/33396755">PubMed</a>] [<a href="https://doi.org/10.3390%2Fmicroorganisms9010078" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Microorganisms&amp;title=Comparative+genomics+and+in+vitro+plant+growth+promotion+and+biocontrol+traits+of+lactic+acid+bacteria+from+the+wheat+rhizosphere&amp;author=S.+Strafella&amp;author=D.J.+Simpson&amp;author=M.+Yaghoubi+Khanghahi&amp;author=M.+De+Angelis&amp;author=M.+Ganzle&amp;volume=9&amp;publication_year=2021&amp;pages=78&amp;pmid=33396755&amp;doi=10.3390/microorganisms9010078&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B115-ijms-23-07784" class="ref-cit-blk half_rhythm">115. <span class="element-citation">Tsuji A., Okada S., Hols P., Satoh E. Metabolic engineering of <em>Lactobacillus plantarum</em> for succinic acid production through activation of the reductive branch of the tricarboxylic acid cycle. <span class="ref-journal">Enzym. Microb. Technol. </span>2013;<span class="ref-vol">53</span>:97–103. doi: 10.1016/j.enzmictec.2013.04.008. [<a href="https://pubmed.ncbi.nlm.nih.gov/23769309">PubMed</a>] [<a href="https://doi.org/10.1016%2Fj.enzmictec.2013.04.008" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Enzym.+Microb.+Technol.&amp;title=Metabolic+engineering+of+Lactobacillus+plantarum+for+succinic+acid+production+through+activation+of+the+reductive+branch+of+the+tricarboxylic+acid+cycle&amp;author=A.+Tsuji&amp;author=S.+Okada&amp;author=P.+Hols&amp;author=E.+Satoh&amp;volume=53&amp;publication_year=2013&amp;pages=97-103&amp;pmid=23769309&amp;doi=10.1016/j.enzmictec.2013.04.008&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B116-ijms-23-07784" class="ref-cit-blk half_rhythm">116. <span class="element-citation">Limanska N., Ivanytsia T., Basiul O., Krylova K., Biscola V., Chobert J.M., Ivanytsia V., Haertle T. Effect of <em>Lactobacillus plantarum</em> on germination and growth of tomato seedlings. <span class="ref-journal">Acta Physiol. Plant. </span>2013;<span class="ref-vol">35</span>:1587–1595. doi: 10.1007/s11738-012-1200-y. [<a href="https://doi.org/10.1007%2Fs11738-012-1200-y" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Acta+Physiol.+Plant.&amp;title=Effect+of+Lactobacillus+plantarum+on+germination+and+growth+of+tomato+seedlings&amp;author=N.+Limanska&amp;author=T.+Ivanytsia&amp;author=O.+Basiul&amp;author=K.+Krylova&amp;author=V.+Biscola&amp;volume=35&amp;publication_year=2013&amp;pages=1587-1595&amp;doi=10.1007/s11738-012-1200-y&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B117-ijms-23-07784" class="ref-cit-blk half_rhythm">117. <span class="element-citation">Rzhevskaya V.S., Oturina I.P., Oturina L.M. Teplitskaya Study of the biological characteristics of the lactic acid bacteria strains. <span class="ref-journal">Серuя Бuoлoгuя Xuмuя </span>2014;<span class="ref-vol">27</span>:145–160. <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=%D0%A1%D0%B5%D1%80u%D1%8F+%D0%91uo%D0%BBo%D0%B3u%D1%8F+Xu%D0%BCu%D1%8F&amp;title=Teplitskaya+Study+of+the+biological+characteristics+of+the+lactic+acid+bacteria+strains&amp;author=V.S.+Rzhevskaya&amp;author=I.P.+Oturina&amp;author=L.M.+Oturina&amp;volume=27&amp;publication_year=2014&amp;pages=145-160&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B118-ijms-23-07784" class="ref-cit-blk half_rhythm">118. <span class="element-citation">Yarullina D.R., Asafova E.V., Kartunova J.E., Ziyatdinova G.K., Ilinskaya O.N. Probiotics for plants: NO-producing lactobacilli protect plants from drought. <span class="ref-journal">Appl. Biochem. Microbiol. </span>2014;<span class="ref-vol">50</span>:166–168. doi: 10.1134/S0003683814020197. [<a href="https://pubmed.ncbi.nlm.nih.gov/25272737">PubMed</a>] [<a href="https://doi.org/10.1134%2FS0003683814020197" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Appl.+Biochem.+Microbiol.&amp;title=Probiotics+for+plants:+NO-producing+lactobacilli+protect+plants+from+drought&amp;author=D.R.+Yarullina&amp;author=E.V.+Asafova&amp;author=J.E.+Kartunova&amp;author=G.K.+Ziyatdinova&amp;author=O.N.+Ilinskaya&amp;volume=50&amp;publication_year=2014&amp;pages=166-168&amp;doi=10.1134/S0003683814020197&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B119-ijms-23-07784" class="ref-cit-blk half_rhythm">119. <span class="element-citation">Phoboo S., Sarkar D., Bhowmik P.C., Jha P.K., Shetty K. Improving salinity resilience in <em>Swertia chirayita</em> clonal line with <em>Lactobacillus plantarum</em>. <span class="ref-journal">Can. J. Plant Sci. </span>2016;<span class="ref-vol">96</span>:117–127. doi: 10.1139/cjps-2015-0178. [<a href="https://doi.org/10.1139%2Fcjps-2015-0178" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Can.+J.+Plant+Sci.&amp;title=Improving+salinity+resilience+in+Swertia+chirayita+clonal+line+with+Lactobacillus+plantarum&amp;author=S.+Phoboo&amp;author=D.+Sarkar&amp;author=P.C.+Bhowmik&amp;author=P.K.+Jha&amp;author=K.+Shetty&amp;volume=96&amp;publication_year=2016&amp;pages=117-127&amp;doi=10.1139/cjps-2015-0178&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B120-ijms-23-07784" class="ref-cit-blk half_rhythm">120. <span class="element-citation">Mohite B. Isolation and characterization of indole acetic acid (IAA) producing bacteria from rhizospheric soil and its effect on plant growth. <span class="ref-journal">J. Soil Sci. Plant Nut. </span>2013;<span class="ref-vol">13</span>:638–649. doi: 10.4067/S0718-95162013005000051. [<a href="https://doi.org/10.4067%2FS0718-95162013005000051" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=J.+Soil+Sci.+Plant+Nut.&amp;title=Isolation+and+characterization+of+indole+acetic+acid+(IAA)+producing+bacteria+from+rhizospheric+soil+and+its+effect+on+plant+growth&amp;author=B.+Mohite&amp;volume=13&amp;publication_year=2013&amp;pages=638-649&amp;doi=10.4067/S0718-95162013005000051&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B121-ijms-23-07784" class="ref-cit-blk half_rhythm">121. <span class="element-citation">Giassi V., Kiritani C., Kupper K.C. Bacteria as growth-promoting agents for citrus rootstocks. <span class="ref-journal">Microbiol. Res. </span>2016;<span class="ref-vol">190</span>:46–54. doi: 10.1016/j.micres.2015.12.006. [<a href="https://pubmed.ncbi.nlm.nih.gov/27393998">PubMed</a>] [<a href="https://doi.org/10.1016%2Fj.micres.2015.12.006" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Microbiol.+Res.&amp;title=Bacteria+as+growth-promoting+agents+for+citrus+rootstocks&amp;author=V.+Giassi&amp;author=C.+Kiritani&amp;author=K.C.+Kupper&amp;volume=190&amp;publication_year=2016&amp;pages=46-54&amp;pmid=27393998&amp;doi=10.1016/j.micres.2015.12.006&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B122-ijms-23-07784" class="ref-cit-blk half_rhythm">122. <span class="element-citation">Wang Y., Bi L., Liao Y., Lu D., Zhang H., Liao X., Liang J.B., Wu Y. Influence and characteristics of <em>Bacillus stearothermophilus</em> in ammonia reduction during layer manure composting. <span class="ref-journal">Ecotoxicol. Environ. Saf. </span>2019;<span class="ref-vol">180</span>:80–87. doi: 10.1016/j.ecoenv.2019.04.066. [<a href="https://pubmed.ncbi.nlm.nih.gov/31078019">PubMed</a>] [<a href="https://doi.org/10.1016%2Fj.ecoenv.2019.04.066" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Ecotoxicol.+Environ.+Saf.&amp;title=Influence+and+characteristics+of+Bacillus+stearothermophilus+in+ammonia+reduction+during+layer+manure+composting&amp;author=Y.+Wang&amp;author=L.+Bi&amp;author=Y.+Liao&amp;author=D.+Lu&amp;author=H.+Zhang&amp;volume=180&amp;publication_year=2019&amp;pages=80-87&amp;pmid=31078019&amp;doi=10.1016/j.ecoenv.2019.04.066&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B123-ijms-23-07784" class="ref-cit-blk half_rhythm">123. <span class="element-citation">Blais A. Lactic Acid and Bacillaceae Fertilizer and Method of Producing Same. No. CA2598539A1. [(accessed on 16 June 2022)];<span class="ref-journal">Canadian Patent. </span>2006 August 31; Available online: <a role="button" href="https://patents.google.com/patent/CA2598539A1/un" target="_blank" rel="noopener" data-ga-action="click_feat_suppl" aria-expanded="false" aria-haspopup="true">https://patents.google.com/patent/CA2598539A1/un</a></span></div>
<div id="B124-ijms-23-07784" class="ref-cit-blk half_rhythm">124. <span class="element-citation">2020 Industry Report: Mushroom, 2021, Market Intelligence Team. [(accessed on 16 June 2022)]. Available online: <a href="https://www.fortunebusinessinsights.com/" target="_blank" rel="noopener" data-ga-action="click_feat_suppl">https://www.fortunebusinessinsights.com</a></span></div>
<div id="B125-ijms-23-07784" class="ref-cit-blk half_rhythm">125. <span class="element-citation">Raman J., Lee S.K., Im J.H., Oh M.J., Oh Y.L., Jang K.Y. Current prospects of mushroom production and industrial growth in India. <span class="ref-journal">J. Mushrooms. </span>2018;<span class="ref-vol">16</span>:239–249. <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=J.+Mushrooms&amp;title=Current+prospects+of+mushroom+production+and+industrial+growth+in+India&amp;author=J.+Raman&amp;author=S.K.+Lee&amp;author=J.H.+Im&amp;author=M.J.+Oh&amp;author=Y.L.+Oh&amp;volume=16&amp;publication_year=2018&amp;pages=239-249&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B126-ijms-23-07784" class="ref-cit-blk half_rhythm">126. <span class="element-citation">HaqMaher M.J., Smyth S., Dodd V.A., McCabe T., Magette W.L., Duggan J., Hennerty M.J. <span class="ref-journal">Managing Spent Mushroom Compost.</span> Teagasc; Dublin, Ireland: 2000. pp. 111–121. <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?title=Managing+Spent+Mushroom+Compost&amp;author=M.J.+HaqMaher&amp;author=S.+Smyth&amp;author=V.A.+Dodd&amp;author=T.+McCabe&amp;author=W.L.+Magette&amp;publication_year=2000&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B127-ijms-23-07784" class="ref-cit-blk half_rhythm">127. <span class="element-citation">Kwiatkowski C.A., Harasim E. The Effect of Fertilization with Spent Mushroom Substrate and Traditional Methods of Fertilization of Common Thyme (<em>Thymus vulgaris</em> L.) on Yield Quality and Antioxidant Properties of Herbal Material. <span class="ref-journal">Agronomy. </span>2021;<span class="ref-vol">11</span>:329. doi: 10.3390/agronomy11020329. [<a href="https://doi.org/10.3390%2Fagronomy11020329" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Agronomy&amp;title=The+Effect+of+Fertilization+with+Spent+Mushroom+Substrate+and+Traditional+Methods+of+Fertilization+of+Common+Thyme+(Thymus+vulgaris+L.)+on+Yield+Quality+and+Antioxidant+Properties+of+Herbal+Material&amp;author=C.A.+Kwiatkowski&amp;author=E.+Harasim&amp;volume=11&amp;publication_year=2021&amp;pages=329&amp;doi=10.3390/agronomy11020329&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B128-ijms-23-07784" class="ref-cit-blk half_rhythm">128. <span class="element-citation">Kim J.S., Lee Y.H., Kim Y.I., Ahmadi F., Oh Y.K., Park J.M., Kwak W.S. Effect of microbial inoculant or molasses on fermentative quality and aerobic stability of sawdust-based spent mushroom substrate. <span class="ref-journal">Bioresour. Technol. </span>2016;<span class="ref-vol">216</span>:188–195. doi: 10.1016/j.biortech.2016.05.056. [<a href="https://pubmed.ncbi.nlm.nih.gov/27240234">PubMed</a>] [<a href="https://doi.org/10.1016%2Fj.biortech.2016.05.056" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Bioresour.+Technol.&amp;title=Effect+of+microbial+inoculant+or+molasses+on+fermentative+quality+and+aerobic+stability+of+sawdust-based+spent+mushroom+substrate&amp;author=J.S.+Kim&amp;author=Y.H.+Lee&amp;author=Y.I.+Kim&amp;author=F.+Ahmadi&amp;author=Y.K.+Oh&amp;volume=216&amp;publication_year=2016&amp;pages=188-195&amp;pmid=27240234&amp;doi=10.1016/j.biortech.2016.05.056&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B129-ijms-23-07784" class="ref-cit-blk half_rhythm">129. <span class="element-citation">Chuang W.Y., Liu C.L., Tsai C.F., Lin W.C., Chang S.C., Shih H., Shy Y.M., Lee T.T. Evaluation of Waste Mushroom Compost as a Feed Supplement and Its Effects on the Fat Metabolism and Antioxidant Capacity of Broilers. <span class="ref-journal">Animals. </span>2020;<span class="ref-vol">10</span>:445. doi: 10.3390/ani10030445. <span class="nowrap">[<a class="int-reflink" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7143042/">PMC free article</a>]</span> [<a href="https://pubmed.ncbi.nlm.nih.gov/32155947">PubMed</a>] [<a href="https://doi.org/10.3390%2Fani10030445" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Animals&amp;title=Evaluation+of+Waste+Mushroom+Compost+as+a+Feed+Supplement+and+Its+Effects+on+the+Fat+Metabolism+and+Antioxidant+Capacity+of+Broilers&amp;author=W.Y.+Chuang&amp;author=C.L.+Liu&amp;author=C.F.+Tsai&amp;author=W.C.+Lin&amp;author=S.C.+Chang&amp;volume=10&amp;publication_year=2020&amp;pages=445&amp;doi=10.3390/ani10030445&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B130-ijms-23-07784" class="ref-cit-blk half_rhythm">130. <span class="element-citation">Cacace C., Rizzello C.G., Brunetti G., Verni M., Cocozza C. Reuse of Wasted Bread as Soil Amendment: Bioprocessing, Effects on Alkaline Soil and Escarole (<em>Cichorium endivia</em>) Production. <span class="ref-journal">Foods. </span>2022;<span class="ref-vol">11</span>:189. doi: 10.3390/foods11020189. <span class="nowrap">[<a class="int-reflink" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8774946/">PMC free article</a>]</span> [<a href="https://pubmed.ncbi.nlm.nih.gov/35053921">PubMed</a>] [<a href="https://doi.org/10.3390%2Ffoods11020189" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Foods&amp;title=Reuse+of+Wasted+Bread+as+Soil+Amendment:+Bioprocessing,+Effects+on+Alkaline+Soil+and+Escarole+(Cichorium+endivia)+Production&amp;author=C.+Cacace&amp;author=C.G.+Rizzello&amp;author=G.+Brunetti&amp;author=M.+Verni&amp;author=C.+Cocozza&amp;volume=11&amp;publication_year=2022&amp;pages=189&amp;pmid=35053921&amp;doi=10.3390/foods11020189&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B131-ijms-23-07784" class="ref-cit-blk half_rhythm">131. <span class="element-citation">Cocozza C., Ercolani G.L. Siderophore production and associated characteristics in rhizosphere and non-rhizosphere fluorescent pseudomonads. <span class="ref-journal">Ann. Microbiol. </span>1997;<span class="ref-vol">47</span>:17–28. <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Ann.+Microbiol.&amp;title=Siderophore+production+and+associated+characteristics+in+rhizosphere+and+non-rhizosphere+fluorescent+pseudomonads&amp;author=C.+Cocozza&amp;author=G.L.+Ercolani&amp;volume=47&amp;publication_year=1997&amp;pages=17-28&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B132-ijms-23-07784" class="ref-cit-blk half_rhythm">132. <span class="element-citation">Sposito G. <span class="ref-journal">The Chemistry of Soil.</span> Oxford University Press; Oxford, UK: 2008. <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?title=The+Chemistry+of+Soil&amp;author=G.+Sposito&amp;publication_year=2008&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B133-ijms-23-07784" class="ref-cit-blk half_rhythm">133. <span class="element-citation">Mao B., Yin R., Li X., Cui S., Zhang H., Zhao J., Chen W. Comparative Genomic Analysis of <em>Lactiplantibacillus plantarum</em> Isolated from Different Niches. <span class="ref-journal">Genes. </span>2021;<span class="ref-vol">12</span>:241. doi: 10.3390/genes12020241. <span class="nowrap">[<a class="int-reflink" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7914981/">PMC free article</a>]</span> [<a href="https://pubmed.ncbi.nlm.nih.gov/33567604">PubMed</a>] [<a href="https://doi.org/10.3390%2Fgenes12020241" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Genes&amp;title=Comparative+Genomic+Analysis+of+Lactiplantibacillus+plantarum+Isolated+from+Different+Niches&amp;author=B.+Mao&amp;author=R.+Yin&amp;author=X.+Li&amp;author=S.+Cui&amp;author=H.+Zhang&amp;volume=12&amp;publication_year=2021&amp;pages=241&amp;pmid=33567604&amp;doi=10.3390/genes12020241&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B134-ijms-23-07784" class="ref-cit-blk half_rhythm">134. <span class="element-citation">Yan Y.H., Zhang F., Chai Z.Y., Liu M., Battino M., Meng X.H. Mixed fermentation of blueberry pomace with <em>L. rhamnosus</em> GG and <em>L. plantarum</em>-1: Enhance the active ingredient, antioxidant activity and health promoting benefits. <span class="ref-journal">Food Chem. Toxicol. </span>2019;<span class="ref-vol">131</span>:110541. doi: 10.1016/j.fct.2019.05.049. [<a href="https://pubmed.ncbi.nlm.nih.gov/31150785">PubMed</a>] [<a href="https://doi.org/10.1016%2Fj.fct.2019.05.049" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Food+Chem.+Toxicol.&amp;title=Mixed+fermentation+of+blueberry+pomace+with+L.+rhamnosus+GG+and+L.+plantarum-1:+Enhance+the+active+ingredient,+antioxidant+activity+and+health+promoting+benefits&amp;author=Y.H.+Yan&amp;author=F.+Zhang&amp;author=Z.Y.+Chai&amp;author=M.+Liu&amp;author=M.+Battino&amp;volume=131&amp;publication_year=2019&amp;pages=110541&amp;pmid=31150785&amp;doi=10.1016/j.fct.2019.05.049&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B135-ijms-23-07784" class="ref-cit-blk half_rhythm">135. <span class="element-citation">Halttunen T., Salminen S., Tahvonen R. Rapid removal of lead and cadmium from water by specific lactic acid bacteria. <span class="ref-journal">Int. J. Food Microbiol. </span>2007;<span class="ref-vol">114</span>:30–35. doi: 10.1016/j.ijfoodmicro.2006.10.040. [<a href="https://pubmed.ncbi.nlm.nih.gov/17184867">PubMed</a>] [<a href="https://doi.org/10.1016%2Fj.ijfoodmicro.2006.10.040" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Int.+J.+Food+Microbiol.&amp;title=Rapid+removal+of+lead+and+cadmium+from+water+by+specific+lactic+acid+bacteria&amp;author=T.+Halttunen&amp;author=S.+Salminen&amp;author=R.+Tahvonen&amp;volume=114&amp;publication_year=2007&amp;pages=30-35&amp;pmid=17184867&amp;doi=10.1016/j.ijfoodmicro.2006.10.040&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B136-ijms-23-07784" class="ref-cit-blk half_rhythm">136. <span class="element-citation">Haskard C., El-Nezami H., Kankaanpaa P., Salminen S., Ahokas J. Surface binding of aflatoxin B1 by lactic acid bacteria. <span class="ref-journal">Appl. Environ. Microbiol. </span>2001;<span class="ref-vol">67</span>:3086–3091. doi: 10.1128/AEM.67.7.3086-3091.2001. <span class="nowrap">[<a class="int-reflink" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC92985/">PMC free article</a>]</span> [<a href="https://pubmed.ncbi.nlm.nih.gov/11425726">PubMed</a>] [<a href="https://doi.org/10.1128%2FAEM.67.7.3086-3091.2001" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Appl.+Environ.+Microbiol.&amp;title=Surface+binding+of+aflatoxin+B1+by+lactic+acid+bacteria&amp;author=C.+Haskard&amp;author=H.+El-Nezami&amp;author=P.+Kankaanpaa&amp;author=S.+Salminen&amp;author=J.+Ahokas&amp;volume=67&amp;publication_year=2001&amp;pages=3086-3091&amp;pmid=11425726&amp;doi=10.1128/AEM.67.7.3086-3091.2001&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B137-ijms-23-07784" class="ref-cit-blk half_rhythm">137. <span class="element-citation">Kromah V., Zhang G. Aqueous Adsorption of Heavy Metals on Metal Sulfide Nanomaterials: Synthesis and Application. <span class="ref-journal">Water. </span>2021;<span class="ref-vol">13</span>:1843. doi: 10.3390/w13131843. [<a href="https://doi.org/10.3390%2Fw13131843" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Water&amp;title=Aqueous+Adsorption+of+Heavy+Metals+on+Metal+Sulfide+Nanomaterials:+Synthesis+and+Application&amp;author=V.+Kromah&amp;author=G.+Zhang&amp;volume=13&amp;publication_year=2021&amp;pages=1843&amp;doi=10.3390/w13131843&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B138-ijms-23-07784" class="ref-cit-blk half_rhythm">138. <span class="element-citation">Ameen F.A., Hamdan A.M., El-Naggar M.Y. Assessment of the heavy metal bioremediation efficiency of the novel marine lactic acid bacterium, <em>Lactobacillus plantarum</em> MF042018. <span class="ref-journal">Sci. Rep. </span>2020;<span class="ref-vol">10</span>:314. doi: 10.1038/s41598-019-57210-3. <span class="nowrap">[<a class="int-reflink" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6962342/">PMC free article</a>]</span> [<a href="https://pubmed.ncbi.nlm.nih.gov/31941935">PubMed</a>] [<a href="https://doi.org/10.1038%2Fs41598-019-57210-3" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Sci.+Rep.&amp;title=Assessment+of+the+heavy+metal+bioremediation+efficiency+of+the+novel+marine+lactic+acid+bacterium,+Lactobacillus+plantarum+MF042018&amp;author=F.A.+Ameen&amp;author=A.M.+Hamdan&amp;author=M.Y.+El-Naggar&amp;volume=10&amp;publication_year=2020&amp;pages=314&amp;pmid=31941935&amp;doi=10.1038/s41598-019-57210-3&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B139-ijms-23-07784" class="ref-cit-blk half_rhythm">139. <span class="element-citation">Kirillova A.V., Danilushkina A.A., Irisov D.S., Bruslik N.L., Fakhrullin R.F., Zakharov Y.A., Bukhmin V.S., Yarullina D.R. Assessment of Resistance and Bioremediation Ability of <em>Lactobacillus</em> Strains to Lead and Cadmium. <span class="ref-journal">Int. J. Microbiol. </span>2017;<span class="ref-vol">2017</span>:9869145. doi: 10.1155/2017/9869145. <span class="nowrap">[<a class="int-reflink" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5241453/">PMC free article</a>]</span> [<a href="https://pubmed.ncbi.nlm.nih.gov/28133483">PubMed</a>] [<a href="https://doi.org/10.1155%2F2017%2F9869145" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Int.+J.+Microbiol.&amp;title=Assessment+of+Resistance+and+Bioremediation+Ability+of+Lactobacillus+Strains+to+Lead+and+Cadmium&amp;author=A.V.+Kirillova&amp;author=A.A.+Danilushkina&amp;author=D.S.+Irisov&amp;author=N.L.+Bruslik&amp;author=R.F.+Fakhrullin&amp;volume=2017&amp;publication_year=2017&amp;pages=9869145&amp;pmid=28133483&amp;doi=10.1155/2017/9869145&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B140-ijms-23-07784" class="ref-cit-blk half_rhythm">140. <span class="element-citation">Kinoshita H. Biosorption of Heavy Metals by Lactic Acid Bacteria for Detoxification. <span class="ref-journal">Methods Mol. Biol. </span>2019;<span class="ref-vol">1887</span>:145–157. [<a href="https://pubmed.ncbi.nlm.nih.gov/30506256">PubMed</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Methods+Mol.+Biol.&amp;title=Biosorption+of+Heavy+Metals+by+Lactic+Acid+Bacteria+for+Detoxification&amp;author=H.+Kinoshita&amp;volume=1887&amp;publication_year=2019&amp;pages=145-157&amp;pmid=30506256&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B141-ijms-23-07784" class="ref-cit-blk half_rhythm">141. <span class="element-citation">Bo L.Y., Zhang Y.H., Zhao X.H. Degradation kinetics of seven organophosphorus pesticides in milk during yoghurt processing. <span class="ref-journal">J. Serb. Chem. Soc. </span>2011;<span class="ref-vol">76</span>:353–362. doi: 10.2298/JSC100615035B. [<a href="https://doi.org/10.2298%2FJSC100615035B" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=J.+Serb.+Chem.+Soc.&amp;title=Degradation+kinetics+of+seven+organophosphorus+pesticides+in+milk+during+yoghurt+processing&amp;author=L.Y.+Bo&amp;author=Y.H.+Zhang&amp;author=X.H.+Zhao&amp;volume=76&amp;publication_year=2011&amp;pages=353-362&amp;doi=10.2298/JSC100615035B&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B142-ijms-23-07784" class="ref-cit-blk half_rhythm">142. <span class="element-citation">Islam M.A., Math R.K., Cho K.M., Lim W.J., Hong S.Y., Kim J.M., Yun M.G., Cho J.J., Yun H.D. Organophosphorus hydrolase (OpdB) of <em>Lactobacillus brevis</em> WCP902 from kimchi is able to degrade organophosphorus pesticides. <span class="ref-journal">J. Agri. Food Chem. </span>2010;<span class="ref-vol">58</span>:5380–5386. doi: 10.1021/jf903878e. [<a href="https://pubmed.ncbi.nlm.nih.gov/20405842">PubMed</a>] [<a href="https://doi.org/10.1021%2Fjf903878e" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=J.+Agri.+Food+Chem.&amp;title=Organophosphorus+hydrolase+(OpdB)+of+Lactobacillus+brevis+WCP902+from+kimchi+is+able+to+degrade+organophosphorus+pesticides&amp;author=M.A.+Islam&amp;author=R.K.+Math&amp;author=K.M.+Cho&amp;author=W.J.+Lim&amp;author=S.Y.+Hong&amp;volume=58&amp;publication_year=2010&amp;pages=5380-5386&amp;doi=10.1021/jf903878e&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B143-ijms-23-07784" class="ref-cit-blk half_rhythm">143. <span class="element-citation">Zhou X.W., Zhao X.H. Susceptibility of nine organophosphorus pesticides in skimmed milk towards inoculated lactic acid bacteria and yogurt starters. <span class="ref-journal">J. Sci. Food Agric. </span>2015;<span class="ref-vol">95</span>:260–266. doi: 10.1002/jsfa.6710. [<a href="https://pubmed.ncbi.nlm.nih.gov/24777955">PubMed</a>] [<a href="https://doi.org/10.1002%2Fjsfa.6710" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=J.+Sci.+Food+Agric.&amp;title=Susceptibility+of+nine+organophosphorus+pesticides+in+skimmed+milk+towards+inoculated+lactic+acid+bacteria+and+yogurt+starters&amp;author=X.W.+Zhou&amp;author=X.H.+Zhao&amp;volume=95&amp;publication_year=2015&amp;pages=260-266&amp;pmid=24777955&amp;doi=10.1002/jsfa.6710&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B144-ijms-23-07784" class="ref-cit-blk half_rhythm">144. <span class="element-citation">Papagianni M. Metabolic engineering of lactic acid bacteria for the production of industrially important compounds. <span class="ref-journal">Comput. Struct. Biotechnol. J. </span>2012;<span class="ref-vol">29</span>:e201210003. doi: 10.5936/csbj.201210003. <span class="nowrap">[<a class="int-reflink" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3962192/">PMC free article</a>]</span> [<a href="https://pubmed.ncbi.nlm.nih.gov/24688663">PubMed</a>] [<a href="https://doi.org/10.5936%2Fcsbj.201210003" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Comput.+Struct.+Biotechnol.+J.&amp;title=Metabolic+engineering+of+lactic+acid+bacteria+for+the+production+of+industrially+important+compounds&amp;author=M.+Papagianni&amp;volume=29&amp;publication_year=2012&amp;pages=e201210003&amp;pmid=24688663&amp;doi=10.5936/csbj.201210003&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B145-ijms-23-07784" class="ref-cit-blk half_rhythm">145. <span class="element-citation">Roberts A., Barrangou R. Applications of CRISPR-Cas systems in lactic acid bacteria. <span class="ref-journal">FEMS Microbiol. Rev. </span>2020;<span class="ref-vol">44</span>:523–537. doi: 10.1093/femsre/fuaa016. [<a href="https://pubmed.ncbi.nlm.nih.gov/32433763">PubMed</a>] [<a href="https://doi.org/10.1093%2Ffemsre%2Ffuaa016" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=FEMS+Microbiol.+Rev.&amp;title=Applications+of+CRISPR-Cas+systems+in+lactic+acid+bacteria&amp;author=A.+Roberts&amp;author=R.+Barrangou&amp;volume=44&amp;publication_year=2020&amp;pages=523-537&amp;pmid=32433763&amp;doi=10.1093/femsre/fuaa016&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B146-ijms-23-07784" class="ref-cit-blk half_rhythm">146. <span class="element-citation">Auras R., Lim L.T., Selke S.E.M., Tsuji H. <span class="ref-journal">Poly (Lactic Acid): Synthesis, Structures, Properties, Processing, and Applications.</span> John Wiley &amp; Sons, Inc.; Hoboken, NJ, USA: 2010. [<a href="https://doi.org/10.1002%2F9780470649848" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?title=Poly+(Lactic+Acid):+Synthesis,+Structures,+Properties,+Processing,+and+Applications&amp;author=R.+Auras&amp;author=L.T.+Lim&amp;author=S.E.M.+Selke&amp;author=H.+Tsuji&amp;publication_year=2010&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B147-ijms-23-07784" class="ref-cit-blk half_rhythm">147. <span class="element-citation">Soundharrajan I., Park H.S., Rengasamy S., Sivanesan R., Choi K.C. Application and Future Prospective of Lactic Acid Bacteria as Natural Additives for Silage Production—A Review. <span class="ref-journal">Appl. Sci. </span>2021;<span class="ref-vol">11</span>:8127. doi: 10.3390/app11178127. [<a href="https://doi.org/10.3390%2Fapp11178127" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Appl.+Sci.&amp;title=Application+and+Future+Prospective+of+Lactic+Acid+Bacteria+as+Natural+Additives+for+Silage+Production%E2%80%94A+Review&amp;author=I.+Soundharrajan&amp;author=H.S.+Park&amp;author=S.+Rengasamy&amp;author=R.+Sivanesan&amp;author=K.C.+Choi&amp;volume=11&amp;publication_year=2021&amp;pages=8127&amp;doi=10.3390/app11178127&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
<div id="B148-ijms-23-07784" class="ref-cit-blk half_rhythm">148. <span class="element-citation">Alonso S., Castrol M.C., Berdascol M., de la Banda I.G., Moreno-Ventas X., de Rojas A.H. Isolation and partial characterization of lactic acid bacteria from the gut microbiota of marine fishes for potential application as probiotics in aquaculture. <span class="ref-journal">Probiotics Antimicrob. Proteins. </span>2019;<span class="ref-vol">11</span>:569–579. doi: 10.1007/s12602-018-9439-2. [<a href="https://pubmed.ncbi.nlm.nih.gov/29959637">PubMed</a>] [<a href="https://doi.org/10.1007%2Fs12602-018-9439-2" target="_blank" rel="noopener noreferrer">CrossRef</a>] <span class="nowrap">[<a role="button" href="https://scholar.google.com/scholar_lookup?journal=Probiotics+Antimicrob.+Proteins&amp;title=Isolation+and+partial+characterization+of+lactic+acid+bacteria+from+the+gut+microbiota+of+marine+fishes+for+potential+application+as+probiotics+in+aquaculture&amp;author=S.+Alonso&amp;author=M.C.+Castrol&amp;author=M.+Berdascol&amp;author=I.G.+de+la+Banda&amp;author=X.+Moreno-Ventas&amp;volume=11&amp;publication_year=2019&amp;pages=569-579&amp;pmid=29959637&amp;doi=10.1007/s12602-018-9439-2&amp;" target="_blank" rel="noopener noreferrer" aria-expanded="false" aria-haspopup="true">Google Scholar</a>]</span></span></div>
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