<?xml version="1.0" encoding="UTF-8"?>
<!DOCTYPE article PUBLIC "-//NLM//DTD JATS (Z39.96) Journal Publishing DTD v1.4 20241031//EN"
        "https://jats.nlm.nih.gov/publishing/1.4/JATS-journalpublishing1-4.dtd">
<article  article-type="reviewer-report"        dtd-version="1.4">
            <front>

                <journal-meta>
                                    <journal-id></journal-id>
            <journal-title-group>
                                                                                    <journal-title>Mantar Dergisi</journal-title>
            </journal-title-group>
                                        <issn pub-type="epub">2147-6845</issn>
                                                                                            <publisher>
                    <publisher-name>Selcuk University</publisher-name>
                </publisher>
                    </journal-meta>
                <article-meta>
                                        <article-id pub-id-type="doi">10.30708/mantar.1840153</article-id>
                                                                <article-categories>
                                            <subj-group  xml:lang="en">
                                                            <subject>Industrial Microbiology</subject>
                                                            <subject>Mycology</subject>
                                                    </subj-group>
                                            <subj-group  xml:lang="tr">
                                                            <subject>Endüstriyel Mikrobiyoloji </subject>
                                                            <subject>Mikoloji</subject>
                                                    </subj-group>
                                    </article-categories>
                                                                                                                                                        <title-group>
                                                                                                                        <article-title>Trichoderma: Bitki Sağlığını ve Tarımsal Sürdürülebilirliği Destekleyen Çok Yönlü Bir Fungus Genusu</article-title>
                                                                                                                                                                                                <trans-title-group xml:lang="en">
                                    <trans-title>Trichoderma: A Multifaceted Fungus Genus Promoting Plant Health and Agricultural Sustainability</trans-title>
                                </trans-title-group>
                                                                                                    </title-group>
            
                                                    <contrib-group content-type="authors">
                                                                        <contrib contrib-type="author">
                                                                    <contrib-id contrib-id-type="orcid">
                                        https://orcid.org/0000-0003-2193-2854</contrib-id>
                                                                <name>
                                    <surname>Karaca</surname>
                                    <given-names>Kemal</given-names>
                                </name>
                                                                    <aff>EGE ÜNİVERSİTESİ</aff>
                                                            </contrib>
                                                    <contrib contrib-type="author">
                                                                    <contrib-id contrib-id-type="orcid">
                                        https://orcid.org/0000-0002-6540-639X</contrib-id>
                                                                <name>
                                    <surname>Maral Gül</surname>
                                    <given-names>Derya</given-names>
                                </name>
                                                                    <aff>EGE ÜNİVERSİTESİ</aff>
                                                            </contrib>
                                                    <contrib contrib-type="author">
                                                                    <contrib-id contrib-id-type="orcid">
                                        https://orcid.org/0000-0002-0642-7676</contrib-id>
                                                                <name>
                                    <surname>Eltem</surname>
                                    <given-names>Rengin</given-names>
                                </name>
                                                                    <aff>EGE ÜNİVERSİTESİ</aff>
                                                            </contrib>
                                                                                </contrib-group>
                        
                                        <pub-date pub-type="pub" iso-8601-date="20260430">
                    <day>04</day>
                    <month>30</month>
                    <year>2026</year>
                </pub-date>
                                        <volume>17</volume>
                                        <issue>1</issue>
                                        <fpage>77</fpage>
                                        <lpage>98</lpage>
                        
                        <history>
                                    <date date-type="received" iso-8601-date="20251223">
                        <day>12</day>
                        <month>23</month>
                        <year>2025</year>
                    </date>
                                                    <date date-type="accepted" iso-8601-date="20260312">
                        <day>03</day>
                        <month>12</month>
                        <year>2026</year>
                    </date>
                            </history>
                                        <permissions>
                    <copyright-statement>Copyright © 2010, The Journal of Fungus</copyright-statement>
                    <copyright-year>2010</copyright-year>
                    <copyright-holder>The Journal of Fungus</copyright-holder>
                </permissions>
            
                                                                                                <abstract><p>Bitkiler üzerinde çok çeşitli yararlı etkileri bulunan bir fungus genusu olan Trichoderma bitki büyümesini teşvik etmek ve bitkileri hastalıklardan korumak için yaygın olarak kullanılmaktadır. Trichoderma, mikoparazitizm, antibiyoz, besinler için rekabet ve bitki sistemik direncini indüklenmesi gibi biyolojik mücadele yeteneğine katkıda bulunan çeşitli etki mekanizmalarına sahiptir. Mikrobiyal gübre olarak Trichoderma’nın, besin minerallerini çözündürerek, çeşitli hormonları ve metabolitleri sentezleyerek bitki büyümesini desteklediği bilinmektedir. Bu özelliklerinin yanında Trichoderma, bitkilerin bu stres koşullarına adaptasyon sağlamasına destek olarak iklim değişikliğinin olumsuz etkilerine karşı tarımsal dayanıklılığı artırabilmektedir. İklim değişikliği, tarımsal üretim üzerinde önemli baskılar yaratmakta ve özellikle kuraklık, tuzluluk ve sıcaklık artışı gibi abiyotik stresler bitkilerin verimliliğini düşürmektedir. Böylece Trichoderma, çevresel faktörlerin değişimine karşı bitkilerin dirençli hale gelmesine yardımcı olarak tarımsal sürdürülebilirliği artırma potansiyeline sahiptir. Tarımsal sürdürülebilirliğin sağlanması yalnızca bitki verimliliğinin artırılmasını değil, aynı zamanda toprak sağlığının korunmasını ve iyileştirilmesini de kapsamaktadır. Ayrıca Trichoderma gibi mikroorganizmalar, toprak ve su kirliliğini azaltmak için kullanılabilmektedir. Trichoderma, ağır metallerin ve diğer toksik bileşiklerin ayrıştırılmasına katkıda bulunarak kirlenmiş alanları temizlemeye yardımcı olmaktadır. Bu şekilde, hem sürdürülebilir tarımı destekleyici bir bitki büyüme düzenleyici hem de çevresel kirliliği azaltmada biyoremediasyon ajanı olarak işlev görebilmektedir.</p></abstract>
                                                                                                                                    <trans-abstract xml:lang="en">
                            <p>Trichoderma, a genus of fungi with a wide range of beneficial effects on plants, is widely used to promote plant growth and protect plants from diseases. Trichoderma has various mechanisms of action that contribute to its biological control abilities, including mycoparasitism, antibiosis, competition for nutrients, and the induction of systemic resistance in plants. As a microbial fertilizer, Trichoderma is known to support plant growth by dissolving minerals, and synthesizing various hormones and metabolites. In addition to these properties, Trichoderma can enhance agricultural resilience against the adverse effects of climate change by supporting plants’ adaptation to these stressful conditions. Climate change results in significant pressures on agricultural production by increasing abiotic stresses, including drought, salinity, and elevated temperatures. Thus, Trichoderma has the potential to improve agricultural sustainability by helping plants become more resilient to environmental changes. The achievement of agricultural sustainability requires not only the enhancement of crop productivity but also the protection and improvement of soil health. Furthermore, microorganisms like Trichoderma can be used to reduce soil and water pollution. Trichoderma contributes to the remediation of heavy metals and other toxic compounds, assisting in the cleanup of contaminated areas. In this way, it functions both as a plant growth regulator that supports sustainable agriculture and as a bioremediation agent in reducing environmental pollution.</p></trans-abstract>
                                                            
            
                                                            <kwd-group>
                                                    <kwd>Trichoderma</kwd>
                                                    <kwd>  Biyolojik mücadele</kwd>
                                                    <kwd>  Mikrobiyal gübre</kwd>
                                                    <kwd>  İklim değişikliği</kwd>
                                                    <kwd>  Dekompozizasyon</kwd>
                                                    <kwd>  Biyoremidasyon</kwd>
                                            </kwd-group>
                                                        
                                                                            <kwd-group xml:lang="en">
                                                    <kwd>Trichoderma</kwd>
                                                    <kwd>  Biological control</kwd>
                                                    <kwd>  Microbial fertilizer</kwd>
                                                    <kwd>  Climate change</kwd>
                                                    <kwd>  Decomposition</kwd>
                                                    <kwd>  Bioremediation</kwd>
                                            </kwd-group>
                                                                                                            </article-meta>
    </front>
    <back>
                            <ref-list>
                                    <ref id="ref1">
                        <label>1</label>
                        <mixed-citation publication-type="journal">Abdul-Halim, A. M. A. A., Shivanand, P., Krishnamoorthy, S. ve Taha, H. (2023). A review on the biological properties of Trichoderma spp. as a prospective biocontrol agent and biofertilizer. Journal of Applied Biology and Biotechnology.</mixed-citation>
                    </ref>
                                    <ref id="ref2">
                        <label>2</label>
                        <mixed-citation publication-type="journal">Abdullah, N. S., Doni, F., Mispan, M. S., Saiman, M. Z., Yusuf, Y. M., Oke, M. A. ve Suhaimi, N. S. M. (2021). Harnessing Trichoderma in agriculture for productivity and sustainability. Agronomy, 11(12), 2559.</mixed-citation>
                    </ref>
                                    <ref id="ref3">
                        <label>3</label>
                        <mixed-citation publication-type="journal">Abhilash, P. C., Dubey, R. K., Tripathi, V., Gupta, V. K. ve Singh, H. B. (2016). Plant growth-promoting microorganisms for environmental sustainability. Trends in Biotechnology, 34(11), 847-850.</mixed-citation>
                    </ref>
                                    <ref id="ref4">
                        <label>4</label>
                        <mixed-citation publication-type="journal">Adnan, M., Islam, W., Shabbir, A., Khan, K. A., Ghramh, H. A., Huang, Z., Chen, H. Y. H. ve Lu, G. D. (2019). Plant defense against fungal pathogens by antagonistic fungi with Trichoderma in focus. Microbial pathogenesis, 129, 7-18.</mixed-citation>
                    </ref>
                                    <ref id="ref5">
                        <label>5</label>
                        <mixed-citation publication-type="journal">Alfiky, A. ve Weisskopf, L. (2021). Deciphering Trichoderma–plant–pathogen interactions for better development of biocontrol applications. Journal of Fungi, 7(1), 61.</mixed-citation>
                    </ref>
                                    <ref id="ref6">
                        <label>6</label>
                        <mixed-citation publication-type="journal">Ali, A., Zeshan, M. A., Mehtab, M., Khursheed, S., Mudasir, M., Abid, M., Mahdi, M., Rauf, H. A., Ameer, S., Younis, M, Altaf, M. T. ve Tahir, A. (2021). A comprehensive note on Trichoderma as a potential biocontrol agent against soil borne fungal pathogens: a review. Plant Protection, 5(3), 171-196.</mixed-citation>
                    </ref>
                                    <ref id="ref7">
                        <label>7</label>
                        <mixed-citation publication-type="journal">Alqahtani, T. M. ve Almanzalawi, E. A. (2025). Trichoderma spp. as Bio-Pesticides: Exploring Diverse Modes of Action. ROMANIAN AGRICULTURAL RESEARCH, 42, 533-548.</mixed-citation>
                    </ref>
                                    <ref id="ref8">
                        <label>8</label>
                        <mixed-citation publication-type="journal">Altomare, C., Norvell, W. A., Björkman, T. H. O. M. A. S. ve Harman, G. (1999). Solubilization of phosphates and micronutrients by the plant-growth-promoting and biocontrol fungus Trichoderma harzianum Rifai 1295-22. Applied and environmental microbiology, 65(7), 2926-2933.</mixed-citation>
                    </ref>
                                    <ref id="ref9">
                        <label>9</label>
                        <mixed-citation publication-type="journal">Anwer, M. A., Singh, K., Prasad, B. D., Yadav, A. K. ve Kumari, P. (2020). Abiotic stress tolerant Trichoderma asperellum Tvb1 from hot spring and its antagonistic potential against soil borne Phytopathogens. International Archive of Applied Sciences and Technology, 11(3), 70-90.</mixed-citation>
                    </ref>
                                    <ref id="ref10">
                        <label>10</label>
                        <mixed-citation publication-type="journal">Bader, A. N., Salerno, G. L., Covacevich, F. ve Consolo, V. F. (2020). Native Trichoderma harzianum strains from Argentina produce indole-3 acetic acid and phosphorus solubilization, promote growth and control wilt disease on tomato (Solanum lycopersicum L.). Journal of King Saud University-Science, 32(1), 867-873.</mixed-citation>
                    </ref>
                                    <ref id="ref11">
                        <label>11</label>
                        <mixed-citation publication-type="journal">Bansal, R., Sahoo, S. A., Barvkar, V. T., Srivastava, A. K. ve Mukherjee, P. K. (2023). Trichoderma virens exerts herbicidal effect on Arabidopsis thaliana via modulation of amino acid metabolism. Plant Science, 332, 111702.</mixed-citation>
                    </ref>
                                    <ref id="ref12">
                        <label>12</label>
                        <mixed-citation publication-type="journal">Bhandari, S., Pandey, K. R., Joshi, Y. R. ve Lamichhane, S. K. (2021). An overview of multifaceted role of Trichoderma spp. for sustainable agriculture. Archives of Agriculture and Environmental Science, 6(1), 72-79.</mixed-citation>
                    </ref>
                                    <ref id="ref13">
                        <label>13</label>
                        <mixed-citation publication-type="journal">Blaszczyk, L. M. S. K. S., Siwulski, M., Sobieralski, K., Lisiecka, J. ve Jedryczka, M. (2014). Trichoderma spp.–application and prospects for use in organic farming and industry. Journal of plant protection research, 54(4).</mixed-citation>
                    </ref>
                                    <ref id="ref14">
                        <label>14</label>
                        <mixed-citation publication-type="journal">Brabcová, V., Nováková, M., Davidová, A. ve Baldrian, P. (2016). Dead fungal mycelium in forest soil represents a decomposition hotspot and a habitat for a specific microbial community. New Phytologist, 210(4), 1369-1381.</mixed-citation>
                    </ref>
                                    <ref id="ref15">
                        <label>15</label>
                        <mixed-citation publication-type="journal">Cai, F., Dou, K., Wang, P., Chenthamara, K., Chen, J. ve Druzhinina, I. S. (2022). The current state of Trichoderma taxonomy and species identification. In Advances in Trichoderma biology for agricultural applications (pp. 3-35). Cham: Springer International Publishing.</mixed-citation>
                    </ref>
                                    <ref id="ref16">
                        <label>16</label>
                        <mixed-citation publication-type="journal">Cai, F. ve Druzhinina, I. S. (2021). In honor of John Bissett: authoritative guidelines on molecular identification of Trichoderma. Fungal diversity, 107(1), 1-69.</mixed-citation>
                    </ref>
                                    <ref id="ref17">
                        <label>17</label>
                        <mixed-citation publication-type="journal">Chalie-u, R. ve Jakhar, S. R. (2018). Prospects of Trichoderma in Agriculture-Fundamentals and Applications. International Journal of Current Microbiology and Applied Sciences, 7(06), 3519-3527.</mixed-citation>
                    </ref>
                                    <ref id="ref18">
                        <label>18</label>
                        <mixed-citation publication-type="journal">Chen, X., Lu, Y., Liu, X., Gu, Y. ve Li, F. (2025). Trichoderma: Dual roles in biocontrol and plant growth promotion. Microorganisms, 13(8), 1840.</mixed-citation>
                    </ref>
                                    <ref id="ref19">
                        <label>19</label>
                        <mixed-citation publication-type="journal">Conte, E. D., da Rosa, E. J., Silvestrini, G. R., Motta, D. D. S., de Oliveira, C. F., Cocco, C., Pauletti, G. F., Silvestre, W. P., Magro, T. D. ve Schwambach, J. (2025). Can Trichoderma spp. Contribute to the Bioremediation and Biostimulation of Plants in Soil Contaminated with Herbicides?. ACS omega, 10(2), 2243-2252.</mixed-citation>
                    </ref>
                                    <ref id="ref20">
                        <label>20</label>
                        <mixed-citation publication-type="journal">Contreras-Cornejo, H. A., Macías-Rodríguez, L., Vergara, A. G. ve López-Bucio, J. (2015). Trichoderma modulates stomatal aperture and leaf transpiration through an abscisic acid-dependent mechanism in Arabidopsis. Journal of Plant Growth Regulation, 34, 425-432.</mixed-citation>
                    </ref>
                                    <ref id="ref21">
                        <label>21</label>
                        <mixed-citation publication-type="journal">Contreras-Cornejo, H. A., Macías-Rodríguez, L., Del-Val, E. K. ve Larsen, J. (2016). Ecological functions of Trichoderma spp. and their secondary metabolites in the rhizosphere: interactions with plants. FEMS microbiology ecology, 92(4), fiw036.</mixed-citation>
                    </ref>
                                    <ref id="ref22">
                        <label>22</label>
                        <mixed-citation publication-type="journal">Contreras-Soto, M. B., Tovar-Pedraza, J. M., Solano-Báez, A. R., Bayardo-Rosales, H. ve Márquez-Licona, G. (2025). Biocontrol Strategies Against Plant-Parasitic Nematodes Using Trichoderma spp.: Mechanisms, Applications, and Management Perspectives. Journal of Fungi, 11(7), 517.</mixed-citation>
                    </ref>
                                    <ref id="ref23">
                        <label>23</label>
                        <mixed-citation publication-type="journal">Devika, O. S., Paul, S., Sarkar, D., Rajput, R. S., Singh, S., Parihar, M., Parewa, H. P., Pal, S., Singh, H. B. ve Rakshit, A. (2019). Trichoderma: a part of possible answer towards crop residue disposal. Journal of Applied and Natural Science, 11(2), 516-523.</mixed-citation>
                    </ref>
                                    <ref id="ref24">
                        <label>24</label>
                        <mixed-citation publication-type="journal">Ferreira, F. V. ve Musumeci, M. A. (2021). Trichoderma as biological control agent: Scope and prospects to improve efficacy. World Journal of Microbiology and Biotechnology, 37(5), 90.</mixed-citation>
                    </ref>
                                    <ref id="ref25">
                        <label>25</label>
                        <mixed-citation publication-type="journal">Free, S. J. (2013). Fungal cell wall organization and biosynthesis. Advances in genetics, 81, 33-82.</mixed-citation>
                    </ref>
                                    <ref id="ref26">
                        <label>26</label>
                        <mixed-citation publication-type="journal">Gajera, H., Domadiya, R., Patel, S., Kapopara, M. ve Golakiya, B. (2013). Molecular mechanism of Trichoderma as bio-control agents against phytopathogen system–a review. Curr. Res. Microbiol. Biotechnol, 1, 133-142.</mixed-citation>
                    </ref>
                                    <ref id="ref27">
                        <label>27</label>
                        <mixed-citation publication-type="journal">Gams, W. ve Bissett, J. (2002). Morphology and identification of Trichoderma. Trichoderma and gliocladium, 1, 3-34.</mixed-citation>
                    </ref>
                                    <ref id="ref28">
                        <label>28</label>
                        <mixed-citation publication-type="journal">García-Latorre, C., Ruiz-Moyano, S., Rodríguez, A., Velázquez, R., Poblaciones, M. J. ve Hernández, A. (2025). From Field to Fork: the benefits of Trichoderma spp. in food quality and safety. Current Opinion in Food Science, 101286.</mixed-citation>
                    </ref>
                                    <ref id="ref29">
                        <label>29</label>
                        <mixed-citation publication-type="journal">Gezgin, Y., Maral Gül, D., Sözer Şenşatar, S., Kara, C. U., Sargın, S., Sukan, F. V. ve Eltem, R. (2020). Evaluation of Trichoderma atroviride and Trichoderma citrinoviride growth profiles and their potentials as biocontrol agent and biofertilizer. Turkish Journal of Biochemistry, 45(2), 163-175.</mixed-citation>
                    </ref>
                                    <ref id="ref30">
                        <label>30</label>
                        <mixed-citation publication-type="journal">Ghazanfar, M. U., Raza, M., Raza, W. ve Qamar, M. I. (2018). Trichoderma as potential biocontrol agent, its exploitation in agriculture: a review. Plant Protection, 2(3).</mixed-citation>
                    </ref>
                                    <ref id="ref31">
                        <label>31</label>
                        <mixed-citation publication-type="journal">Gow, N. A., Latge, J. P. ve Munro, C. A. (2017). The fungal cell wall: structure, biosynthesis, and function. Microbiology spectrum, 5(3), 10-1128.</mixed-citation>
                    </ref>
                                    <ref id="ref32">
                        <label>32</label>
                        <mixed-citation publication-type="journal">Guo, R., Li, G., Zhang, Z. ve Peng, X. (2022). Structures and biological activities of secondary metabolites from Trichoderma harzianum. Marine drugs, 20(11), 701.</mixed-citation>
                    </ref>
                                    <ref id="ref33">
                        <label>33</label>
                        <mixed-citation publication-type="journal">Guzmán-Guzmán, P., Kumar, A., de Los Santos-Villalobos, S., Parra-Cota, F. I., Orozco-Mosqueda, M. D. C., Fadiji, A. E., Hyder, S., Babalola, O. O. ve Santoyo, G. (2023). Trichoderma species: Our best fungal allies in the biocontrol of plant diseases—A review. Plants, 12(3), 432.</mixed-citation>
                    </ref>
                                    <ref id="ref34">
                        <label>34</label>
                        <mixed-citation publication-type="journal">Guzmán-Guzmán, P., Etesami, H. ve Santoyo, G. (2025). Trichoderma: a multifunctional agent in plant health and microbiome interactions. BMC microbiology, 25(1), 434.</mixed-citation>
                    </ref>
                                    <ref id="ref35">
                        <label>35</label>
                        <mixed-citation publication-type="journal">Harman, G., Khadka, R., Doni, F. ve Uphoff, N. (2021). Benefits to plant health and productivity from enhancing plant microbial symbionts. Frontiers in Plant Science, 11, 610065.</mixed-citation>
                    </ref>
                                    <ref id="ref36">
                        <label>36</label>
                        <mixed-citation publication-type="journal">Hernández, G., Ponce de la Cal, A., Louis, Y., Baró Robaina, Y., Coll, Y., Spengler, I. ve Mirabal-Gallardo, Y. (2024). Identification of secondary metabolites by UHPLC-ESI-HRMS/MS in antifungal strain Trichoderma harzianum (LBAT-53). Journal of fungi, 10(8), 547.</mixed-citation>
                    </ref>
                                    <ref id="ref37">
                        <label>37</label>
                        <mixed-citation publication-type="journal">Herrera Perez, G. M., Castellano, L. E. ve Ramírez Valdespino, C. A. (2024). Trichoderma and mycosynthesis of metal nanoparticles: role of their secondary metabolites. Journal of Fungi, 10(7), 443.</mixed-citation>
                    </ref>
                                    <ref id="ref38">
                        <label>38</label>
                        <mixed-citation publication-type="journal">Hidangmayum, A. ve Dwivedi, P. (2018). Plant responses to Trichoderma spp. and their tolerance to abiotic stresses: a review. J. Pharmacogn. Phytochem, 7, 758-766.</mixed-citation>
                    </ref>
                                    <ref id="ref39">
                        <label>39</label>
                        <mixed-citation publication-type="journal">Illescas, M., Pedrero-Méndez, A., Pitorini-Bovolini, M., Hermosa, R. ve Monte, E. (2021). Phytohormone production profiles in Trichoderma species and their relationship to wheat plant responses to water stress. Pathogens, 10(8), 991.</mixed-citation>
                    </ref>
                                    <ref id="ref40">
                        <label>40</label>
                        <mixed-citation publication-type="journal">İşlek, S., Karaca, K. ve Eltem, R. (2025). pH Influence on Shelf Life of Liquid PGPR Formulations with Bacillus subtilis Strains. Eskişehir Teknik Üniversitesi Bilim ve Teknoloji Dergisi-C Yaşam Bilimleri Ve Biyoteknoloji, 14(1), 14-24.</mixed-citation>
                    </ref>
                                    <ref id="ref41">
                        <label>41</label>
                        <mixed-citation publication-type="journal">Jaroszuk-Ściseł, J., Tyśkiewicz, R., Nowak, A., Ozimek, E., Majewska, M., Hanaka, A., Tyskiewicz, K., Pawlik, A. ve Janusz, G. (2019). Phytohormones (auxin, gibberellin) and ACC deaminase in vitro synthesized by the mycoparasitic Trichoderma DEMTkZ3A0 strain and changes in the level of auxin and plant resistance markers in wheat seedlings inoculated with this strain conidia. International Journal of Molecular Sciences, 20(19), 4923.</mixed-citation>
                    </ref>
                                    <ref id="ref42">
                        <label>42</label>
                        <mixed-citation publication-type="journal">Karaca, K. ve Eltem, R. (2024). Investigating Plant Growth Promoting Properties of Trichoderma Species for Sustainable Agriculture. Authorea.</mixed-citation>
                    </ref>
                                    <ref id="ref43">
                        <label>43</label>
                        <mixed-citation publication-type="journal">Karaca, K., Bora, Ş. ve Eltem, R. (2025a). Bazı bitki büyümesini teşvik eden rizobakterilerin (PGPR) buğday ve mısır tohumlarının gelişimi üzerindeki sinerjik etkisinin in vitro koşullarda belirlenmesi. Balıkesir Üniversitesi Fen Bilimleri Enstitüsü Dergisi, 27(1), 370-383.</mixed-citation>
                    </ref>
                                    <ref id="ref44">
                        <label>44</label>
                        <mixed-citation publication-type="journal">Karaca, K., İphar, M. ve Eltem, R. (2025b). Çeşitli Trichoderma İzolatlarının Bazı İnsan ve Bitki Patojeni Bakteriler Üzerindeki Antibakteriyel Etkisinin in vitro Koşullarda Taranması. Mantar Dergisi, 16(1), 34-41.</mixed-citation>
                    </ref>
                                    <ref id="ref45">
                        <label>45</label>
                        <mixed-citation publication-type="journal">Karuppiah, V., Vallikkannu, M., Li, T. ve Chen, J. (2019). Simultaneous and sequential based co-fermentations of Trichoderma asperellum GDFS1009 and Bacillus amyloliquefaciens 1841: a strategy to enhance the gene expression and metabolites to improve the bio-control and plant growth promoting activity. Microbial cell factories, 18(1), 1-16.</mixed-citation>
                    </ref>
                                    <ref id="ref46">
                        <label>46</label>
                        <mixed-citation publication-type="journal">Kashyap, P. L., Rai, P., Srivastava, A. K. ve Kumar, S. (2017). Trichoderma for climate resilient agriculture. World Journal of Microbiology and Biotechnology, 33(8), 1-18.</mixed-citation>
                    </ref>
                                    <ref id="ref47">
                        <label>47</label>
                        <mixed-citation publication-type="journal">Kidwai, M. K. ve Nehra, M. (2017). Biotechnological applications of Trichoderma species for environmental and food security. Plant biotechnology: recent advancements and developments, 125-156.</mixed-citation>
                    </ref>
                                    <ref id="ref48">
                        <label>48</label>
                        <mixed-citation publication-type="journal">Konappa, N., Krishnamurthy, S., Siddaiah, C. N., Ramachandrappa, N. S. ve Chowdappa, S. (2018). Evaluation of biological efficacy of Trichoderma asperellum against tomato bacterial wilt caused by Ralstonia solanacearum. Egyptian Journal of Biological Pest Control, 28, 1-11.</mixed-citation>
                    </ref>
                                    <ref id="ref49">
                        <label>49</label>
                        <mixed-citation publication-type="journal">Kubheka, B. P. ve Ziena, L. W. (2022). Trichoderma: A Biofertilizer and a Bio-Fungicide for Sustainable Crop Production. In Trichoderma-Technology and Uses. IntechOpen.</mixed-citation>
                    </ref>
                                    <ref id="ref50">
                        <label>50</label>
                        <mixed-citation publication-type="journal">Kumar, S. (2013). Trichoderma: a biological weapon for managing plant diseases and promoting sustainability. International Journal of Agriculture Science and Medical veterinary, 1(3), 106-121.</mixed-citation>
                    </ref>
                                    <ref id="ref51">
                        <label>51</label>
                        <mixed-citation publication-type="journal">Kumar, S., Thakur, M. ve Rani, A. (2014). Trichoderma: Mass production, formulation, quality control, delivery and its scope in commercialization in India for the management of plant diseases. African journal of agricultural research, 9(53), 3838-3852.</mixed-citation>
                    </ref>
                                    <ref id="ref52">
                        <label>52</label>
                        <mixed-citation publication-type="journal">Ksiażek-Trela, P. ve Szpyrka, E. (2022). The effect of natural and biological pesticides on the degradation of synthetic pesticides. Plant Protection Science, 58(4), 273-291.</mixed-citation>
                    </ref>
                                    <ref id="ref53">
                        <label>53</label>
                        <mixed-citation publication-type="journal">Lahlali, R., Ezrari, S., Radouane, N., Kenfaoui, J., Esmaeel, Q., El Hamss, H., Belabess, Z. ve Barka, E. A. (2022). Biological control of plant pathogens: A global perspective. Microorganisms, 10(3), 596.</mixed-citation>
                    </ref>
                                    <ref id="ref54">
                        <label>54</label>
                        <mixed-citation publication-type="journal">Lopes, M. J. D. S., Dias-Filho, M. B. ve Gurgel, E. S. C. (2021). Successful plant growth-promoting microbes: inoculation methods and abiotic factors. Frontiers in Sustainable Food Systems, 5, 606454.</mixed-citation>
                    </ref>
                                    <ref id="ref55">
                        <label>55</label>
                        <mixed-citation publication-type="journal">López-Bucio, J., Pelagio-Flores, R. ve Herrera-Estrella, A. (2015). Trichoderma as biostimulant: exploiting the multilevel properties of a plant beneficial fungus. Scientia horticulturae, 196, 109-123.</mixed-citation>
                    </ref>
                                    <ref id="ref56">
                        <label>56</label>
                        <mixed-citation publication-type="journal">Malgioglio, G., Rizzo, G. F., Nigro, S., Lefebvre du Prey, V., Herforth-Rahmé, J., Catara, V. ve Branca, F. (2022). Plant-Microbe Interaction in Sustainable Agriculture: The Factors That May Influence the Efficacy of PGPM Application. Sustainability, 14(4), 2253.</mixed-citation>
                    </ref>
                                    <ref id="ref57">
                        <label>57</label>
                        <mixed-citation publication-type="journal">Manzar, N., Kashyap, A. S., Goutam, R. S., Rajawat, M. V. S., Sharma, P. K., Sharma, S. K. ve Singh, H. V. (2022). Trichoderma: Advent of Versatile Biocontrol Agent, Its Secrets and Insights into Mechanism of Biocontrol Potential. Sustainability, 14(19), 12786.</mixed-citation>
                    </ref>
                                    <ref id="ref58">
                        <label>58</label>
                        <mixed-citation publication-type="journal">Maral Gül, D. ve Eltem, R. (2022). Bazı Gübre ve Fungisitlerin Trichoderma Türlerinin Büyümesine Etkisinin in vitro Koşullarda İncelenmesi. Anadolu (1300-0225), 32(2).</mixed-citation>
                    </ref>
                                    <ref id="ref59">
                        <label>59</label>
                        <mixed-citation publication-type="journal">Martzy, R., Mello-de-Sousa, T. M., Mach, R. L., Yaver, D. ve Mach-Aigner, A. R. (2021). The phenomenon of degeneration of industrial Trichoderma reesei strains. Biotechnology for Biofuels, 14(1), 1-14.</mixed-citation>
                    </ref>
                                    <ref id="ref60">
                        <label>60</label>
                        <mixed-citation publication-type="journal">Mis, B., Karaca, K. ve Eltem, R. (2024). In Vitro Antagonistic Activity of Plant Growth Promoting Rhizobacteria Against Aggressive Biotypes of the Green Mold. Journal of Basic Microbiology, 64(12), e2400422.</mixed-citation>
                    </ref>
                                    <ref id="ref61">
                        <label>61</label>
                        <mixed-citation publication-type="journal">Mukherjee, P. K., Horwitz, B. A., Singh, U. S., Mukherjee, M. ve Schmoll, M. (2013). Trichoderma in agriculture, industry and medicine: an overview. Trichoderma biology and applications. Boston: CAB International, 16, 1-9.</mixed-citation>
                    </ref>
                                    <ref id="ref62">
                        <label>62</label>
                        <mixed-citation publication-type="journal">Mukhopadhyay, R. ve Kumar, D. (2020). Trichoderma: a beneficial antifungal agent and insights into its mechanism of biocontrol potential. Egyptian Journal of Biological Pest Control, 30(1), 1-8.</mixed-citation>
                    </ref>
                                    <ref id="ref63">
                        <label>63</label>
                        <mixed-citation publication-type="journal">Naamala, J. ve Smith, D. L. (2020). Relevance of plant growth promoting microorganisms and their derived compounds, in the face of climate change. Agronomy, 10(8), 1179.</mixed-citation>
                    </ref>
                                    <ref id="ref64">
                        <label>64</label>
                        <mixed-citation publication-type="journal">Op De Beeck, M., Troein, C., Siregar, S., Gentile, L., Abbondanza, G., Peterson, C., Persson, P. ve Tunlid, A. (2020). Regulation of fungal decomposition at single-cell level. The ISME journal, 14(4), 896-905.</mixed-citation>
                    </ref>
                                    <ref id="ref65">
                        <label>65</label>
                        <mixed-citation publication-type="journal">Organo, N. D., Granada, S. M. J. M., Pineda, H. G. S., Sandro, J. M., Nguyen, V. H. ve Gummert, M. (2022). Assessing the potential of a Trichoderma-based compost activator to hasten the decomposition of incorporated rice straw. Scientific reports, 12(1), 1-12.</mixed-citation>
                    </ref>
                                    <ref id="ref66">
                        <label>66</label>
                        <mixed-citation publication-type="journal">Poveda Arias, J. (2021). Trichoderma as biocontrol agent against pests: new uses for a mycoparasite. Biological Control, 159 (2021).</mixed-citation>
                    </ref>
                                    <ref id="ref67">
                        <label>67</label>
                        <mixed-citation publication-type="journal">Prajapati, S., Kumar, N., Kumar, S., Lakharen, L. ve Maurya, S. (2020). Biological control a sustainable approach for plant diseases management: A review. J Pharmacogn Phytochem, 9(2), 1514-1523.</mixed-citation>
                    </ref>
                                    <ref id="ref68">
                        <label>68</label>
                        <mixed-citation publication-type="journal">Pratiwi, V., Oktarina, H. ve Sriwati, R. (2021). The potential of Trichoderma spp. and Pseudomonas auregenosa as patchouli waste decomposer. In IOP Conference Series: Earth and Environmental Science (Vol. 667, No. 1, p. 012019). IOP Publishing.</mixed-citation>
                    </ref>
                                    <ref id="ref69">
                        <label>69</label>
                        <mixed-citation publication-type="journal">Pylak, M., Oszust, K. ve Frąc, M. (2019). Review report on the role of bioproducts, biopreparations, biostimulants and microbial inoculants in organic production of fruit. Reviews in Environmental Science and Bio/Technology, 18(3), 597-616.</mixed-citation>
                    </ref>
                                    <ref id="ref70">
                        <label>70</label>
                        <mixed-citation publication-type="journal">Ruocco, M., Lanzuise, S., Lombardi, N., Woo, S. L., Vinale, F., Marra, R., Varlese, R., Manganiello, G., Pascale, A., Scala, V., Turra, D., Scala, F. ve Lorito, M. (2015). Multiple roles and effects of a novel Trichoderma hydrophobin. Molecular Plant-Microbe Interactions, 28(2), 167-179.</mixed-citation>
                    </ref>
                                    <ref id="ref71">
                        <label>71</label>
                        <mixed-citation publication-type="journal">Sapareng, S., Ala, A., Kuswinanti, T. ve Rasyid, B. (2018). The ability of trichoderma sp and pleurotus sp for the decomposition of oil palm empty bunches. Pakistan Journal of Biotechnology, 15(2), 543-548.</mixed-citation>
                    </ref>
                                    <ref id="ref72">
                        <label>72</label>
                        <mixed-citation publication-type="journal">Sarangi, S., Swain, H., Adak, T., Bhattacharyya, P., Mukherjee, A. K., Kumar, G. ve Mehetre, S. T. (2021). Trichoderma-mediated rice straw compost promotes plant growth and imparts stress tolerance. Environmental Science and Pollution Research, 28(32), 44014-44027.</mixed-citation>
                    </ref>
                                    <ref id="ref73">
                        <label>73</label>
                        <mixed-citation publication-type="journal">Sargin, S., Gezgin, Y., Eltem, R. ve Vardar, F. (2013). Micropropagule production from Trichoderma harzianum EGE-K38 using solid-state fermentation and a comparative study for drying methods. Turkish Journal of Biology, 37(2), 139-146.</mixed-citation>
                    </ref>
                                    <ref id="ref74">
                        <label>74</label>
                        <mixed-citation publication-type="journal">Savas, N. G., Yıldız, M., Eltem, R. ve Ozkale, E. (2021). Determination of antifungal efficiency of some fungicides and secondary metabolites of Trichoderma species against Botrytis cinerea. Journal of Environmental Biology, 42(3), 705-713.</mixed-citation>
                    </ref>
                                    <ref id="ref75">
                        <label>75</label>
                        <mixed-citation publication-type="journal">Sesli, E., Asan, A. ve Selçuk, F. (edlr.) Abacı Günyar, Ö., Akata, I., Akgül, H., Aktaş, S., Alkan, S., Allı, H., Aydoğdu, H., Berikten, D., Demirel, K., Demirel, R., Doğan, H.H., Erdoğdu, M., Ergül, C.C., Eroğlu, G., Giray, G., Halikî Uztan, A., Kabaktepe, Ş., Kadaifçiler, D., Kalyoncu, F., Karaltı, İ., Kaşık, G., Kaya, A., Keleş, A., Kırbağ, S., Kıvanç, M., Ocak, İ., Ökten, S., Özkale, E., Öztürk, C., Sevindik, M., Şen, B., Şen, İ., Türkekul, İ., Ulukapı, M., Uzun, Ya., Uzun, Yu. ve Yoltaş, A. (2020). Türkiye Mantarları Listesi. İstanbul: Ali Nihat Gökyiğit Vakfı Yayınları.</mixed-citation>
                    </ref>
                                    <ref id="ref76">
                        <label>76</label>
                        <mixed-citation publication-type="journal">Siddiquee, S., Shafawati, S. N. ve Naher, L. (2017). Effective composting of empty fruit bunches using potential Trichoderma strains. Biotechnology reports, 13, 1-7.</mixed-citation>
                    </ref>
                                    <ref id="ref77">
                        <label>77</label>
                        <mixed-citation publication-type="journal">Singh, A., Shukla, N., Kabadwal, B. C., Tewari, A. K. ve Kumar, J. (2018). Review on plant-Trichoderma-pathogen interaction. Int. J. Curr. Microbiol. Appl. Sci, 7, 2382-2397.</mixed-citation>
                    </ref>
                                    <ref id="ref78">
                        <label>78</label>
                        <mixed-citation publication-type="journal">Shao, Y., Gu, S., Peng, H., Zhang, L., Li, S., Berendsen, R. L., Yang, T., Dong, C., Wei, Z., Xu, Y. ve Shen, Q. (2025). Synergic interactions between Trichoderma and the soil microbiomes improve plant iron availability and growth. npj Biofilms and Microbiomes, 11(1), 56.</mixed-citation>
                    </ref>
                                    <ref id="ref79">
                        <label>79</label>
                        <mixed-citation publication-type="journal">Shenouda, M. L. ve Cox, R. J. (2021). Molecular methods unravel the biosynthetic potential of Trichoderma species. RSC advances, 11(6), 3622-3635.</mixed-citation>
                    </ref>
                                    <ref id="ref80">
                        <label>80</label>
                        <mixed-citation publication-type="journal">Shukla, N., Singh, E. A. N. A., Kabadwa, B. C., Sharma, R. ve Kumar, J. (2019). Present status and future prospects of bio-agents in agriculture. International Journal of Current Microbiology and Applied Sciences, 8(4), 2138-2153.</mixed-citation>
                    </ref>
                                    <ref id="ref81">
                        <label>81</label>
                        <mixed-citation publication-type="journal">Sood, M., Kapoor, D., Kumar, V., Sheteiwy, M. S., Ramakrishnan, M., Landi, M., Araniti, F. ve Sharma, A. (2020). Trichoderma: The “secrets” of a multitalented biocontrol agent. Plants, 9(6), 762.</mixed-citation>
                    </ref>
                                    <ref id="ref82">
                        <label>82</label>
                        <mixed-citation publication-type="journal">Sudantha, I. M. ve Suwardji, S. (2021, July). Trichoderma biofungicides formulations on shallot growth, yield and fusarium wilt disease resistance. In IOP Conference Series: Earth and Environmental Science (Vol. 824, No. 1, p. 012032). IOP Publishing.</mixed-citation>
                    </ref>
                                    <ref id="ref83">
                        <label>83</label>
                        <mixed-citation publication-type="journal">Suyal, D. C., Soni, R., Sai, S. ve Goel, R. (2016). Microbial inoculants as biofertilizer. In Microbial inoculants in sustainable agricultural productivity (pp. 311-318). Springer, New Delhi.</mixed-citation>
                    </ref>
                                    <ref id="ref84">
                        <label>84</label>
                        <mixed-citation publication-type="journal">Syamsia, S., Idhan, A., Fırmansyah, A. P., Noerfıtryanı, N., Rahım, I., Kesaulya, H. ve Armus, R. (2021). Combination on endophytic fungal as the Plant Growth-Promoting Fungi (PGPF) on cucumber (Cucumis sativus). Biodiversitas Journal of Biological Diversity, 22(3).</mixed-citation>
                    </ref>
                                    <ref id="ref85">
                        <label>85</label>
                        <mixed-citation publication-type="journal">Tarekegn, M. M., Fikirte, Z. S. ve Ishetu, A. I. (2020). Microbes used as a tool for bioremediation of heavy metal from the environment. Cogent Food &amp; Agriculture, 6(1), 1783174.</mixed-citation>
                    </ref>
                                    <ref id="ref86">
                        <label>86</label>
                        <mixed-citation publication-type="journal">Thambugala, K. M., Daranagama, D. A., Phillips, A. J., Kannangara, S. D. ve Promputtha, I. (2020). Fungi vs. fungi in biocontrol: An overview of fungal antagonists applied against fungal plant pathogens. Frontiers in cellular and infection microbiology, 718.</mixed-citation>
                    </ref>
                                    <ref id="ref87">
                        <label>87</label>
                        <mixed-citation publication-type="journal">Thapa, S., Rai, N., Limbu, A.K. ve Joshi, A. (2020). Impact of Trichoderma sp. in agriculture: A mini-review. Journal of Biology and Today&#039;s World, 9(7), 1-5.</mixed-citation>
                    </ref>
                                    <ref id="ref88">
                        <label>88</label>
                        <mixed-citation publication-type="journal">Tripathi, P., Singh, P. C., Mishra, A., Chauhan, P. S., Dwivedi, S., Bais, R. T. ve Tripathi, R. D. (2013). Trichoderma: a potential bioremediator for environmental clean up. Clean Technologies and Environmental Policy, 15(4), 541-550.</mixed-citation>
                    </ref>
                                    <ref id="ref89">
                        <label>89</label>
                        <mixed-citation publication-type="journal">Tripathi, P., Singh, P. C., Mishra, A., Srivastava, S., Chauhan, R., Awasthi, S., Mishra, S., Dwivedi, S., Tripathi, P., Kalra, A., Tripathi, R. D. ve Nautiyal, C. S. (2017). Arsenic tolerant Trichoderma sp. reduces arsenic induced stress in chickpea (Cicer arietinum). Environmental Pollution, 223, 137-145.</mixed-citation>
                    </ref>
                                    <ref id="ref90">
                        <label>90</label>
                        <mixed-citation publication-type="journal">Tyśkiewicz, R., Nowak, A., Ozimek, E. ve Jaroszuk-Ściseł, J. (2022). Trichoderma: The current status of its application in agriculture for the biocontrol of fungal phytopathogens and stimulation of plant growth. International Journal of Molecular Sciences, 23(4), 2329.</mixed-citation>
                    </ref>
                                    <ref id="ref91">
                        <label>91</label>
                        <mixed-citation publication-type="journal">Villavicencio-Vásquez, M., Espinoza-Lozano, F., Espinoza-Lozano, L. ve Coronel-León, J. (2025). Biological control agents: mechanisms of action, selection, formulation and challenges in agriculture. Frontiers in Agronomy, 7, 1578915.</mixed-citation>
                    </ref>
                                    <ref id="ref92">
                        <label>92</label>
                        <mixed-citation publication-type="journal">Vinale, F., Nigro, M., Sivasithamparam, K., Flematti, G., Ghisalberti, E. L., Ruocco, M., Varlese, R., Marra, R., Lanzuise, S., Eid, A., Woo, S. L. ve Lorito, M. (2013). Harzianic acid: a novel siderophore from Trichoderma harzianum. FEMS microbiology letters, 347(2), 123-129.</mixed-citation>
                    </ref>
                                    <ref id="ref93">
                        <label>93</label>
                        <mixed-citation publication-type="journal">Vinale, F. ve Sivasithamparam, K. (2020). Beneficial effects of Trichoderma secondary metabolites on crops. Phytotherapy Research, 34(11), 2835-2842.</mixed-citation>
                    </ref>
                                    <ref id="ref94">
                        <label>94</label>
                        <mixed-citation publication-type="journal">Wang, C. ve Zhuang, W. Y. (2020). Carbon metabolic profiling of Trichoderma strains provides insight into potential ecological niches. Mycologia, 112(2), 213-223.</mixed-citation>
                    </ref>
                                    <ref id="ref95">
                        <label>95</label>
                        <mixed-citation publication-type="journal">Waghunde, R. R., Shelake, R. M. ve Sabalpara, A. N. (2016). Trichoderma: A significant fungus for agriculture and environment. African journal of agricultural research, 11(22), 1952-1965.</mixed-citation>
                    </ref>
                                    <ref id="ref96">
                        <label>96</label>
                        <mixed-citation publication-type="journal">Woo, S. L., Hermosa, R., Lorito, M. ve Monte, E. (2023). Trichoderma: a multipurpose, plant-beneficial microorganism for eco-sustainable agriculture. Nature Reviews Microbiology, 21(5), 312-326.</mixed-citation>
                    </ref>
                                    <ref id="ref97">
                        <label>97</label>
                        <mixed-citation publication-type="journal">Woo, S. L., Ruocco, M., Vinale, F., Nigro, M., Marra, R., Lombardi, N., Pascale, A., Lanzuise, S., Manganiello, G. ve Lorito, M. (2014). Trichoderma-based products and their widespread use in agriculture. The Open Mycology Journal, 8(1).</mixed-citation>
                    </ref>
                                    <ref id="ref98">
                        <label>98</label>
                        <mixed-citation publication-type="journal">Yadav, K. ve Khare, P. (2025). Exploring the multifaceted roles of Trichoderma secondary metabolites. Canadian Journal of Microbiology, 71, 1-10.</mixed-citation>
                    </ref>
                                    <ref id="ref99">
                        <label>99</label>
                        <mixed-citation publication-type="journal">Yu, Y., Gui, Y., Li, Z., Jiang, C., Guo, J. ve Niu, D. (2022). Induced systemic resistance for improving plant immunity by beneficial microbes. Plants, 11(3), 386.</mixed-citation>
                    </ref>
                                    <ref id="ref100">
                        <label>100</label>
                        <mixed-citation publication-type="journal">Yunasfi, Aulia, S. P. ve Hartini, K. S. (2021). Application of Trichoderma sp. to leaf litter decomposition (Rhizophora mucronata) on various salinity levels in Belawan. In IOP Conference Series: Earth and Environmental Science (Vol. 713, No. 1, p. 012054). IOP Publishing.</mixed-citation>
                    </ref>
                                    <ref id="ref101">
                        <label>101</label>
                        <mixed-citation publication-type="journal">Zaki, O., Weekers, F., Thonart, P., Tesch, E., Kuenemann, P. ve Jacques, P. (2020). Limiting factors of mycopesticide development. Biological Control, 144, 104220.</mixed-citation>
                    </ref>
                                    <ref id="ref102">
                        <label>102</label>
                        <mixed-citation publication-type="journal">Zin, N. A. ve Badaluddin, N. A. (2020). Biological functions of Trichoderma spp. for agriculture applications. Annals of Agricultural Sciences, 65(2), 168-178.</mixed-citation>
                    </ref>
                                    <ref id="ref103">
                        <label>103</label>
                        <mixed-citation publication-type="journal">Zhang, F., Huo, Y., Cobb, A. B., Luo, G., Zhou, J., Yang, G., Wilson, G. W. T. ve Zhang, Y. (2018). Trichoderma biofertilizer links to altered soil chemistry, altered microbial communities, and improved grassland biomass. Frontiers in microbiology, 9, 848.</mixed-citation>
                    </ref>
                                    <ref id="ref104">
                        <label>104</label>
                        <mixed-citation publication-type="journal">Zhang, F., Wang, Y., Liu, C., Chen, F., Ge, H., Tian, F., Yang, T., Ma, K. ve Zhang, Y. (2019). Trichoderma harzianum mitigates salt stress in cucumber via multiple responses. Ecotoxicology and environmental safety, 170, 436-445.</mixed-citation>
                    </ref>
                                    <ref id="ref105">
                        <label>105</label>
                        <mixed-citation publication-type="journal">Zhang, H., Zhang, Q., Jiang, J., Yang, N., Zhou, Y., Feng, Y., Shi, C., Tien, L. H., Tin, H. T., Dong, Y., Yang, S. ve Liu, T. (2025). Integrated genomic and metabolomic insights into the secondary metabolism of Trichoderma koningiopsis Z35. Agrobiodiversity, 2(3), 62-72.</mixed-citation>
                    </ref>
                            </ref-list>
                    </back>
    </article>
