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全基因组组装和比较基因组分析为里氏木霉的内生生活方式提供了见解。

Whole-genome assembly and comparative genomic analyses provide insight into the endophytic lifestyle of Trichoderma lixii.

作者信息

Singh Arjan, Katoch Meenu

机构信息

Fermentation and Microbial Biotechnology Division, CSIR-Indian Institute of Integrative Medicine, Canal Road, Jammu-Tawi, 180001, India.

Academy of Scientific and Innovative Research (AcSIR), Ghaziabad, 201002, India.

出版信息

Curr Genet. 2025 Sep 9;71(1):20. doi: 10.1007/s00294-025-01324-x.

Abstract

Trichoderma species exhibit remarkable versatility in adaptability and in occupying habitats with lifestyles ranging from mycoparasitism and saprotrophy to endophytism. In this study, we present the first high-quality whole-genome assembly and annotation of T. lixii using Illumina HiSeq technology to explore the mechanisms of endophytic lifestyle and plant colonization. The genome size was 41.1 Mbp, comprising 15,430 predicted genes, of which 7,918 were functionally annotated. Comparative analysis identified 82 CAZyme families involved in cellulose and hemicellulose degradation, notably Glycoside Hydrolases (GHs) (43) [e.g., GH3 (14), GH5 (10), GH7 (4) ], Carbohydrate Esterases (CEs) (10), and Auxiliary Activities (AAs) (29) [e.g., AA3 (20), AA9 ]. GHs primarily degrade cellulose, while Polysaccharide Lyases (PLs), along with other CAZymes like CEs and Lytic Polysaccharide Monooxygenases (LPMOs), assist in modifying substrates or targeting specific bonds. These enzymes facilitate substrate breakdown, host tissue penetration, and nutrient acquisition, supporting a non-pathogenic, endophytic lifestyle. The presence of 53 secondary metabolite biosynthetic gene clusters indicates a strong biosynthetic potential. KEGG analysis assigned 2,469 genes to multiple metabolic and signaling pathways, highlighting an enriched profile for carbohydrate metabolism, signal transduction, and antibiotic biosynthesis. Comparative genomics also revealed both preserved and distinctive traits of T. lixii, confirming its ecological flexibility and promise as a source of new bioactive molecules. These findings reveal genetic diversity among the species, providing a foundation for future studies on biocontrol and endophytic functions. The growing availability of Trichoderma genomes deepens understanding of their unique features and offers new prospects for agricultural and biotechnological applications.

摘要

木霉属物种在适应性方面表现出显著的多样性,其生活方式从菌寄生、腐生到内生,能占据多种生境。在本研究中,我们利用Illumina HiSeq技术首次对里氏木霉进行了高质量的全基因组组装和注释,以探索其内生生活方式和植物定殖的机制。基因组大小为41.1 Mbp,包含15430个预测基因,其中7918个基因得到了功能注释。比较分析确定了82个参与纤维素和半纤维素降解的碳水化合物活性酶家族,特别是糖苷水解酶(GHs)(43个)[如GH3(14个)、GH5(10个)、GH7(4个)]、碳水化合物酯酶(CEs)(10个)和辅助活性酶(AAs)(29个)[如AA3(20个)、AA9]。GHs主要降解纤维素,而多糖裂解酶(PLs)以及其他碳水化合物活性酶如CEs和裂解多糖单加氧酶(LPMOs)则有助于修饰底物或靶向特定键。这些酶促进底物分解、宿主组织穿透和养分获取,支持非致病的内生生活方式。53个次生代谢物生物合成基因簇的存在表明其具有强大的生物合成潜力。KEGG分析将2469个基因分配到多个代谢和信号通路,突出了碳水化合物代谢、信号转导和抗生素生物合成的丰富图谱。比较基因组学还揭示了里氏木霉既保留又独特的特征,证实了其生态灵活性以及作为新生物活性分子来源的潜力。这些发现揭示了该物种间的遗传多样性,为未来生物防治和内生功能的研究奠定了基础。木霉基因组的不断可得加深了我们对其独特特征的理解,并为农业和生物技术应用提供了新的前景。

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