Mishra Sushma, Sharma Shilpi
Plant Biotechnology Laboratory, Dayalbagh Educational Institute, Deemed-to-be-University, Agra, India.
Department of Biochemical Engineering and Biotechnology, Indian Institute of Technology Delhi, New Delhi, India.
Front Microbiol. 2022 Mar 2;13:835931. doi: 10.3389/fmicb.2022.835931. eCollection 2022.
Among the various plant-associated microbiota, endophytes (the microbial communities inhabiting plant endosphere without causing disease symptoms) exhibit the most intimate and specific association with host plants. Endophytic microbes influence various aspects of plant responses (such as increasing availability of nutrients, tolerance against biotic and abiotic stresses, etc.) by modulating the primary and secondary metabolism of the host. Besides, endophytic microbes produce a diverse array of bioactive compounds, which have potential applications in the pharmaceutical, food, and cosmetic industries. Further, there is sufficient evidence for endophyte-derived plant metabolites, which could be pursued as alternative sources of commercially important plant metabolites. The field of bioprospecting, the discovery of novel chemistries, and endophyte-mediated production of plant metabolites have witnessed a boom with the advent of technologies (especially metabolomics) in endophyte research. The high throughput study of small metabolites at a particular timepoint or tissue forms the core of metabolomics. Being downstream to transcriptome and proteome, the metabolome provides the most direct reflection of the phenotype of an organism. The contribution of plant and microbial metabolomics for answering fundamental questions of plant-endophyte interaction, such as the effect of endophyte inoculation on plant metabolome, composition of metabolites on the impact of environmental stressors (biotic and abiotic), etc., have also been discussed.
在各种与植物相关的微生物群落中,内生菌(栖息于植物内圈且不引起疾病症状的微生物群落)与宿主植物表现出最密切、最特殊的关联。内生微生物通过调节宿主的初级和次级代谢来影响植物反应的各个方面(如提高养分利用率、增强对生物和非生物胁迫的耐受性等)。此外,内生微生物能产生各种各样的生物活性化合物,这些化合物在制药、食品和化妆品行业具有潜在应用价值。此外,有充分证据表明内生菌衍生的植物代谢产物可作为商业上重要的植物代谢产物的替代来源。随着内生菌研究中技术(尤其是代谢组学)的出现,生物勘探、新型化学物质的发现以及内生菌介导的植物代谢产物生产等领域蓬勃发展。在特定时间点或组织对小分子代谢物进行高通量研究构成了代谢组学的核心。作为转录组和蛋白质组的下游,代谢组最直接地反映了生物体的表型。还讨论了植物和微生物代谢组学在回答植物 - 内生菌相互作用的基本问题方面的贡献,例如内生菌接种对植物代谢组的影响、代谢物组成对环境胁迫因子(生物和非生物)影响等。