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通过高通量分子方法深入了解叶际微生物组的结构和功能。

New insights into the structure and function of phyllosphere microbiota through high-throughput molecular approaches.

机构信息

Department of Plant Pathology, University of California, Davis, CA, USA.

出版信息

FEMS Microbiol Lett. 2013 Nov;348(1):1-10. doi: 10.1111/1574-6968.12225. Epub 2013 Aug 13.

Abstract

The phyllosphere is an ecologically and economically important ecosystem that hosts a large and diverse microbial community. Phyllosphere microbiota play a critical role in protecting plants from diseases as well as promoting their growth by various mechanisms. There are serious gaps in our understanding of how and why microbiota composition varies across spatial and temporal scales, the ecology of leaf surface colonizers and their interactions with their host, and the genetic adaptations that enable phyllosphere survival of microorganisms. These gaps are due in large part to past technical limitations, as earlier studies were restricted to the study of culturable bacteria only and used low-throughput molecular techniques to describe community structure and function. The availability of high-throughput and cost-effective molecular technologies is changing the field of phyllosphere microbiology, enabling researchers to begin to address the dynamics and composition of the phyllosphere microbiota across a large number of samples with high, in-depth coverage. Here, we discuss and connect the most recent studies that have used next-generation molecular techniques such as metagenomics, proteogenomics, genome sequencing, and transcriptomics to gain new insights into the structure and function of phyllosphere microbiota and highlight important challenges for future research.

摘要

叶片是一个具有重要生态和经济意义的生态系统,它拥有大量多样的微生物群落。叶片微生物群在保护植物免受疾病侵害以及通过各种机制促进其生长方面发挥着关键作用。我们对微生物群落如何以及为何在时空尺度上发生变化、叶表定殖者的生态学及其与宿主的相互作用、以及使微生物能够在叶片上生存的遗传适应性等方面的了解存在严重的差距。这些差距在很大程度上是由于过去的技术限制造成的,因为早期的研究仅限于可培养细菌的研究,并且使用低通量的分子技术来描述群落结构和功能。高通量且具有成本效益的分子技术的出现正在改变叶片微生物学领域,使研究人员能够开始解决大量样本中叶片微生物群落的动态和组成问题,具有高、深度覆盖的特点。在这里,我们讨论并连接了最近的研究,这些研究使用了下一代分子技术,如宏基因组学、蛋白质基因组学、基因组测序和转录组学,以深入了解叶片微生物群的结构和功能,并突出未来研究的重要挑战。

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