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被子植物物种根微生物组的组装和生态功能。

Assembly and ecological function of the root microbiome across angiosperm plant species.

机构信息

Department of Ecology & Evolutionary Biology, University of Toronto, Toronto, ON M5S 3B2, Canada;

Department of Biology, University of Toronto Mississauga, Mississauga, ON L5L 1C6, Canada.

出版信息

Proc Natl Acad Sci U S A. 2018 Feb 6;115(6):E1157-E1165. doi: 10.1073/pnas.1717617115. Epub 2018 Jan 22.

Abstract

Across plants and animals, host-associated microbial communities play fundamental roles in host nutrition, development, and immunity. The factors that shape host-microbiome interactions are poorly understood, yet essential for understanding the evolution and ecology of these symbioses. Plant roots assemble two distinct microbial compartments from surrounding soil: the rhizosphere (microbes surrounding roots) and the endosphere (microbes within roots). Root-associated microbes were key for the evolution of land plants and underlie fundamental ecosystem processes. However, it is largely unknown how plant evolution has shaped root microbial communities, and in turn, how these microbes affect plant ecology, such as the ability to mitigate biotic and abiotic stressors. Here we show that variation among 30 angiosperm species, which have diverged for up to 140 million years, affects root bacterial diversity and composition. Greater similarity in root microbiomes between hosts leads to negative effects on plant performance through soil feedback, with specific microbial taxa in the endosphere and rhizosphere potentially affecting competitive interactions among plant species. Drought also shifts the composition of root microbiomes, most notably by increasing the relative abundance of the Actinobacteria. However, this drought response varies across host plant species, and host-specific changes in the relative abundance of endosphere are associated with host drought tolerance. Our results emphasize the causes of variation in root microbiomes and their ecological importance for plant performance in response to biotic and abiotic stressors.

摘要

在植物和动物中,宿主相关的微生物群落对宿主的营养、发育和免疫起着基础性的作用。然而,对于理解这些共生关系的进化和生态学,塑造宿主-微生物组相互作用的因素仍知之甚少。植物根系从周围土壤中组装两个截然不同的微生物区室:根际(根系周围的微生物)和内共生体(根系内的微生物)。与根相关的微生物是陆地植物进化的关键,并构成了基本的生态系统过程。然而,人们在很大程度上还不知道植物的进化是如何塑造根微生物群落的,以及这些微生物反过来又是如何影响植物的生态,例如减轻生物和非生物胁迫的能力。在这里,我们表明,在长达 1.4 亿年的时间里,有 30 种被子植物物种的变异影响了根细菌的多样性和组成。宿主之间根系微生物组的相似性越大,通过土壤反馈对植物表现的负面影响就越大,内共生体和根际中的特定微生物类群可能会影响植物物种之间的竞争相互作用。干旱也会改变根微生物组的组成,特别是通过增加放线菌的相对丰度。然而,这种干旱响应在宿主植物物种之间存在差异,并且内共生体相对丰度的宿主特异性变化与宿主耐旱性有关。我们的研究结果强调了根微生物组变异的原因及其对植物在应对生物和非生物胁迫时表现的生态重要性。

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