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植物源香豆素塑造了合成根微生物组的组成。

Plant-derived coumarins shape the composition of an synthetic root microbiome.

机构信息

Department of Chemical Engineering, Stanford University, Stanford, CA 94305.

Department of Bioengineering, Stanford University, Stanford, CA 94305.

出版信息

Proc Natl Acad Sci U S A. 2019 Jun 18;116(25):12558-12565. doi: 10.1073/pnas.1820691116. Epub 2019 May 31.

Abstract

The factors that contribute to the composition of the root microbiome and, in turn, affect plant fitness are not well understood. Recent work has highlighted a major contribution of the soil inoculum in determining the composition of the root microbiome. However, plants are known to conditionally exude a diverse array of unique secondary metabolites, that vary among species and environmental conditions and can interact with the surrounding biota. Here, we explore the role of specialized metabolites in dictating which bacteria reside in the rhizosphere. We employed a reduced synthetic community (SynCom) of root-isolated bacteria to detect community shifts that occur in the absence of the secreted small-molecule phytoalexins, flavonoids, and coumarins. We find that lack of coumarin biosynthesis in ' mutant plant lines causes a shift in the root microbial community specifically under iron deficiency. We demonstrate a potential role for iron-mobilizing coumarins in sculpting the root bacterial community by inhibiting the proliferation of a relatively abundant species via a redox-mediated mechanism. This work establishes a systematic approach enabling elucidation of specific mechanisms by which plant-derived molecules mediate microbial community composition. Our findings expand on the function of conditionally exuded specialized metabolites and suggest avenues to effectively engineer the rhizosphere with the aim of improving crop growth in iron-limited alkaline soils, which make up a third of the world's arable soils.

摘要

根际微生物组的组成因素及其对植物适应性的影响尚不清楚。最近的研究强调了土壤接种体在决定根际微生物组组成方面的主要作用。然而,众所周知,植物会有条件地分泌出大量独特的次生代谢物,这些代谢物在物种和环境条件之间存在差异,并可以与周围生物群相互作用。在这里,我们探讨了特殊代谢物在决定哪些细菌存在于根际中的作用。我们使用了根分离细菌的简化合成群落(SynCom)来检测在缺乏分泌的小分子植物抗毒素、类黄酮和香豆素的情况下发生的群落变化。我们发现,“突变体”植物系中香豆素生物合成的缺乏导致在缺铁条件下根微生物群落发生特定变化。我们通过氧化还原介导的机制证明了铁动员香豆素在塑造根细菌群落方面的潜在作用,该机制可抑制相对丰富的 种的增殖。这项工作建立了一种系统的方法,能够阐明植物衍生分子介导微生物群落组成的具体机制。我们的研究结果扩展了条件性分泌特殊代谢物的功能,并为有效利用根际提供了途径,旨在改善在占世界可耕地三分之一的缺铁碱性土壤中作物的生长。

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