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根际中的植物-微生物相互作用通过循环代谢经济实现。

Plant-microbe interactions in the rhizosphere via a circular metabolic economy.

机构信息

Institute of Plant Science, Agricultural Research Organization, The Volcani Center, Rishon LeTsiyon 7528809, Israel.

Theory of Condensed Matter Group, Cavendish Laboratory, Wellcome Sanger Institute, University of Cambridge, Cambridge CB2 1TN, UK.

出版信息

Plant Cell. 2022 Aug 25;34(9):3168-3182. doi: 10.1093/plcell/koac163.

Abstract

Chemical exchange often serves as the first step in plant-microbe interactions and exchanges of various signals, nutrients, and metabolites continue throughout the interaction. Here, we highlight the role of metabolite exchanges and metabolic crosstalk in the microbiome-root-shoot-environment nexus. Roots secret a diverse set of metabolites; this assortment of root exudates, including secondary metabolites such as benzoxazinoids, coumarins, flavonoids, indolic compounds, and terpenes, shapes the rhizosphere microbiome. In turn, the rhizosphere microbiome affects plant growth and defense. These inter-kingdom chemical interactions are based on a metabolic circular economy, a seemingly wasteless system in which rhizosphere members exchange (i.e. consume, reuse, and redesign) metabolites. This review also describes the recently discovered phenomenon "Systemically Induced Root Exudation of Metabolites" in which the rhizosphere microbiome governs plant metabolism by inducing systemic responses that shift the metabolic profiles of root exudates. Metabolic exchange in the rhizosphere is based on chemical gradients that form specific microhabitats for microbial colonization and we describe recently developed high-resolution methods to study chemical interactions in the rhizosphere. Finally, we propose an action plan to advance the metabolic circular economy in the rhizosphere for sustainable solutions to the cumulative degradation of soil health in agricultural lands.

摘要

化学交换通常是植物-微生物相互作用的第一步,各种信号、养分和代谢物的交换在相互作用过程中持续进行。在这里,我们强调了代谢物交换和代谢串扰在微生物组-根-茎-环境网络中的作用。根分泌出多种代谢物;这种根分泌物的混合物,包括苯并恶嗪类、香豆素、类黄酮、吲哚化合物和萜类等次生代谢物,塑造了根际微生物组。反过来,根际微生物组又影响植物的生长和防御。这些跨领域的化学相互作用基于一种代谢循环经济,这是一种看似无浪费的系统,其中根际成员交换(即消耗、再利用和重新设计)代谢物。本综述还描述了最近发现的“系统诱导的代谢物根分泌”现象,其中根际微生物组通过诱导系统反应来控制植物代谢,从而改变根分泌物的代谢谱。根际中的代谢交换基于形成微生物定植特定小生境的化学梯度,我们描述了最近开发的用于研究根际化学相互作用的高分辨率方法。最后,我们提出了一个行动计划,以促进根际中的代谢循环经济,为农业用地中土壤健康的累积退化提供可持续的解决方案。

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