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植物驱动的病害抑制土壤微生物组组装。

Plant-Driven Assembly of Disease-Suppressive Soil Microbiomes.

机构信息

Plant-Microbe Interactions, Institute of Environmental Biology, Department of Biology, Science4Life, Utrecht University, Utrecht, The Netherlands.

Wheat Health, Genetics and Quality Research Unit, US Department of Agriculture, Agricultural Research Service, Pullman, Washington, USA; email:

出版信息

Annu Rev Phytopathol. 2024 Sep;62(1):1-30. doi: 10.1146/annurev-phyto-021622-100127. Epub 2024 Aug 22.

Abstract

Plants have coevolved together with the microbes that surround them and this assemblage of host and microbes functions as a discrete ecological unit called a holobiont. This review outlines plant-driven assembly of disease-suppressive microbiomes. Plants are colonized by microbes from seed, soil, and air but selectively shape the microbiome with root exudates, creating microenvironment hot spots where microbes thrive. Using plant immunity for gatekeeping and surveillance, host-plant genetic properties govern microbiome assembly and can confer adaptive advantages to the holobiont. These advantages manifest in disease-suppressive soils, where buildup of specific microbes inhibits the causal agent of disease, that typically develop after an initial disease outbreak. Based on disease-suppressive soils such as take-all decline, we developed a conceptual model of how plants in response to pathogen attack cry for help and recruit plant-protective microbes that confer increased resistance. Thereby, plants create a soilborne legacy that protects subsequent generations and forms disease-suppressive soils.

摘要

植物与周围的微生物共同进化,这种宿主和微生物的组合作为一个离散的生态单位,被称为“holobiont”。这篇综述概述了植物驱动的抑制性微生物组的组装。植物从种子、土壤和空气中被微生物定殖,但通过根分泌物选择性地塑造微生物组,创造微生物繁荣的微环境热点。利用植物免疫进行把关和监测,宿主植物的遗传特性控制着微生物组的组装,并赋予 holobiont 适应性优势。这些优势体现在抑制性疾病的土壤中,特定微生物的积累抑制了疾病的病原体,这种情况通常在最初的疾病爆发后发生。基于抑制性疾病土壤(如小麦全蚀病衰退),我们提出了一个概念模型,即植物在受到病原体攻击时如何呼救,并招募赋予其更高抗性的植物保护微生物。因此,植物创造了一种土壤传播的遗传,保护后代并形成抑制性疾病的土壤。

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