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叶绿体在植物防御中起着核心作用,是病原体效应物的靶标。

Chloroplasts play a central role in plant defence and are targeted by pathogen effectors.

机构信息

Biosciences, College of Life and Environment Sciences, University of Exeter, Exeter EX4 4QD, UK.

School of Biological Sciences, University of Essex, Colchester CO4 3SQ, UK.

出版信息

Nat Plants. 2015 Jun 1;1:15074. doi: 10.1038/nplants.2015.74.

Abstract

Microbe associated molecular pattern (MAMP) receptors in plants recognize MAMPs and activate basal defences; however a complete understanding of the molecular and physiological mechanisms conferring immunity remains elusive. Pathogens suppress active defence in plants through the combined action of effector proteins. Here we show that the chloroplast is a key component of early immune responses. MAMP perception triggers the rapid, large-scale suppression of nuclear encoded chloroplast-targeted genes (NECGs). Virulent Pseudomonas syringae effectors reprogramme NECG expression in Arabidopsis, target the chloroplast and inhibit photosynthetic CO2 assimilation through disruption of photosystem II. This activity prevents a chloroplastic reactive oxygen burst. These physiological changes precede bacterial multiplication and coincide with pathogen-induced abscisic acid (ABA) accumulation. MAMP pretreatment protects chloroplasts from effector manipulation, whereas application of ABA or the inhibitor of photosynthetic electron transport, DCMU, abolishes the MAMP-induced chloroplastic reactive oxygen burst, and enhances growth of a P. syringae hrpA mutant that fails to secrete effectors.

摘要

植物中微生物相关分子模式(MAMP)受体识别 MAMPs 并激活基础防御;然而,对于赋予免疫性的分子和生理机制的全面理解仍然难以捉摸。病原体通过效应蛋白的共同作用抑制植物的主动防御。在这里,我们表明叶绿体是早期免疫反应的关键组成部分。MAMP 感知触发核编码靶向叶绿体基因(NECG)的快速、大规模抑制。毒性假单胞菌效应蛋白在拟南芥中重新编程 NECG 表达,靶向叶绿体并通过破坏光系统 II 抑制光合作用 CO2 同化。这种活性阻止了叶绿体活性氧爆发。这些生理变化先于细菌繁殖,并与病原体诱导的脱落酸(ABA)积累同时发生。MAMP 预处理可保护叶绿体免受效应蛋白的操作,而 ABA 或光合作用电子传递抑制剂 DCMU 的应用则消除了 MAMP 诱导的叶绿体活性氧爆发,并增强了不能分泌效应蛋白的 P. syringae hrpA 突变体的生长。

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