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病原体诱导的、NADPH氧化酶衍生的活性氧中间体抑制拟南芥中细胞死亡的扩散。

Pathogen-induced, NADPH oxidase-derived reactive oxygen intermediates suppress spread of cell death in Arabidopsis thaliana.

作者信息

Torres Miguel Angel, Jones Jonathan D G, Dangl Jeffery L

机构信息

Department of Biology, University of North Carolina, CB# 3280, Coker Hall, Room 108, Chapel Hill, North Carolina 27599-3280, USA.

出版信息

Nat Genet. 2005 Oct;37(10):1130-4. doi: 10.1038/ng1639. Epub 2005 Sep 18.

Abstract

Plant immune responses are usually accompanied by the production of extracellular superoxide at and surrounding infection sites. Extracellular reactive oxygen intermediates (ROIs) in plants were proposed to drive programmed cell death correlated with disease resistance (the hypersensitive response). ROIs derived from this oxidative burst are generated by plasma membrane NADPH oxidases, anchored by gp91(phox) proteins related to those responsible for the respiratory oxidative burst activated in mammalian neutrophils during infection. Mutation of Arabidopsis thaliana respiratory burst oxidase (Atrboh) genes eliminated pathogen-induced ROI production but had only a modest effect on the hypersensitive response. We show that Atrboh function can be activated by exogenous ROIs. Unexpectedly, the subsequent oxidative burst can suppress cell death in cells surrounding sites of NADPH oxidase activation. This cell death requires salicylic acid, a plant immune system activator. Thus, ROIs generated by Atrboh proteins can antagonize salicylic acid-dependent pro-death signals. These results have implications for understanding how salicylic acid activates defense signaling in cells spatially removed from infection sites without causing cell death.

摘要

植物免疫反应通常伴随着感染部位及其周围细胞外超氧化物的产生。植物中的细胞外活性氧中间体(ROIs)被认为可驱动与抗病性相关的程序性细胞死亡(即过敏反应)。这种氧化爆发产生的ROIs由质膜NADPH氧化酶产生,该酶由gp91(phox)蛋白锚定,这些蛋白与哺乳动物中性粒细胞在感染期间激活的呼吸氧化爆发所涉及的蛋白相关。拟南芥呼吸爆发氧化酶(Atrboh)基因突变消除了病原体诱导的ROI产生,但对过敏反应只有适度影响。我们发现,外源性ROIs可激活Atrboh的功能。出乎意料的是,随后的氧化爆发可抑制NADPH氧化酶激活部位周围细胞的死亡。这种细胞死亡需要水杨酸,一种植物免疫系统激活剂。因此,Atrboh蛋白产生的ROIs可拮抗水杨酸依赖性的促死亡信号。这些结果对于理解水杨酸如何在空间上远离感染部位的细胞中激活防御信号而不引起细胞死亡具有重要意义。

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