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WRKY18 和 WRKY40 调控的转录重编程促进拟南芥白粉病感染。

Transcriptional reprogramming regulated by WRKY18 and WRKY40 facilitates powdery mildew infection of Arabidopsis.

机构信息

Department of Plant Microbe Interaction, Max Planck Institute for Plant Breeding Research, Carl-von-Linne-Weg 10, Cologne 50829, Germany.

出版信息

Plant J. 2010 Dec;64(6):912-23. doi: 10.1111/j.1365-313X.2010.04387.x. Epub 2010 Nov 4.

DOI:10.1111/j.1365-313X.2010.04387.x
PMID:21143673
Abstract

The two closely related Arabidopsis transcription factors, WRKY18 and WRKY40, play a major and partly redundant role in PAMP-triggered basal defense. We monitored the transcriptional reprogramming induced by the powdery mildew fungus, Golovinomyces orontii, during early stages of infection with respect to the role of WRKY18/40. Expression of >1300 Arabidopsis genes was differentially altered already 8 hours post infection (hpi), indicating rapid pre-penetration signaling between the pathogen and the host. We found that WRKY18/40 negatively affects pre-invasion host defenses and deduced a subset of genes that appear to be under WRKY18/40 control. A mutant lacking the WRKY18/40 repressors executes pathogen-dependent but exaggerated expression of some defense genes leading, for example, to strongly elevated levels of camalexin. This implies that WRKY18/40 act in a feedback repression system controlling basal defense. Moreover, using chromatin immunoprecipitation (ChIP), direct in vivo interactions of WRKY40 to promoter regions containing W box elements of the regulatory gene EDS1, the AP2-type transcription factor gene RRTF1 and to JAZ8, a member of the JA-signaling repressor gene family were demonstrated. Our data support a model in which WRKY18/40 negatively modulate the expression of positive regulators of defense such as CYP71A13, EDS1 and PAD4, but positively modulate the expression of some key JA-signaling genes by partly suppressing the expression of JAZ repressors.

摘要

两个密切相关的拟南芥转录因子 WRKY18 和 WRKY40 在 PAMP 触发的基础防御中发挥主要作用,且部分功能冗余。我们监测了由白粉菌 Golovinomyces orontii 诱导的转录重编程,针对 WRKY18/40 的作用。在感染后 8 小时(hpi),超过 1300 个拟南芥基因的表达发生了差异变化,表明病原体和宿主之间存在快速的预穿透信号。我们发现 WRKY18/40 负调控预入侵宿主防御,并推导出一组似乎受 WRKY18/40 调控的基因。缺乏 WRKY18/40 抑制剂的突变体执行病原体依赖性但过度表达一些防御基因,例如,强烈提高了水杨酸诱导的几丁质酶的水平。这意味着 WRKY18/40 作为一个负反馈抑制系统来控制基础防御。此外,通过染色质免疫沉淀(ChIP)实验,直接在体内证明了 WRKY40 与含有调节基因 EDS1、AP2 型转录因子基因 RRTF1 和 JAZ 家族的 JA 信号抑制基因 JAZ8 的 W 框元件的启动子区域的相互作用。我们的数据支持这样一个模型,即 WRKY18/40 负调控防御的正调控因子(如 CYP71A13、EDS1 和 PAD4)的表达,同时通过部分抑制 JAZ 抑制剂的表达,正调控一些关键的 JA 信号基因的表达。

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