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解析植物防御中的环鸟苷酸信号特征及环鸟苷酸依赖性途径。

Deciphering cGMP signatures and cGMP-dependent pathways in plant defence.

作者信息

Meier Stuart, Madeo Laura, Ederli Luisa, Donaldson Lara, Pasqualini Stefania, Gehring Chris

机构信息

South African National Institute of Bioinformatics, Bellville, South Africa.

出版信息

Plant Signal Behav. 2009 Apr;4(4):307-9. doi: 10.4161/psb.4.4.8066.

Abstract

The second messenger, 3′,5′-cyclic monophosphate (cGMP), is a critical component of many different processes in plants while guanylyl cyclases that catalyse the formation of cGMP from GTP have remained somewhat elusive in higher plants. Consequently, two major aims are the discovery of novel GCs and the identification of cGMP mediated processes. Recently, we have reported temporal signatures of ozone (O)-induced hydrogen peroxide (HO) and nitric oxide (NO) generation, their effect on cGMP generation, and consequent transcriptional changes of genes diagnostic for stress responses in tobacco. We demonstrated that O and NO induced early transcriptional activation of the scavenger encoding proteins, alternative oxidase (), glutathione peroxidase () and the induction of ethylene production through aminocyclopropancarboxylic acid synthase () are cGMP-independent. By contrast, the early response of the phenylalanine ammonia lyase gene () and the late response of the gene encoding the pathogenesis-related protein () show critical dependence on cGMP. Here we show differential cGMP responses to virulent and avirulent strains and propose that host-pathogen recognition and/or down-stream processes are transduced by complex cGMP signatures. This is in accordance with the identification of a growing number of multi-domain molecules in Arabidopsis that are reported to contain putative functional GC catalytic centers.

摘要

第二信使3′,5′-环磷酸鸟苷(cGMP)是植物许多不同过程的关键组成部分,而在高等植物中,催化由鸟苷三磷酸(GTP)形成cGMP的鸟苷酸环化酶仍有些难以捉摸。因此,两个主要目标是发现新型鸟苷酸环化酶(GC)并确定cGMP介导的过程。最近,我们报道了臭氧(O)诱导的过氧化氢(HO)和一氧化氮(NO)生成的时间特征、它们对cGMP生成的影响以及烟草中应激反应诊断基因随之发生的转录变化。我们证明,O和NO诱导的清除剂编码蛋白、交替氧化酶(AOX)、谷胱甘肽过氧化物酶(GPX)的早期转录激活以及通过氨基环丙烷羧酸合酶(ACS)诱导乙烯生成均与cGMP无关。相比之下,苯丙氨酸解氨酶基因(PAL)的早期反应和病程相关蛋白(PR)编码基因的晚期反应显示出对cGMP的关键依赖性。在这里,我们展示了对无毒和有毒菌株的不同cGMP反应,并提出宿主-病原体识别和/或下游过程是由复杂的cGMP信号转导的。这与拟南芥中越来越多的多结构域分子的鉴定结果一致,据报道这些分子含有推定的功能性GC催化中心。

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