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Constitutive cyclic GMP accumulation in Arabidopsis thaliana compromises systemic acquired resistance induced by an avirulent pathogen by modulating local signals

机译:拟南芥中的组成型环状GMP积累损害了通过调制局部信号来促进由无毒病原体引起的全身性获得的电阻

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The infection of Arabidopsis thaliana plants with avirulent pathogens causes the accumulation of cGMP with a biphasic profile downstream of nitric oxide signalling. However, plant enzymes that modulate cGMP levels have yet to be identified, so we generated transgenic A. thaliana plants expressing the rat soluble guanylate cyclase (GC) to increase genetically the level of cGMP and to study the function of cGMP in plant defence responses. Once confirmed that cGMP levels were higher in the GC transgenic lines than in wild-type controls, the GC transgenic plants were then challenged with bacterial pathogens and their defence responses were characterized. Although local resistance was similar in the GC transgenic and wild-type lines, differences in the redox state suggested potential cross-talk between cGMP and the glutathione redox system. Furthermore, large-scale transcriptomic and proteomic analysis highlighted the significant modulation of both gene expression and protein abundance at the infection site, inhibiting the establishment of systemic acquired resistance. Our data indicate that cGMP plays a key role in local responses controlling the induction of systemic acquired resistance in plants challenged with avirulent pathogens.
机译:Arabidopsis Thaliana植物具有无毒病原体的感染导致CGMP的积累与一氧化氮信号下游的双相曲线。然而,调节CGMP水平的植物酶尚未鉴定,因此我们产生了表达大鼠可溶性致胍基环化酶(GC)的转基因A.植物,以增加CGMP的水平并研究CGMP在植物防御反应中的功能。一旦证实,GC转基因系中的CGMP水平比在野生型对照中较高,那么GC转基因植物就会用细菌病原体攻击,其防御反应表征。虽然GC转基因和野生型线局部抗抵抗性相似,但氧化还原状态的差异表明CGMP和谷胱甘肽氧化还原系统之间的潜在串扰。此外,大规模的转录组和蛋白质组学分析强调了感染部位对基因表达和蛋白质丰度的显着调节,抑制了系统性获得性抗性的建立。我们的数据表明,CGMP在局部反应中起关键作用,该局部响应控制植物中系统性获得的抗性的诱导攻击与无毒病原体攻击。

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