首页> 美国卫生研究院文献>Plant Physiology >Arabidopsis GLUTATHIONE REDUCTASE1 Plays a Crucial Role in Leaf Responses to Intracellular Hydrogen Peroxide and in Ensuring Appropriate Gene Expression through Both Salicylic Acid and Jasmonic Acid Signaling Pathways
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Arabidopsis GLUTATHIONE REDUCTASE1 Plays a Crucial Role in Leaf Responses to Intracellular Hydrogen Peroxide and in Ensuring Appropriate Gene Expression through Both Salicylic Acid and Jasmonic Acid Signaling Pathways

机译:拟南芥谷胱甘肽还原酶1在叶片对细胞内过氧化氢的应答以及通过水杨酸和茉莉酸信号通路确保适当的基因表达中起关键作用

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摘要

Glutathione is a major cellular thiol that is maintained in the reduced state by glutathione reductase (GR), which is encoded by two genes in Arabidopsis (Arabidopsis thaliana; GR1 and GR2). This study addressed the role of GR1 in hydrogen peroxide (H2O2) responses through a combined genetic, transcriptomic, and redox profiling approach. To identify the potential role of changes in glutathione status in H2O2 signaling, gr1 mutants, which show a constitutive increase in oxidized glutathione (GSSG), were compared with a catalase-deficient background (cat2), in which GSSG accumulation is conditionally driven by H2O2. Parallel transcriptomics analysis of gr1 and cat2 identified overlapping gene expression profiles that in both lines were dependent on growth daylength. Overlapping genes included phytohormone-associated genes, in particular implicating glutathione oxidation state in the regulation of jasmonic acid signaling. Direct analysis of H2O2-glutathione interactions in cat2 gr1 double mutants established that GR1-dependent glutathione status is required for multiple responses to increased H2O2 availability, including limitation of lesion formation, accumulation of salicylic acid, induction of pathogenesis-related genes, and signaling through jasmonic acid pathways. Modulation of these responses in cat2 gr1 was linked to dramatic GSSG accumulation and modified expression of specific glutaredoxins and glutathione S-transferases, but there is little or no evidence of generalized oxidative stress or changes in thioredoxin-associated gene expression. We conclude that GR1 plays a crucial role in daylength-dependent redox signaling and that this function cannot be replaced by the second Arabidopsis GR gene or by thiol systems such as the thioredoxin system.
机译:谷胱甘肽是一种主要的细胞硫醇,其通过谷胱甘肽还原酶(GR)维持在还原状态,该酶由拟南芥(Arabidopsis thaliana; GR1和GR2)中的两个基因编码。这项研究通过遗传,转录组和氧化还原分析相结合的方法解决了GR1在过氧化氢(H2O2)反应中的作用。为了确定谷胱甘肽状态变化在H2O2信号中的潜在作用,将氧化型谷胱甘肽(GSSG)组成型增加的gr1突变体与过氧化氢酶缺陷型背景(cat2)进行了比较,其中过氧化氢谷胱甘肽的积累有条件地由H2O2驱动。平行转录组学分析的gr1和cat2确定重叠的基因表达谱,这两个系都依赖于生长日长。重叠的基因包括与植物激素相关的基因,特别是在茉莉酸信号的调控中涉及谷胱甘肽的氧化状态。对cat2 gr1双重突变体中H2O2-谷胱甘肽相互作用的直接分析表明,对H2O2可用性增加的多种响应需要GR1依赖的谷胱甘肽状态,包括对病变形成的限制,水杨酸的积累,致病相关基因的诱导以及通过茉莉酸途径。这些反应在cat2 gr1中的调节与大量GSSG积累和特定的谷胱甘肽毒素和谷胱甘肽S-转移酶的修饰表达有关,但很少或没有证据表明普遍的氧化应激或与硫氧还蛋白相关的基因表达发生变化。我们得出结论,GR1在依赖于长度的氧化还原信号中起着至关重要的作用,并且该功能不能被第二个拟南芥GR基因或硫醇系统(如硫氧还蛋白系统)所取代。

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