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Lack of respiratory chain complex I impairs alternative oxidase engagement and modulates redox signaling during elicitor-induced cell death in tobacco

机译:烟草中缺乏呼吸链复合物I会削弱其他氧化酶的参与并调节氧化还原信号转导。

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Alternative oxidase (AOX) functions in stress resistance by preventing accumulation of reactive oxygen species (ROS), but little is known about in vivo partitioning of electron flow between AOX and the cytochrome pathway. We investigated the relationships between AOX expression and in vivo activity in Nicotiana sylvestris and the complex I-deficient CMSII mutant in response to a cell death elicitor. While a specific AOX1 isoform in the active reduced state was constitutively overexpressed in CMSII, partitioning through the alternative pathway was similar to the wild type. Lack of correlation between AOX content and activity indicates severe metabolic constraints in nonstressed mutant leaves. The bacterial elicitor harpin N-Ea induced similar timing and extent of cell death and a twofold respiratory burst in both genotypes with little change in AOX amounts. However, partitioning to AOX was increased twofold in the wild type but remained unchanged in CMSII. Oxidative phosphorylation modeling indicated a twofold ATP increase in both genotypes. By contrast, mitochondrial superoxide dismutase activity and reduced forms of ascorbate and glutathione were higher in CMSII than in the wild type. These results demonstrate genetically programmed flexibility of plant respiratory routes and antioxidants in response to elicitors and suggest that sustained ATP production, rather than AOX activity by itself or mitochondrial ROS, might be important for in planta cell death.
机译:可选的氧化酶(AOX)通过阻止活性氧(ROS)的积累来发挥抗逆性,但对AOX和细胞色素途径之间电子流的体内分配知之甚少。我们调查了烟草中AOX表达与体内活性和复杂的I缺陷CMSII突变体对细胞死亡引发剂的响应之间的关系。虽然处于活性还原状态的特定AOX1亚型在CMSII中组成性地过表达,但通过替代途径进行的分配与野生型相似。 AOX含量与活性之间缺乏相关性,表明无胁迫的突变叶片中存在严重的代谢限制。细菌激发子harpin N-Ea在两种基因型中诱导了相似的细胞死亡时间和程度以及两次呼吸爆发,而AOX的量几乎没有变化。但是,在野生型中分配给AOX的作用增加了两倍,但在CMSII中保持不变。氧化磷酸化模型表明两种基因型中的ATP增加了两倍。相比之下,CMSII中的线粒体超氧化物歧化酶活性以及抗坏血酸和谷胱甘肽的还原形式要高于野生型。这些结果证明了遗传调控的植物呼吸途径和抗氧化剂对引发剂的响应灵活性,并表明持续的ATP产生,而不是其自身或线粒体ROS的AOX活性,对于植物细胞死亡可能很重要。

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