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Redox modulation of Rubisco conformation and activity through its cysteine residues

机译:通过其半胱氨酸残基对Rubisco构象和活性的氧化还原调节

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Treatment of purified Rubisco with agents that specifically oxidize cysteine-thiol groups causes catalytic inactivation and increased proteolytic sensitivity of the enzyme. It has been suggested that these redox properties may sustain a mechanism of regulating Rubisco activity and turnover during senescence or stress. Current research efforts are addressing the structural basis of the redox modulation of Rubisco and the identification of critical cysteines. Redox shifts result in Rubisco conformational changes as revealed by the alteration of its proteolytic fragmentation pattern upon oxidation. In particular, the augmented susceptibility of Rubisco to proteases is due to increased exposure of a small loop (between Ser61 and Thr68) when oxidized. Progressive oxidation of Rubisco cysteines using disulphide/thiol mixtures at different ratios have shown that inactivation occurs under milder oxidative conditions than proteolytic sensitization, suggesting the involvement of different critical cysteines. Site-directed mutagenesis of conserved cysteines in the Chlamydomonas reinhardtii Rubisco identified Cys449 and Cys459 among those involved in oxidative inactivation, and Cys172 and Cys192 as the specific target for arsenite. The physiological importance of Rubisco redox regulation is supported by the in vivo response of the cysteine mutants to stress conditions. Substitution of Cys172 caused a pronounced delay in stress-induced Rubisco degradation, while the replacement of the functionally redundant Cys449-Cys459 pair resulted in an enhanced catabolism with a faster high-molecular weight polymerization and translocation to membranes. These results suggest that several cysteines contribute to a sequence of conformational changes that trigger the different stages of Rubisco catabolism under increasing oxidative conditions.
机译:用能特异性氧化半胱氨酸-硫醇基团的试剂处理纯化的Rubisco会导致催化失活并增加酶的蛋白水解敏感性。已经提出这些氧化还原性质可以维持在衰老或应激期间调节Rubisco活性和更新的机制。目前的研究工作是针对Rubisco的氧化还原调节的结构基础和关键半胱氨酸的鉴定。氧化还原位移导致Rubisco构象变化,如氧化后其蛋白水解片段化模式的改变所揭示。特别是,Rubisco对蛋白酶的敏感性增强是由于氧化时小环(Ser61和Thr68之间)暴露的增加。使用二硫化物/硫醇混合物以不同比例进行的Rubisco半胱氨酸的逐步氧化表明,在比蛋白水解敏化更温和的氧化条件下会发生失活,这提示了不同的关键半胱氨酸的参与。莱茵衣藻中保守半胱氨酸的定点诱变Rubisco在氧化失活中鉴定出Cys449和Cys459,而Cys172和Cys192是亚砷酸盐的特异性靶标。半胱氨酸突变体对应激条件的体内应答支持了Rubisco氧化还原调节的生理重要性。 Cys172的取代引起应力诱导的Rubisco降解的明显延迟,而功能上多余的Cys449-Cys459对的替代则导致分解代谢增强,并具有更快的高分子量聚合和易位至膜。这些结果表明,在增加的氧化条件下,几种半胱氨酸有助于一系列构象变化,从而触发Rubisco分解代谢的不同阶段。

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