首页> 外文期刊>Journal of bacteriology >Dual Role of Cysteine 172 in Redox Regulation of Ribulose 1,5-Bisphosphate Carboxylase/Oxygenase Activity and Degradation
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Dual Role of Cysteine 172 in Redox Regulation of Ribulose 1,5-Bisphosphate Carboxylase/Oxygenase Activity and Degradation

机译:半胱氨酸172在核糖1,5-双磷酸磷酸羧化酶/加氧酶活性和降解的氧化还原调节中的双重作用

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Alkylation and oxidation of cysteine residues significantly decrease the catalytic activity and stimulate the degradation of ribulose 1,5-bisphosphate carboxylase/oxygenase (RuBisCO). We analyzed the role of vicinal cysteine residues in redox regulation of RuBisCO from Synechocystis sp. strain PCC 6803. Cys172 and Cys192, which are adjacent to the catalytic site, and Cys247, which cross-links two large subunits, were replaced by alanine. Whereas all mutant cells (C172A, C192A, C172A-C192A, and C247A) and the wild type grew photoautotrophically at similar rates, the maximal photosynthesis rates of C172A mutants decreased 10 to 20% as a result of 40 to 60% declines in RuBisCO turnover number. Replacement of Cys172, but not replacement of Cys192, prominently decreased the effect of cysteine alkylation or oxidation on RuBisCO. Oxidants that react with vicinal thiols had a less inhibitory effect on the activity of either the C172A or C192A enzyme variants, suggesting that a disulfide bond was formed upon oxidation. Thiol oxidation induced RuBisCO dissociation into subunits. This effect was either reduced in the C172A and C192A mutant enzymes or eliminated by carboxypentitol bisphosphate (CPBP) binding to the activated enzyme form. The CPBP effect presumably resulted from a conformational change in the carbamylated CPBP-bound enzyme, as implied from an alteration in the electrophoretic mobility. Stress conditions, provoked by nitrate deprivation, decreased the RuBisCO contents and activities in the wild type and in the C192A and C247A mutants but not in the C172A and C172A-C192A mutants. These results suggest that although Cys172 does not participate in catalysis, it plays a role in redox regulation of RuBisCO activity and degradation.
机译:半胱氨酸残基的烷基化和氧化显着降低了催化活性,并刺激了核糖1,5-双磷酸羧化酶/加氧酶(RuBisCO)的降解。我们分析了邻近半胱氨酸残基在 Synechocystis sp。的RuBisCO的氧化还原调节中的作用。菌株PCC6803。与催化位点相邻的Cys172和Cys192,以及与两个大亚基交联的Cys247,被丙氨酸替代。尽管所有突变细胞(C172A,C192A,C172A-C192A和C247A)和野生型细胞均以相似的速率自养,但由于RuBisCO营业额下降40%至60%,C172A突变体的最大光合速率下降了10%至20%。数。 Cys172的替换,而不是Cys192的替换,显着降低了半胱氨酸烷基化或氧化对RuBisCO的影响。与邻位硫醇反应的氧化剂对C172A或C192A酶变体的活性抑制作用较小,表明氧化后会形成二硫键。硫醇氧化诱导RuBisCO解离成亚基。在C172A和C192A突变酶中这种作用减弱,或者通过羧基戊醇双磷酸酯(CPBP)与活化酶形式的结合而消除。据推测,CPBP效应是由氨基甲酸酯化的CPBP结合酶的构象变化引起的,这暗示着电泳迁移率的改变。由硝酸盐剥夺引起的胁迫条件降低了野生型和C192A和C247A突变体中RuBisCO的含量和活性,但没有降低C172A和C172A-C192A突变体中的RuBisCO含量和活性。这些结果表明,尽管Cys172不参与催化作用,但它在RuBisCO活性和降解的氧化还原调节中起作用。

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