CBSX2是叶绿体氧化还原调节酶在黑暗中有效氧化所必需的

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS
Yonghong Li, Lin Zhang, Yurou Shen, Lianwei Peng, Fudan Gao
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引用次数: 0

摘要

植物叶绿体中基于硫醇/二硫化物的氧化还原调控对于控制靶蛋白响应光信号的活性至关重要。叶绿体中这种作用的一个例子是叶绿体ATP合成酶(CF o CF 1)的活性,它由CF 1 γ亚基的氧化还原状态调节,并在其中心区域涉及两个半胱氨酸。为了研究cf1 γ和其他叶绿体氧化还原调节酶在黑暗中氧化的机制,我们对拟南芥cbsx2突变体进行了表征,该突变体在光照下的NPQ(非光化学猝灭)诱导改变。在适应黑暗的WT植物中,cf1 γ被完全氧化,而在相同条件下,cbsx2中仍有少量的cf1 γ处于还原状态。在这个突变体中,cf1 γ的还原在光照下不受影响,但在从光照到黑暗的过渡过程中,其氧化效率较低。cbsx2中卡尔文循环酶FBPase和SBPase的氧化还原状态与CF 1 γ在光/暗转换过程中的氧化还原状态相似。亲和纯化和随后的质谱分析表明,铁氧还蛋白-硫氧还蛋白还原酶/硫氧还蛋白(FTR - Trx)和NADPH依赖性硫氧还蛋白还原酶(NTRC)系统的组分以及几种2 - Cys过氧化物还蛋白(Prxs)可以用CBSX2共纯化。除了硫氧还毒素,酵母双杂交分析表明CBSX2还与NTRC相互作用。综上所述,我们的研究结果表明,CBSX2可能通过调节体内叶绿体氧化还原系统的活性,参与了黑暗中叶绿体氧化还原调节酶的氧化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
CBSX2 is required for the efficient oxidation of chloroplast redox‐regulated enzymes in darkness
Abstract Thiol/disulfide‐based redox regulation in plant chloroplasts is essential for controlling the activity of target proteins in response to light signals. One of the examples of such a role in chloroplasts is the activity of the chloroplast ATP synthase (CF o CF 1 ), which is regulated by the redox state of the CF 1 γ subunit and involves two cysteines in its central domain. To investigate the mechanism underlying the oxidation of CF 1 γ and other chloroplast redox‐regulated enzymes in the dark, we characterized the Arabidopsis cbsx2 mutant, which was isolated based on its altered NPQ (non‐photochemical quenching) induction upon illumination. Whereas in dark‐adapted WT plants CF 1 γ was completely oxidized, a small amount of CF 1 γ remained in the reduced state in cbsx2 under the same conditions. In this mutant, reduction of CF 1 γ was not affected in the light, but its oxidation was less efficient during a transition from light to darkness. The redox states of the Calvin cycle enzymes FBPase and SBPase in cbsx2 were similar to those of CF 1 γ during light/dark transitions. Affinity purification and subsequent analysis by mass spectrometry showed that the components of the ferredoxin‐thioredoxin reductase/thioredoxin (FTR‐Trx) and NADPH‐dependent thioredoxin reductase (NTRC) systems as well as several 2‐Cys peroxiredoxins (Prxs) can be co‐purified with CBSX2. In addition to the thioredoxins, yeast two‐hybrid analysis showed that CBSX2 also interacts with NTRC. Taken together, our results suggest that CBSX2 participates in the oxidation of the chloroplast redox‐regulated enzymes in darkness, probably through regulation of the activity of chloroplast redox systems in vivo.
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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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