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植物叶绿体腔的硫氧还蛋白靶标及其对质体功能的影响。

Thioredoxin targets of the plant chloroplast lumen and their implications for plastid function.

机构信息

Department of Chemistry, Umea3 University, Umea3, Sweden.

出版信息

Proteomics. 2010 Mar;10(5):987-1001. doi: 10.1002/pmic.200900654.

Abstract

The light-dependent regulation of stromal enzymes by thioredoxin (Trx)-catalysed disulphide/dithiol exchange is known as a classical mechanism for control of chloroplast metabolism. Recent proteome studies show that Trx targets are present not only in the stroma but in all chloroplast compartments, from the envelope to the thylakoid lumen. Trx-mediated redox control appears to be a common feature of important pathways, such as the Calvin cycle, starch synthesis and tetrapyrrole biosynthesis. However, the extent of thiol-dependent redox regulation in the thylakoid lumen has not been previously systematically explored. In this study, we addressed Trx-linked redox control in the chloroplast lumen of Arabidopsis thaliana. Using complementary proteomics approaches, we identified 19 Trx target proteins, thus covering more than 40% of the currently known lumenal chloroplast proteome. We show that the redox state of thiols is decisive for degradation of the extrinsic PsbO1 and PsbO2 subunits of photosystem II. Moreover, disulphide reduction inhibits activity of the xanthophyll cycle enzyme violaxanthin de-epoxidase, which participates in thermal dissipation of excess absorbed light. Our results indicate that redox-controlled reactions in the chloroplast lumen play essential roles in the function of photosystem II and the regulation of adaptation to light intensity.

摘要

硫氧还蛋白(Trx)催化的二硫键/巯基交换对基质酶的光依赖性调节是控制叶绿体代谢的经典机制。最近的蛋白质组学研究表明,Trx 的靶标不仅存在于基质中,而且存在于所有叶绿体区室中,从包膜到类囊体腔。Trx 介导的氧化还原控制似乎是重要途径(如卡尔文循环、淀粉合成和四吡咯生物合成)的共同特征。然而,类囊体腔中依赖巯基的氧化还原调节的程度以前没有被系统地探索过。在这项研究中,我们研究了拟南芥叶绿体腔中的 Trx 相关氧化还原控制。使用互补的蛋白质组学方法,我们鉴定了 19 种 Trx 靶标蛋白,因此涵盖了目前已知的腔室叶绿体蛋白质组的 40%以上。我们表明,硫醇的氧化还原状态对于光系统 II 的外在 PsbO1 和 PsbO2 亚基的降解是决定性的。此外,二硫键还原抑制了叶黄素循环酶玉米黄质去环氧化酶的活性,该酶参与了过量吸收光的热耗散。我们的结果表明,叶绿体腔中的氧化还原控制反应在光系统 II 的功能和对光强度的适应调节中起着至关重要的作用。

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