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叶绿体里的铁硫蛋白。处于电子传递与信号转导的交叉点。

The chloroplast Rieske iron-sulfur protein. At the crossroad of electron transport and signal transduction.

作者信息

de Vitry Catherine, Ouyang Yexin, Finazzi Giovanni, Wollman Francis-André, Kallas Toivo

机构信息

Physiologie Membranaire et Moléculaire du Chloroplaste CNRS UPR 1261, Institut de Biologie Physico-Chimique, 13 Rue Pierre et Marie Curie, 75005 Paris, France.

出版信息

J Biol Chem. 2004 Oct 22;279(43):44621-7. doi: 10.1074/jbc.M406955200. Epub 2004 Aug 16.

Abstract

We have addressed the functional and structural roles of three domains of the chloroplast Rieske iron-sulfur protein; that is, the flexible hinge that connects the transmembrane helix to the soluble cluster-bearing domain, the N-terminal stromal protruding domain, and the transmembrane helix. To this aim mutants were generated in the green alga Chlamydomonas reinhardtii. Their capacities to assemble the cytochrome b6f complex, perform plastoquinol oxidation, and signal redox-induced activation of the light-harvesting complex II kinase during state transition were tested in vivo. Deletion of one residue and extensions of up to five residues in the flexible hinge had no significant effect on complex accumulation or electron transfer efficiency. Deletion of three residues (Delta3G) dramatically decreased reaction rates by a factor of approximately 10. These data indicate that the chloroplast iron-sulfur protein-linking domain is much more flexible than that of its counterpart in mitochondria. Despite greatly slowed catalysis in the Delta3G mutant, there was no apparent delay in light-harvesting complex II kinase activation or state transitions. This indicates that conformational changes occurring in the Rieske protein did not represent a limiting step for kinase activation within the time scale tested. No phenotype could be associated with mutations in the N-terminal stromal-exposed domain. In contrast, the N17V mutation in the Rieske protein transmembrane helix resulted in a large decrease in the cytochrome f synthesis rate. This reveals that the Rieske protein transmembrane helix plays an active role in assembly-mediated control of cytochrome f synthesis. We propose a structural model to interpret this phenomenon based on the C. reinhardtii cytochrome b6f structure.

摘要

我们已经研究了叶绿体铁硫蛋白三个结构域的功能和结构作用;即连接跨膜螺旋与可溶性含铁硫簇结构域的柔性铰链、N端基质突出结构域和跨膜螺旋。为此,在绿藻莱茵衣藻中产生了突变体。在体内测试了它们组装细胞色素b6f复合物、进行质体醌氧化以及在状态转换期间信号转导氧化还原诱导的光捕获复合物II激酶激活的能力。柔性铰链中一个残基的缺失和多达五个残基的延伸对复合物积累或电子传递效率没有显著影响。三个残基的缺失(Delta3G)使反应速率显著降低了约10倍。这些数据表明,叶绿体铁硫蛋白连接结构域比线粒体中的对应结构域更具柔性。尽管Delta3G突变体中的催化作用大大减慢,但光捕获复合物II激酶激活或状态转换没有明显延迟。这表明在测试的时间尺度内,铁硫蛋白中发生的构象变化不是激酶激活的限制步骤。N端基质暴露结构域的突变没有相关表型。相比之下,铁硫蛋白跨膜螺旋中的N17V突变导致细胞色素f合成速率大幅下降。这表明铁硫蛋白跨膜螺旋在细胞色素f合成的组装介导控制中发挥积极作用。我们基于莱茵衣藻细胞色素b6f结构提出了一个结构模型来解释这一现象。

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