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细胞色素b6f复合体处于光合电子传递途径的交叉点。

The cytochrome b6f complex at the crossroad of photosynthetic electron transport pathways.

作者信息

Tikhonov Alexander N

机构信息

Faculty of Physics, Moscow State University, Moscow 119991, Russia.

出版信息

Plant Physiol Biochem. 2014 Aug;81:163-83. doi: 10.1016/j.plaphy.2013.12.011. Epub 2013 Dec 27.

Abstract

Regulation of photosynthetic electron transport at the level of the cytochrome b6f complex provides efficient performance of the chloroplast electron transport chain (ETC). In this review, after brief overview of the structural organization of the chloroplast ETC, the consideration of the problem of electron transport control is focused on the plastoquinone (PQ) turnover and its interaction with the b6f complex. The data available show that the rates of plastoquinol (PQH2) formation in PSII and its diffusion to the b6f complex do not limit the overall rate of electron transfer between photosystem II (PSII) and photosystem I (PSI). Analysis of experimental and theoretical data demonstrates that the rate-limiting step in the intersystem chain of electron transport is determined by PQH2 oxidation at the Qo-site of the b6f complex, which is accompanied by the proton release into the thylakoid lumen. The acidification of the lumen causes deceleration of PQH2 oxidation, thus impeding the intersystem electron transport. Two other mechanisms of regulation of the intersystem electron transport have been considered: (i) "state transitions" associated with the light-induced redistribution of solar energy between PSI and PSII, and (ii) redistribution of electron fluxes between alternative pathways (noncyclic electron transport and cyclic electron flow around PSI).

摘要

在细胞色素b6f复合体水平上对光合电子传递的调节可确保叶绿体电子传递链(ETC)的高效运行。在本综述中,在简要概述叶绿体ETC的结构组织之后,对电子传递控制问题的探讨聚焦于质体醌(PQ)周转及其与b6f复合体的相互作用。现有数据表明,PSII中质体醌醇(PQH2)的形成速率及其向b6f复合体的扩散并不限制光系统II(PSII)和光系统I(PSI)之间电子转移的总体速率。对实验和理论数据的分析表明,电子传递系统间链中的限速步骤由b6f复合体Qo位点处的PQH2氧化决定,这一过程伴随着质子释放到类囊体腔中。腔的酸化会导致PQH2氧化减速,从而阻碍系统间电子传递。还探讨了系统间电子传递的另外两种调节机制:(i)与光能在PSI和PSII之间的光诱导重新分配相关的“状态转换”,以及(ii)电子通量在替代途径(非循环电子传递和围绕PSI的循环电子流)之间的重新分配。

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