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光合适应:光捕获天线的结构重组——主要和次要叶绿素a/b结合蛋白的氧化还原依赖性磷酸化的作用

Photosynthetic acclimation: structural reorganisation of light harvesting antenna--role of redox-dependent phosphorylation of major and minor chlorophyll a/b binding proteins.

作者信息

Kargul Joanna, Barber James

机构信息

Wolfson Laboratories, Division of Molecular Biosciences, Faculty of Natural Sciences, Imperial College London, UK.

出版信息

FEBS J. 2008 Mar;275(6):1056-68. doi: 10.1111/j.1742-4658.2008.06262.x.

DOI:10.1111/j.1742-4658.2008.06262.x
PMID:18318833
Abstract

In order to carry out photosynthesis, plants and algae rely on the co-operative interaction of two photosystems: photosystem I and photosystem II. For maximum efficiency, each photosystem should absorb the same amount of light. To achieve this, plants and green algae have a mobile pool of chlorophyll a/b-binding proteins that can switch between being light-harvesting antenna for photosystem I or photosystem II, in order to maintain an optimal excitation balance. This switch, termed state transitions, involves the reversible phosphorylation of the mobile chlorophyll a/b-binding proteins, which is regulated by the redox state of the plastoquinone-mediating electron transfer between photosystem I and photosystem II. In this review, we will present the data supporting the function of redox-dependent phosphorylation of the major and minor chlorophyll a/b-binding proteins by the specific thylakoid-bound kinases (Stt7, STN7, TAKs) providing a molecular switch for the structural remodelling of the light-harvesting complexes during state transitions. We will also overview the latest X-ray crystallographic and electron microscopy-derived models for structural re-arrangement of the light-harvesting antenna during State 1-to-State 2 transition, in which the minor chlorophyll a/b-binding protein, CP29, and the mobile light-harvesting complex II trimer detach from the light-harvesting complex II-photosystem II supercomplex and associate with the photosystem I core in the vicinity of the PsaH/L/O/P domain.

摘要

为了进行光合作用,植物和藻类依赖于两个光系统的协同相互作用:光系统I和光系统II。为了实现最高效率,每个光系统应吸收等量的光。为了达到这一目的,植物和绿藻拥有一个叶绿素a/b结合蛋白的动态库,该动态库可以在作为光系统I或光系统II的捕光天线之间切换,以维持最佳的激发平衡。这种切换,称为状态转换,涉及到动态叶绿素a/b结合蛋白的可逆磷酸化,其由介导光系统I和光系统II之间电子传递的质体醌的氧化还原状态调控。在这篇综述中,我们将展示数据,支持特定类囊体结合激酶(Stt7、STN7、TAKs)对主要和次要叶绿素a/b结合蛋白进行氧化还原依赖性磷酸化的功能,该功能为状态转换期间捕光复合物的结构重塑提供了一个分子开关。我们还将概述最新的X射线晶体学和电子显微镜衍生模型,这些模型描述了在从状态1到状态2的转换过程中捕光天线的结构重排,其中次要叶绿素a/b结合蛋白CP29和动态捕光复合物II三聚体从捕光复合物II - 光系统II超复合物上脱离,并与PsaH/L/O/P结构域附近的光系统I核心结合。

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