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维管植物光系统I的结构解析及其功能意义

Structural elucidation of vascular plant photosystem I and its functional implications.

作者信息

Li Xiuxiu, Yang Gongxian, Yuan Xinyi, Wu Fenghua, Wang Wenda, Shen Jian-Ren, Kuang Tingyun, Qin Xiaochun

机构信息

School of Chemistry and Chemical Engineering, University of Jinan, Jinan 250022, China; and School of Biological Science and Technology, University of Jinan, Jinan 250022, China.

School of Biological Science and Technology, University of Jinan, Jinan 250022, China.

出版信息

Funct Plant Biol. 2022 May;49(6):432-443. doi: 10.1071/FP21077.

Abstract

In vascular plants, bryophytes and algae, the photosynthetic light reaction takes place in the thylakoid membrane where two transmembrane supercomplexes PSII and PSI work together with cytochrome b 6 f and ATP synthase to harvest the light energy and produce ATP and NADPH. Vascular plant PSI is a 600-kDa protein-pigment supercomplex, the core complex of which is partly surrounded by peripheral light-harvesting complex I (LHCI) that captures sunlight and transfers the excitation energy to the core to be used for charge separation. PSI is unique mainly in absorption of longer-wavelengths than PSII, fast excitation energy transfer including uphill energy transfer, and an extremely high quantum efficiency. From the early 1980s, a lot of effort has been dedicated to structural and functional studies of PSI-LHCI, leading to the current understanding of how more than 200 cofactors are kept at the correct distance and geometry to facilitate fast energy transfer in this supercomplex at an atomic level. In this review, we review the history of studies on vascular plant PSI-LHCI, summarise the present research progress on its structure, and present some new and further questions to be answered in future studies.

摘要

在维管植物、苔藓植物和藻类中,光合光反应发生在类囊体膜上,其中两个跨膜超复合物光系统II(PSII)和光系统I(PSI)与作物色素b6f和ATP合酶协同作用,以捕获光能并产生ATP和NADPH。维管植物PSI是一种600 kDa的蛋白质色素超复合物,其核心复合物部分被外周捕光复合物I(LHCI)包围,LHCI捕获阳光并将激发能传递到核心用于电荷分离。PSI的独特之处主要在于其吸收的波长比PSII更长、快速激发能传递(包括向上的能量传递)以及极高的量子效率。从20世纪80年代初开始,人们投入了大量精力对PSI-LHCI进行结构和功能研究,从而形成了目前对200多种辅因子如何以正确的距离和几何形状排列,以在原子水平上促进该超复合物中快速能量传递的理解。在本综述中,我们回顾了维管植物PSI-LHCI的研究历史,总结了其结构的当前研究进展,并提出了一些未来研究中有待解答的新问题和进一步的问题。

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