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光系统 II 的晶体学研究进展。

Recent progress in the crystallographic studies of photosystem II.

机构信息

Institute of Chemistry and Biochemistry/Crystallography, Freie Universität Berlin, Takustrasse 6, D-14195 Berlin, Germany.

出版信息

Chemphyschem. 2010 Apr 26;11(6):1160-71. doi: 10.1002/cphc.200900901.

Abstract

The photosynthetic oxygen-evolving photosystem II (PSII) is the only known biochemical system that is able to oxidize water molecules and thereby generates almost all oxygen in the Earth's atmosphere. The elucidation of the structural and mechanistic aspects of PSII keeps scientists all over the world engaged since several decades. In this Minireview, we outline the progress in understanding PSII based on the most recent crystal structure at 2.9 A resolution. A likely position of the chloride ion, which is known to be required for the fast turnover of water oxidation, could be determined in native PSII and is compared with work on bromide and iodide substituted PSII. Moreover, eleven new integral lipids could be assigned, emphasizing the importance of lipids for the perfect function of PSII. A third plastoquinone molecule (Q(C)) and a second quinone transfer channel are revealed, making it possible to consider different mechanisms for the exchange of plastoquinone/plastoquinol molecules. In addition, possible transport channels for water, dioxygen and protons are identified.

摘要

光合作用放氧的光系统 II(PSII)是唯一已知的能够氧化水分子并因此产生地球大气中几乎所有氧气的生化系统。几十年来,阐明 PSII 的结构和机制方面一直吸引着世界各地的科学家。在这篇综述中,我们根据最近分辨率为 2.9A 的晶体结构概述了对 PSII 的理解进展。可以在天然 PSII 中确定已知对水氧化快速周转所必需的氯离子的可能位置,并将其与溴代和碘代 PSII 的工作进行比较。此外,还可以分配十一个新的整合脂,强调了脂对于 PSII 完美功能的重要性。揭示了第三个质体醌分子(Q(C))和第二个醌转移通道,这使得可以考虑质体醌/质体醇分子交换的不同机制。此外,还确定了水、氧气和质子的可能传输通道。

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