Water in Photosystem II: Structural, functional and mechanistic considerations

IF 2.7 2区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY Biochimica et Biophysica Acta-Bioenergetics Pub Date : 2014-01-01 DOI:10.1016/j.bbabio.2013.08.003
Katrin Linke, Felix M. Ho
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引用次数: 77

Abstract

Water is clearly important for the functioning of Photosystem II (PSII). Apart from being the very substrate that needs to be transported in this water oxidation enzyme, water is also vital for the transport of protons to and from the catalytic center as well as other important co-factors and key residues in the enzyme. The latest crystal structural data of PSII have enabled detailed analyses of the location and possible function of water molecules in the enzyme. Significant progress has also been made recently in the investigation of channels and pathways through the protein complex. Through these studies, the mechanistic significance of water for PSII is becoming increasingly clear. An overview and discussion of key aspects of the current research on water in PSII is presented here. The role of water in three other systems (aquaporin, bacteriorhodopsin and cytochrome P450) is also outlined to illustrate further points concerning the central significance that water can have, and potential applications of these ideas for continued research on PSII. It is advocated that water be seen as an integral part of the protein and far from a mere solvent.

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光系统II中的水:结构、功能和机理的考虑
水显然对光系统II (PSII)的功能很重要。除了作为这种水氧化酶需要运输的底物之外,水对于质子往返于催化中心以及酶中其他重要的辅助因子和关键残基的运输也至关重要。最新的PSII晶体结构数据使人们能够详细分析酶中水分子的位置和可能的功能。近年来,通过蛋白质复合物的通道和途径的研究也取得了重大进展。通过这些研究,水对PSII的机制意义越来越清楚。本文概述和讨论了当前PSII水研究的关键方面。本文还概述了水在其他三个系统(水通道蛋白、细菌视紫红质和细胞色素P450)中的作用,以进一步说明水可能具有的核心意义,以及这些观点在PSII继续研究中的潜在应用。人们提倡将水视为蛋白质的一个组成部分,而不仅仅是一种溶剂。
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来源期刊
Biochimica et Biophysica Acta-Bioenergetics
Biochimica et Biophysica Acta-Bioenergetics 生物-生化与分子生物学
CiteScore
9.50
自引率
7.00%
发文量
363
审稿时长
92 days
期刊介绍: BBA Bioenergetics covers the area of biological membranes involved in energy transfer and conversion. In particular, it focuses on the structures obtained by X-ray crystallography and other approaches, and molecular mechanisms of the components of photosynthesis, mitochondrial and bacterial respiration, oxidative phosphorylation, motility and transport. It spans applications of structural biology, molecular modeling, spectroscopy and biophysics in these systems, through bioenergetic aspects of mitochondrial biology including biomedicine aspects of energy metabolism in mitochondrial disorders, neurodegenerative diseases like Parkinson''s and Alzheimer''s, aging, diabetes and even cancer.
期刊最新文献
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