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Crystallographic and Computational Analysis of the Barrel Part of the PsbO Protein of Photosystem II: Carboxylate-Water Clusters as Putative Proton Transfer Relays and Structural Switches

机译:晶体和计算分析的光系统II的PsbO蛋白的桶部分:羧酸盐-水团簇作为推定的质子传递中继和结构开关。

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In all organisms that employ oxygenic photosynthesis, the membrane-extrinsic PsbO protein is a functionally important component of photosystem II. To study the previously proposed proton antenna function of carboxylate clusters at the protein-water interface, we combined crystallography and simulations of a truncated cyanobacterial (Thermosynechococcus elongatus) PsbO without peripheral loops. We expressed the PsbO beta-barrel heterologously and determined crystal structures at resolutions of 1.15-1.5 angstrom at 100 K at various pH values and at 297 K and pH 6. (1) Approximately half of the 177 surface waters identified at 100 K are resolved at 297 K, suggesting significant occupancy of specific water sites at room temperature, and loss of resolvable occupancy for other sites. (2) Within a loop region specific to cyanobacterial PsbO, three residues and four waters coordinating a calcium ion are well ordered even at 297 K; the ligation differs for manganese. (3) The crystal structures show water-carboxylate clusters that could facilitate fast Grotthus-type proton transfer along the protein surface and/or store protons. (4) Two carboxylate side chains, which are part of a structural motif interrupting two beta-strands and connecting PsbO to photosystem II, are within hydrogen bonding distance at pH 6 (100 K). Simulations indicate coupling between protein structure and carboxylate protonation. The crystal structure determined at 100 K and pH 10 indicates broken hydrogen bonding between the carboxylates and local structural change. At pH 6 and 297 K, both conformations were present in the crystal, suggesting conformational dynamics in the functionally relevant pH regime. Taken together, crystallography and molecular dynamics underline a possible mechanism for pH-dependent structural switching.
机译:在所有使用氧光合作用的生物中,膜外源性PsbO蛋白是光系统II的功能重要组成部分。为了研究先前提出的蛋白质-水界面上的羧酸盐簇的质子天线功能,我们结合了晶体学和模拟的无周围环的截短的蓝细菌(Thermosynechococcus elongatus)PsbO。我们异源表达了PsbOβ-桶,并在各种pH值和297 K和pH 6下,在100 K分辨率下以1.15-1.5埃的分辨率确定了晶体结构。(1)在100 K下确定的177种地表水中大约有一半被解析在297 K时,表明室温下特定水位的大量占用,而其他水位的可分辨占用率降低。 (2)在蓝细菌PsbO特有的环区内,即使在297 K时,三个残基和四个与钙离子配位的水也有序排列;锰的连接方法有所不同。 (3)晶体结构显示水羧酸盐簇,可以促进Grotthus型质子沿蛋白质表面快速转移和/或存储质子。 (4)两个羧酸根侧链是结构性基序的一部分,该结构基点打断了两个β链并将PsbO连接到光系统II,在pH 6(100 K)的氢键范围内。模拟表明蛋白质结构和羧酸盐质子化之间的耦合。在100 K和pH 10下确定的晶体结构表明,羧酸盐之间的氢键断裂和局部结构变化。在pH 6和297 K下,两种构象均存在于晶体中,表明在功能相关的pH范围内的构象动力学。总之,晶体学和分子动力学强调了pH依赖性结构转换的可能机制。

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