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质子通过膜蛋白中瞬态线性水分子链传递。

Proton transfer via a transient linear water-molecule chain in a membrane protein.

机构信息

Department of Biophysics, Ruhr-University Bochum, Universitätsstrasse 150, 44780 Bochum, Germany.

出版信息

Proc Natl Acad Sci U S A. 2011 Jul 12;108(28):11435-9. doi: 10.1073/pnas.1104735108. Epub 2011 Jun 27.

Abstract

High-resolution protein ground-state structures of proton pumps and channels have revealed internal protein-bound water molecules. Their possible active involvement in protein function has recently come into focus. An illustration of the formation of a protonated protein-bound water cluster that is actively involved in proton transfer was described for the membrane protein bacteriorhodopsin (bR) [Garczarek F, Gerwert K (2006) Nature 439:109-112]. Here we show through a combination of time-resolved FTIR spectroscopy and molecular dynamics simulations that three protein-bound water molecules are rearranged by a protein conformational change that resulted in a transient Grotthuss-type proton-transfer chain extending through a hydrophobic protein region of bR. This transient linear water chain facilitates proton transfer at an intermediate conformation only, thereby directing proton transfer within the protein. The rearrangement of protein-bound water molecules that we describe, from inactive positions in the ground state to an active chain in an intermediate state, appears to be energetically favored relative to transient incorporation of water molecules from the bulk. Our discovery provides insight into proton-transfer mechanisms through hydrophobic core regions of ubiquitous membrane spanning proteins such as G-protein coupled receptors or cytochrome C oxidases.

摘要

高分辨率的质子泵和通道的蛋白质基态结构揭示了内部结合的蛋白质水分子。它们在蛋白质功能中的可能积极参与最近成为焦点。描述了一个质子化的蛋白质结合水簇的形成,该水簇积极参与质子转移,该质子转移发生在膜蛋白菌紫质(bR)中[Garczarek F,Gerwert K(2006)Nature 439:109-112]。在这里,我们通过瞬态傅里叶变换红外光谱和分子动力学模拟的组合表明,三个蛋白质结合水分子通过导致 bR 中疏水蛋白质区域的瞬态 Grotthuss 型质子转移链延伸的蛋白质构象变化而重新排列。这种瞬态线性水链仅在中间构象下促进质子转移,从而在蛋白质内引导质子转移。我们描述的蛋白质结合水分子的重排,从基态的非活性位置到中间状态的活性链,相对于从体相瞬时掺入水分子,似乎在能量上是有利的。我们的发现为了解通过普遍存在的跨膜蛋白(如 G 蛋白偶联受体或细胞色素 c 氧化酶)的疏水区的质子转移机制提供了深入的见解。

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