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细菌视紫红质中的功能相互作用:视黄醛与水形成氢键的理论分析

Functional interactions in bacteriorhodopsin: a theoretical analysis of retinal hydrogen bonding with water.

作者信息

Nina M, Roux B, Smith J C

机构信息

Département de Biologie Cellulaire et Moléculaire, C.E.A., Centre d'Etudes Saclay, Gif-sur-Yvette, France.

出版信息

Biophys J. 1995 Jan;68(1):25-39. doi: 10.1016/S0006-3495(95)80184-0.

Abstract

The light-driven proton pump, bacteriorhodopsin (bR) contains a retinal molecule with a Schiff base moiety that can participate in hydrogen-bonding interactions in an internal, water-containing channel. Here we combine quantum chemistry and molecular mechanics techniques to determine the geometries and energetics of retinal Schiff base-water interactions. Ab initio molecular orbital calculations are used to determine potential surfaces for water-Schiff base hydrogen-bonding and to characterize the energetics of rotation of the C-C single bond distal and adjacent to the Schiff base NH group. The ab initio results are combined with semiempirical quantum chemistry calculations to produce a data set used for the parameterization of a molecular mechanics energy function for retinal. Using the molecular mechanics force field the hydrated retinal and associated bR protein environment are energy-minimized and the resulting geometries examined. Two distinct sites are found in which water molecules can have hydrogen-bonding interactions with the Schiff base: one near the NH group of the Schiff base in a polar region directed towards the extracellular side, and the other near a retinal CH group in a relatively nonpolar region, directed towards the cytoplasmic side.

摘要

光驱动质子泵细菌视紫红质(bR)含有一个带有席夫碱部分的视黄醛分子,该分子可在内部含水通道中参与氢键相互作用。在此,我们结合量子化学和分子力学技术来确定视黄醛席夫碱 - 水相互作用的几何结构和能量。从头算分子轨道计算用于确定水 - 席夫碱氢键的势能面,并表征与席夫碱NH基团相邻和远端的C - C单键旋转的能量学。从头算结果与半经验量子化学计算相结合,生成一个用于视黄醛分子力学能量函数参数化的数据集。使用分子力学力场对视黄醛水合物和相关的bR蛋白环境进行能量最小化,并检查所得的几何结构。发现了两个不同的位点,水分子可在其中与席夫碱发生氢键相互作用:一个在席夫碱NH基团附近,位于朝向细胞外侧的极性区域;另一个在相对非极性区域的视黄醛CH基团附近,朝向细胞质侧。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5844/1281657/fa6750fa56b4/biophysj00067-0028-a.jpg

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