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通过分子动力学模拟研究蛋白质对其附近水动力学的影响。

The influence of a protein on water dynamics in its vicinity investigated by molecular dynamics simulation.

作者信息

Abseher R, Schreiber H, Steinhauser O

机构信息

Institut für Theoretische Chemie, Universität Wien, Vienna, Austria.

出版信息

Proteins. 1996 Jul;25(3):366-78. doi: 10.1002/(SICI)1097-0134(199607)25:3<366::AID-PROT8>3.0.CO;2-D.

Abstract

A system containing the globular protein ubiquitin and 4,197 water molecules has been used for the analysis of the influence exerted by a protein on solvent dynamics in its vicinity. Using Voronoi polyhedra, the solvent has been divided into three subsets, i.e., the first and second hydration shell, and the remaining bulk, which is hardly affected by the protein. Translational motion in the first shell is retarded by a factor of 3 in comparison to bulk. Several molecules in the first shell do not reach the diffusive regime within 100 ps. Shell-averaged orientational autocorrelation functions, which are also subject to a retardation effect, cannot be modeled by a single exponential time law, but are instead well-described by a Kohlrausch-Williams-Watts (KWW) function. The underlying distribution of single-molecule rotational correlation times is both obtained directly from the simulation and derived theoretically. The temperature dependence of reorientation is characterized by a strongly varying correlation time, but a virtually temperature-independent KWW exponent. Thus, the coupling of water structure relaxation with the respective environment, which is characteristic of each solvation shell, is hardly affected by temperature. In other words, the functional form of the distributions of single-molecule rotational correlation times is not subject to a temperature effect. On average, a correlation between reorientation and lifetimes of neighborhood relations is observed.

摘要

一个包含球状蛋白泛素和4197个水分子的系统被用于分析蛋白质对其附近溶剂动力学的影响。利用Voronoi多面体,溶剂被分为三个子集,即第一和第二水化层,以及其余几乎不受蛋白质影响的主体部分。与主体部分相比,第一层中的平移运动减慢了3倍。第一层中的几个分子在100皮秒内未达到扩散状态。壳层平均取向自相关函数也受到延迟效应的影响,不能用单一指数时间定律来建模,而是由科尔劳施-威廉姆斯-瓦特(KWW)函数很好地描述。单分子旋转相关时间的潜在分布既直接从模拟中获得,也从理论上推导得出。重新取向的温度依赖性的特征是相关时间变化很大,但KWW指数几乎与温度无关。因此,每个溶剂化壳层特有的水结构弛豫与各自环境的耦合几乎不受温度影响。换句话说,单分子旋转相关时间分布的函数形式不受温度效应的影响。平均而言,观察到重新取向与邻域关系寿命之间的相关性。

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