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用于膜通道分子动力学模拟的平板几何结构的实现。

The implementation of slab geometry for membrane-channel molecular dynamics simulations.

作者信息

Bostick David, Berkowitz Max L

机构信息

Department of Physics, University of North Carolina, Chapel Hill, North Carolina 27599, USA.

出版信息

Biophys J. 2003 Jul;85(1):97-107. doi: 10.1016/S0006-3495(03)74458-0.

Abstract

Slab geometric boundary conditions are applied in the molecular dynamics simulation of a simple membrane-channel system. The results of the simulation were compared to those of an analogous system using normal three-dimensional periodic boundary conditions. Analysis of the dynamics and electrostatics of the system show that slab geometric periodicity eliminates the artificial bulk water orientational polarization that is present while using normal three-dimensional periodicity. Furthermore, even though the water occupancy and volume of our simple channel is the same when using either method, the electrostatic properties are considerably different when using slab geometry. In particular, the orientational polarization of water is seen to be different in the interior of the channel. This gives rise to a markedly different electric field within the channel. We discuss the implications of slab geometry for the future simulation of this type of system and for the study of channel transport properties.

摘要

在一个简单的膜通道系统的分子动力学模拟中应用了平板几何边界条件。将该模拟结果与使用常规三维周期性边界条件的类似系统的结果进行了比较。对该系统的动力学和静电学分析表明,平板几何周期性消除了使用常规三维周期性时存在的人为体相水取向极化。此外,尽管使用这两种方法时我们简单通道中的水占有率和体积相同,但使用平板几何时静电特性有很大不同。特别是,通道内部水的取向极化不同。这导致通道内的电场明显不同。我们讨论了平板几何对这类系统未来模拟以及通道传输特性研究的影响。

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