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Solvation water permeation and ionic selectivity of a putative model for the pore region of the voltage-gated sodium channel.

机译:电压门控钠通道孔区域的推定模型的溶剂化透水和离子选择性。

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摘要

This paper describes a molecular dynamics and molecular mechanics study of the solvation and selectivity of the narrow pore and vestibule region of a model-built structure for the voltage-gated sodium channel. The particular structure used was one proposed by Guy and Durell. However, many of the features we saw would likely be shared with other possible models for this channel, such as the one proposed by Lipkind and Fozzard. It was found that the water mobility was reduced in the channel and the water orientations were significantly ordered by the channel environment. Water mobility depended on protein mobility; in a computer experiment in which the protein was artificially frozen, channel water at 300 degrees K was immobilized. Water motions were defined in significant part by a series of discrete moves from one pattern of hydrogen bonding with particular amino acids to another. However, there are so many different hydrogen bonding patterns that a description of the motion in terms of transitions among a small number of discrete states is not appropriate. In the model whose solvation we explored, several charged residues seem to play a particularly significant role in determining solvation and water motions. Based on energy minimization studies, the structure clearly shows selectivity for univalent cations over anions.
机译:本文描述了电压门控钠通道模型构建结构的窄孔和前庭区域的溶剂化和选择性的分子动力学和分子力学研究。使用的特定结构是Guy和Durell提​​出的一种。但是,我们看到的许多功能可能会与此渠道的其他可能模型共享,例如Lipkind和Fozzard提出的模型。发现通道中水的流动性降低,并且通道环境中水的取向显着地排序。水的流动性取决于蛋白质的流动性。在将蛋白质人工冷冻的计算机实验中,固定了300度K的通道水。水的运动在很大程度上是由一系列离散的运动定义的,这些运动是从一种氢键与一种特定氨基酸的结合模式转变为另一种氢键。但是,存在太多不同的氢键模式,因此不宜用少量离散状态之间的跃迁来描述运动。在我们探索了其溶剂化的模型中,一些带电残基似乎在确定溶剂化和水运动中起着特别重要的作用。根据能量最小化研究,该结构清楚地显示了单价阳离子对阴离子的选择性。

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