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模拟质子通过跨膜蛋白简化模型的传输。

Simulating proton transport through a simplified model for trans-membrane proteins.

机构信息

School of Chemistry and EaSTCHEM Research School, The University of Edinburgh, King's Buildings, West Mains Road, Edinburgh, EH9 3JJ, UK.

出版信息

J Phys Chem B. 2010 May 27;114(20):7047-55. doi: 10.1021/jp910262d.

Abstract

Ab initio MD simulations on a polyglycine helix and water-wire expressed under periodic boundary conditions have created a channel that supports proton transfer up to distances of 10.5 A. The effect of varying the density of water molecules in the channel has been investigated. A range of cationic states are identified with widely varying lifetimes. The mechanism of proton transport in this model shares some features with the simulations reported for bulk water, with, e.g., the hydrogen bond distance shortening in the time period leading up to successful proton transfer. However, there are also some important differences such as the observation of a heightened number of proton rattling events. We also observe that the helix plays an important role in directing the behavior of the water wire: the most active proton transport regions of the water-wire are found in areas where the helix is most tightly coiled. Finally, we report on the effects of different DFT functionals to model a water-wire and on the importance of including dispersion corrections to stabilize the alpha-helical structure.

摘要

在周期性边界条件下,对多聚甘氨酸螺旋和水线进行从头分子动力学模拟,创建了一个支持质子转移的通道,距离可达 10.5A。研究了通道中水分子密度的变化对其的影响。确定了一系列具有广泛不同寿命的阳离子状态。该模型中的质子传输机制与在体相水中报告的模拟有一些共同特征,例如,在成功进行质子转移之前的时间段内氢键距离缩短。然而,也存在一些重要的差异,例如观察到质子抖动事件的数量增加。我们还观察到,螺旋在指导水线行为方面起着重要作用:水线中最活跃的质子传输区域位于螺旋最紧密卷曲的区域。最后,我们报告了不同密度泛函理论(DFT)函数在模拟水线方面的作用,以及包括色散校正以稳定α-螺旋结构的重要性。

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