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首页> 外文期刊>Biophysical Journal >Ion permeation through a narrow channel: Using gramicidin to ascertain all-atom molecular dynamics potential of mean force methodology and biomolecular force fields
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Ion permeation through a narrow channel: Using gramicidin to ascertain all-atom molecular dynamics potential of mean force methodology and biomolecular force fields

机译:离子通过狭窄通道的渗透:使用短杆菌肽确定平均力方法和生物分子力场的全原子分子动力学潜力

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摘要

We investigate methods for extracting the potential of mean force (PMF) governing ion permeation from molecular dynamics simulations (MD) using gramicidin A as a prototypical narrow ion channel. It is possible to obtain well-converged meaningful PMFs using all-atom MD, which predict experimental observables within order-of-magnitude agreement with experimental results. This was possible by careful attention to issues of statistical convergence of the PMF, finite size effects, and lipid hydrocarbon chain polarizability. When comparing the modern all-atom force fields of CHARMM27 and AMBER94, we found that a fairly consistent picture emerges, and that both AMBER94 and CHARMM27 predict observables that are in semiquantitative agreement with both the experimental conductance and dissociation coefficient. Even small changes in the force field, however, result in significant changes in permeation energetics. Furthermore, the full two-dimensional free-energy surface describing permeation reveals the location and magnitude of the central barrier and the location of two binding sites for K+ ion permeation near the channel entrance - i.e., an inner site on-axis and an outer site off-axis. We conclude that the MD-PMF approach is a powerful tool for understanding and predicting the function of narrow ion channels in a manner that is consistent with the atomic and thermally fluctuating nature of proteins.
机译:我们研究了使用短杆菌肽A作为典型的窄离子通道从分子动力学模拟(MD)中提取控制离子渗透的平均力(PMF)潜力的方法。可以使用全原子MD获得收敛良好的有意义的PMF,它可以在与实验结果一致的数量级范围内预测实验可观测物。通过仔细关注PMF的统计收敛,有限尺寸效应和脂质烃链极化率等问题,这是可能的。当比较CHARMM27和AMBER94的现代全原子力场时,我们发现出现了相当一致的图景,并且AMBER94和CHARMM27都预测了与实验电导和解离系数处于半定量一致的可观测物。但是,即使力场发生很小的变化,也会导致渗透能的显着变化。此外,描述渗透的完整二维自由能表面揭示了中心势垒的位置和大小,以及通道入口附近K +离子渗透的两个结合位点的位置-即轴向上的内部位点和外部位点离轴。我们得出结论,MD-PMF方法是一种以与蛋白质的原子和热波动性质一致的方式来理解和预测窄离子通道功能的强大工具。

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