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首页> 外文期刊>The Journal of general physiology >A computational study of barium blockades in the KcsA potassium channel based on multi-ion potential of mean force calculations and free energy perturbation
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A computational study of barium blockades in the KcsA potassium channel based on multi-ion potential of mean force calculations and free energy perturbation

机译:基于平均力计算和自由能微扰的多离子势计算KcsA钾离子通道中钡离子阻滞的计算研究

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Electrophysiological studies have established that the permeation of Ba2+ ions through the KcsA K+-channel is impeded by the presence of K+ ions in the external solution, while no effect is observed for external Na+ ions. This Ba2+ “lock-in” effect suggests that at least one of the external binding sites of the KcsA channel is thermodynamically selective for K+. We used molecular dynamics simulations to interpret these lock-in experiments in the context of the crystallographic structure of KcsA. Assuming that the Ba2+ is bound in site S2 in the dominant blocked state, we examine the conditions that could impede its translocation and cause the observed “lock-in” effect. Although the binding of a K+ ion to site S1 when site S2 is occupied by Ba2+ is prohibitively high in energy (10 kcal/mol), binding to site S appears to be more plausible (ΔG 4 kcal/mol). The 2D potential of mean force (PMF) for the simultaneous translocation of Ba2+ from site S2 to site S1 and of a K+ ion on the extracellular side shows a barrier that is consistent with the concept of external lock-in. The barrier opposing the movement of Ba2+ is very high when a cation is in site S, and considerably smaller when the site is unoccupied. Furthermore, free energy perturbation calculations show that site S is selective for K+ by 1.8 kcal/mol when S2 is occupied by Ba2+. However, the same site S is nonselective when site S2 is occupied by K+, which shows that the presence of Ba2+ affects the selectivity of the pore. A theoretical framework within classical rate theory is presented to incorporate the concentration dependence of the external ions on the lock-in effect.
机译:电生理学研究已经确定,外部溶液中K +离子的存在会阻碍Ba2 +离子通过KcsA K +通道的渗透,而外部Na +离子则没有作用。 Ba 2+的“锁定”效应表明,KcsA通道的至少一个外部结合位点对K +具有热力学选择性。我们使用分子动力学模拟在KcsA晶体结构的背景下解释了这些锁定实验。假设Ba2 +以显性阻滞状态结合在位点S2上,我们研究了可能阻碍其易位并引起观察到的“锁定”效应的条件。尽管当位点S2被Ba2 +占据时,K +离子与位点S1的结合能量高得惊人(> 10 kcal / mol),但与位点S的结合似乎更合理(ΔG> 4 kcal / mol)。 Ba2 +从位点S2同时转移到位点S1以及细胞外侧K +离子同时移位的平均力(PMF)的2D电位显示了与外部锁定概念一致的障碍。当阳离子在位点S时,与Ba2 +运动相反的势垒非常高,而当该位点未被占用时,势垒会大大减小。此外,自由能扰动计算表明,当S2被Ba2 +占据时,位点S对K +的选择性为1.8 kcal / mol。但是,当位点S2被K +占据时,相同的位点S是非选择性的,这表明Ba2 +的存在会影响孔的选择性。提出了经典速率理论中的理论框架,以结合外部离子对锁定效应的浓度依赖性。

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