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首页> 外文期刊>Journal of Molecular Biology >Ion selectivity of the KcsA channel: a perspective from multi-ion free energy landscapes.
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Ion selectivity of the KcsA channel: a perspective from multi-ion free energy landscapes.

机译:KcsA通道的离子选择性:来自多离子自由能态的视角。

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摘要

Potassium (K(+)) channels are specialized membrane proteins that are able to facilitate and regulate the conduction of K(+) through cell membranes. Comprising five specific cation binding sites (S(0)-S(4)) formed by the backbone carbonyl groups of conserved residues common to all K(+) channels, the narrow selectivity filter allows fast conduction of K(+) while being highly selective for K(+) over Na(+). To extend our knowledge of the microscopic mechanism underlying selectivity in K(+) channels, we characterize the free energy landscapes governing the entry and translocation of a Na(+) or a K(+) from the extracellular side into the selectivity filter of KcsA. The entry process of an extracellular ion is examined in the presence of two additional K(+) in the pore, and the three-ion potential of mean force is computed using extensive all-atom umbrella sampling molecular dynamics simulations. A comparison of the potentials of mean force yields a number of important results. First, the free energy minima corresponding to configurations with extracellular K(+) or Na(+) in binding site S(0) or S(1) are similar in depth, suggesting that the thermodynamic selectivity governed by the free energy minima for those two binding sites is insignificant. Second, the free energy barriers between stable multi-ion configurations are generally higher for Na(+) than for K(+), implying that the kinetics of ion conduction is slower when a Na(+) enters the pore. Third, the region corresponding to binding site S(2) near the center of the narrow pore emerges as the most selective for K(+) over Na(+). In particular, while there is a stable minimum for K(+) in site S(2), Na(+) faces a steep free energy increase with no local free energy well in this region. Lastly, analysis shows that selectivity is not correlated with the overall coordination number of the ion entering the pore, but is predominantly affected by changes in the type of coordinating ligands (carbonyls versus water molecules). These results further highlight the importance of the central region near binding site S(2) in the selectivity filter of K(+) channels.
机译:钾(K(+))通道是专门的膜蛋白,能够促进和调节K(+)通过细胞膜的传导。包含由所有K(+)通道共有的保守残基的主链羰基形成的五个特定阳离子结合位点(S(0)-S(4)),窄选择性滤光片可实现K(+)的快速传导,同时具有很高的选择性在Na(+)上对K(+)具有选择性。为了扩展我们对K(+)通道选择性的微观机制的认识,我们描述了控制Na(+)或K(+)从细胞外进入进入KcsA的选择性过滤器的自由能态的特征。 。在孔中存在两个其他K(+)的情况下检查了细胞外离子的进入过程,并使用广泛的全原子伞状采样分子动力学模拟计算了平均力的三离子电势。比较平均力的潜力会产生许多重要结果。首先,对应于结合位点S(0)或S(1)中具有胞外K(+)或Na(+)构型的自由能最小值在深度上相似,这表明热力学选择性受那些自由能最小值控制两个结合位点微不足道。其次,对于Na(+),稳定的多离子构型之间的自由能垒通常比K(+)高,这意味着当Na(+)进入孔时,离子传导的动力学较慢。第三,对应于狭窄孔中心附近的结合位点S(2)的区域表现出对Na(+)上的K(+)最具选择性。特别是,虽然在站点S(2)中K(+)的最小值稳定,但Na(+)却面临着陡峭的自由能增加,而该区域没有局部自由能。最后,分析表明,选择性与进入孔中的离子的总配位数不相关,但主要受配位体类型(羰基与水分子)的变化影响。这些结果进一步突出了K(+)通道的选择性过滤器中靠近结合位点S(2)的中央区域的重要性。

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