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Control of ion selectivity in potassium channels by electrostatic and dynamic properties of carbonyl ligands

机译:通过羰基配体的静电和动态特性控制钾离子通道中的离子选择性

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Potassium channels are essential for maintaining a normal ionic balance across cell membranes. Central to this function is the ability of such channels to support transmembrane ion conduction at nearly diffusion-limited rates while discriminating for K+ over Na+ by more than a thousand-fold. This selectivity arises because the transfer of the K+ ion into the channel pore is energetically favoured, a feature commonly attributed to a structurally precise fit between the K+ ion and carbonyl groups lining the rigid and narrow pore(1). But proteins are relatively flexible structures(2,3) that undergo rapid thermal atomic fluctuations larger than the small difference in ionic radius between K+ and Na+. Here we present molecular dynamics simulations for the potassium channel KcsA, which show that the carbonyl groups coordinating the ion in the narrow pore are indeed very dynamic ('liquid-like') and that their intrinsic electrostatic properties control ion selectivity. This finding highlights the importance of the classical concept of field strength(4). Selectivity for K+ is seen to emerge as a robust feature of a flexible fluctuating pore lined by carbonyl groups.
机译:钾离子通道对于维持细胞膜上正常的离子平衡至关重要。此功能的核心是这些通道以几乎受扩散限制的速率支持跨膜离子传导的能力,同时区分K +超过Na +超过一千倍。之所以出现这种选择性,是因为K +离子向通道孔中的转移受到了强烈的促进,这一特征通常归因于K +离子与衬在刚性和狭窄孔中的羰基之间的结构精确配合(1)。但是蛋白质是相对灵活的结构(2,3),它们经历快速的热原子波动,其波动大于K +和Na +之间离子半径的微小差异。在这里,我们介绍了钾离子通道KcsA的分子动力学模拟,结果表明配位在窄孔中的离子的羰基基团确实非常动态(“类液体”),并且其固有的静电特性控制离子选择性。这一发现凸显了经典场强概念的重要性(4)。 K +的选择性被认为是由羰基排列的柔性波动孔的强大特征。

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