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PNAS Plus: On the principle of ion selectivity in Na+/H+-coupled membrane proteins: Experimental and theoretical studies of an ATP synthase rotor

机译:PNAS Plus:基于Na + / H +偶联膜蛋白中离子选择性的原理:ATP合酶转子的实验和理论研究

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摘要

Numerous membrane transporters and enzymes couple their mechanisms to the permeation of Na+ or H+, thereby harnessing the energy stored in the form of transmembrane electrochemical potential gradients to sustain their activities. The molecular and environmental factors that control and modulate the ion specificity of most of these systems are, however, poorly understood. Here, we use isothermal titration calorimetry to determine the Na+/H+ selectivity of the ion-driven membrane rotor of an F-type ATP synthase. Consistent with earlier theoretical predictions, we find that this rotor is significantly H+ selective, although not sufficiently to be functionally coupled to H+, owing to the large excess of Na+ in physiological settings. The functional Na+ specificity of this ATP synthase thus results from two opposing factors, namely its inherent chemical selectivity and the relative availability of the coupling ion. Further theoretical studies of this membrane rotor, and of two others with a much stronger and a slightly weaker H+ selectivity, indicate that, although the inherent selectivity of their ion-binding sites is largely set by the balance of polar and hydrophobic groups flanking a conserved carboxylic side chain, subtle variations in their structure and conformational dynamics, for a similar chemical makeup, can also have a significant contribution. We propose that the principle of ion selectivity outlined here may provide a rationale for the differentiation of Na+- and H+-coupled systems in other families of membrane transporters and enzymes.
机译:众多的膜转运蛋白和酶将其机理与Na + 或H + 的渗透耦合,从而利用以跨膜电化学势梯度形式存储的能量来维持其活性。然而,对控制和调节大多数这些系统的离子特异性的分子和环境因素了解甚少。在这里,我们使用等温滴定热法测定F型ATP合酶的离子驱动膜转子的Na + / H + 选择性。与早期的理论预测一致,我们发现此转子明显具有H + 选择性,尽管由于Na <>的过量过多,不足以与H + 进行功能耦合。在生理设置中为sup> + 。因此,该ATP合酶的功能性Na + 特异性来自两个相反的因素,即其固有的化学选择性和偶联离子的相对可用性。对该膜转子以及另两个H + 选择性强得多和稍弱的转子的进一步理论研究表明,尽管它们的离子结合位点的固有选择性很大程度上是由平衡决定的。侧链保守的羧基侧链的极性和疏水基团,对于相似的化学组成,其结构和构象动力学的细微变化也可能具有重要作用。我们认为,本文概述的离子选择性原理可以为区分其他膜转运蛋白和酶家族中的Na + -和H + 耦合系统提供理论依据。

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