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An aqueous H + permeation pathway in the voltage-gated proton channel Hv1

机译:电压门控质子通道Hv1中的水H +渗透途径

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摘要

Hv1 voltage-gated proton channels mediate rapid and selective transmembrane H~+ flux and are gated by both voltage and pH gradients. Selective H~+ transfer in membrane proteins is commonly achieved by Grotthuss proton 'hopping' in chains of ionizable amino acid side chains and intraprotein water molecules. To identify whether ionizable residues are required for proton permeation in Hv1, we neutralized candidate residues and measured expressed voltage-gated H~+ currents. Unexpectedly, charge neutralization was insufficient to abrogate either the Hv1 conductance or coupling of pH gradient and voltage-dependent activation. Molecular dynamics simulations revealed water molecules in the central crevice of Hv1 model structures but not in homologous voltage-sensor domain (VSD) structures. Our results indicate that Hv1 most likely forms an internal water wire for selective proton transfer and that interactions between water molecules and S4 arginines may underlie coupling between voltage-and pH-gradient sensing.
机译:Hv1电压门控质子通道介导快速和选择性的跨膜H〜+通量,并受电压和pH梯度控制。膜蛋白中的选择性H〜+转移通常通过Grotthuss质子“跳跃”在可电离的氨基酸侧链和蛋白内水分子的链中来实现。为了确定质子在Hv1中的渗透是否需要可电离的残基,我们中和了候选残基并测量了表示电压门控的H〜+电流。出乎意料的是,电荷中和不足以消除Hv1电导或pH梯度和电压依赖性活化的耦合。分子动力学模拟显示水分子位于Hv1模型结构的中央缝隙中,但不在同源电压传感器域(VSD)结构中。我们的结果表明,Hv1最有可能形成用于选择性质子转移的内部水线,并且水分子与S4精氨酸之间的相互作用可能是电压和pH梯度感测之间耦合的基础。

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