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A novel mechanism for fine-tuning open-state stability in a voltage-gated potassium channel

机译:一种微调电压门控钾通道中开态稳定性的新机制

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摘要

Voltage-gated potassium channels elicit membrane hyperpolarization through voltage-sensor domains that regulate the conductive status of the pore domain. To better understand the inherent basis for the open-closed equilibrium in these channels, we undertook an atomistic scan using synthetic fluorinated derivatives of aromatic residues previously implicated in the gating of Shaker potassium channels. Here we show that stepwise dispersion of the negative electrostatic surface potential of only one site, Phe481, stabilizes the channel open state. Furthermore, these data suggest that this apparent stabilization is the consequence of the amelioration of an inherently repulsive open-state interaction between the partial negative charge on the face of Phe481 and a highly co-evolved acidic side chain, Glu395, and this interaction is potentially modulated through the Tyr485 hydroxyl. We propose that the intrinsic open-state destabilization via aromatic repulsion represents a new mechanism by which ion channels, and likely other proteins, fine-tune conformational equilibria.
机译:电压门控钾通道通过调节孔结构域导电状态的电压传感器结构域引起膜超极化。为了更好地了解这些通道中开闭平衡的内在基础,我们使用先前与Shaker钾通道门控有关的芳香族残基的合成氟化衍生物进行了原子扫描。在这里,我们显示出只有一个位点Phe481的负静电表面电势的逐步分散会稳定通道的打开状态。此外,这些数据表明,这种明显的稳定作用是改善了Phe481表面的部分负电荷与高度共进化的酸性侧链Glu395之间固有的排斥性开态相互作用的结果,并且这种相互作用可能通过Tyr485羟基调节。我们建议通过芳香族排斥的内在开放态去稳定代表了一种新的机制,通过该机制离子通道以及可能的其他蛋白质可以微调构象平衡。

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