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离子状态对 Hv1 通道静息状态电压传感器结构的影响。

Effect of Ionization State on Voltage-Sensor Structure in Resting State of the Hv1 Channel.

机构信息

Center of Excellence in Computational Chemistry, Department of Chemistry, Faculty of Science , Chulalongkorn University , Bangkok 10330 , Thailand.

出版信息

J Phys Chem B. 2019 Apr 4;123(13):2864-2873. doi: 10.1021/acs.jpcb.9b00634. Epub 2019 Mar 21.

Abstract

Voltage-gated proton-selective channels (Hv1) mediate proton extrusion during intracellular acidification. Hv1 is gated by the proton electrochemical gradient. Intracellular ionizable residues in Hv1 have been proposed to serve as proton-binding sites for pH-dependent gating, but detailed descriptions remain unclear. Here, molecular dynamics (MD) simulations were performed to investigate the effect of ionization states of charged residues on the X-ray structure of Hv1. Modification of the protonation state of acidic residues affected the resting conformation of Hv1 by disrupting salt bridges between S4 and the other segments. Upon protonation, conformational changes enabled the displacement of the S4 arginines toward the extracellular side and increased the mobility of hydrophobic residues at the gate. The aqueous crevice was considerably wider with increased hydration in the pore. Solvation free energies of the pore residues were low at the extra- and intracellular entrances, whereas the narrowest region exhibited the energy barrier for water translocation. Our MD data showed that water molecules in the upper and lower pore oriented differently. In neutral pH, the pore water oriented its dipole pointing away from the voltage-sensing domain center, whereas the opposite direction of the water dipole was observed in acidic pH.

摘要

电压门控质子选择性通道 (Hv1) 在细胞内酸化过程中介导质子外排。Hv1 由质子电化学梯度门控。Hv1 中的细胞内可离子化残基被提议作为 pH 依赖性门控的质子结合位点,但详细描述仍不清楚。在这里,进行了分子动力学 (MD) 模拟,以研究带电残基的离子化状态对 Hv1 X 射线结构的影响。酸性残基质子化状态的改变通过破坏 S4 与其他片段之间的盐桥,影响 Hv1 的静息构象。质子化后,构象变化使 S4 精氨酸向细胞外方向位移,并增加了门控处疏水性残基的流动性。随着孔隙中水分的增加,水隙明显变宽。孔隙残基的溶剂化自由能在细胞外和细胞内入口处较低,而最窄区域表现出水易位的能垒。我们的 MD 数据表明,上腔和下腔中的水分子取向不同。在中性 pH 下,腔中的水分子将其偶极指向远离电压感应域中心的方向,而在酸性 pH 下观察到水分子偶极的相反方向。

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