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首页> 外文期刊>Journal of the American Chemical Society >Molecular Dynamics and Brownian Dynamics Investigation of Ion Permeation and Anesthetic Halothane Effects on a Proton-Gated Ion Channel
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Molecular Dynamics and Brownian Dynamics Investigation of Ion Permeation and Anesthetic Halothane Effects on a Proton-Gated Ion Channel

机译:质子门控离子通道上离子渗透和麻醉氟烷的分子动力学和布朗动力学研究

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摘要

Bacterial Gloeobacter violaceus pentameric ligand-gated ion channel (GLIC) is activated to cation permeation upon lowering the solution pH. Its function can be modulated by anesthetic halothane. In the present work, we integrate molecular dynamics (MD) and Brownian dynamics (BD) simulations to elucidate the ion conduction, charge selectivity, and halothane modulation mechanisms in GLIC, based on recently resolved X-ray crystal structures of the open-channel GLIC. MD calculations of the potential of mean force (PMF) for a Na~+ revealed two energy barriers in the extracellular domain (R109 and K38) and at the hydrophobic gate of transmembrane domain (I233), respectively. An energy well for Na~+ was near the intracellular entrance: the depth of this energy well was modulated strongly by the protonation state of E222. The energy barrier for Cl~- was found to be 3-4 times higher than that for Na~+. Ion permeation characteristics were determined through BD simulations using a hybrid MD/continuum electrostatics approach to evaluate the energy profiles governing the ion movement. The resultant channel conductance and a near-zero permeability ratio (P_(cl)/P_(Na)) were comparable to experimental data. On the basis of these calculations, we suggest that a ring of five E222 residues may act as an electrostatic gate. In addition, the hydrophobic gate region may play a role in charge selectivity due to a higher dehydration energy barrier for Cl~- ions. The effect of halothane on the Na~+ PMF was also evaluated. Halothane was found to perturb salt bridges in GLIC that may be crucial for channel gating and open-channel stability, but had no significant impact on the single ion PMF profiles.
机译:降低溶液pH值,细菌紫球藻五聚体配体门离子通道(GLIC)被激活以渗透阳离子。麻醉性氟烷可以调节其功能。在当前的工作中,我们基于最近解决的开放通道GLIC的X射线晶体结构,结合了分子动力学(MD)和布朗动力学(BD)模拟以阐明GLIC中的离子传导,电荷选择性和氟烷调节机制。 。对Na〜+的平均力(MDF)势的MD计算表明,在胞外域(R109和K38)和跨膜域的疏水门(I233)分别存在两个能垒。 Na +的能量阱在细胞内入口附近:该能量阱的深度受E222的质子化状态强烈调节。发现Cl〜-的能垒比Na〜+的能垒高3-4倍。离子渗透特性是通过BD模拟确定的,使用混合MD /连续静电方法来评估控制离子运动的能量分布。所得通道电导和接近零的磁导率比(P_(cl)/ P_(Na))与实验数据相当。根据这些计算,我们建议五个E222残基的环可以充当静电门。另外,由于对Cl-离子具有更高的脱水能垒,因此疏水栅区可能在电荷选择性中起作用。还评估了氟烷对Na〜+ PMF的影响。氟烷被发现会扰乱GLIC中的盐桥,这可能对通道门控和明渠稳定性至关重要,但对单离子PMF谱图没有显着影响。

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  • 来源
    《Journal of the American Chemical Society 》 |2010年第46期| p.16442-16449| 共8页
  • 作者单位

    Department of Chemistry University of Pittsburgh,Pittsburgh, Pennsylvania 15260, United States;

    Department of Chemistry University of Pittsburgh,Pittsburgh, Pennsylvania 15260, United States;

    Department of Anesthesiology University of Pittsburgh,Pittsburgh, Pennsylvania 15260, United States,Department of Pharmacology and Chemical Biology, University of Pittsburgh,Pittsburgh, Pennsylvania 15260, United States,Department of Computational Biology, University of Pittsburgh,Pittsburgh, Pennsylvania 15260, United States;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 正文语种 eng
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