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Proton-Induced Conformational and Hydration Dynamics in the Influenza A M2 Channel

机译:质子诱导的甲型流感M2通道中的构象和水合动力学

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摘要

The influenza A M2 protein is an acid activated proton channel responsible for acidification of the inside of the virus, a critical step in the viral life cycle. This channel has four central histidine residues that form an acid-activated gate, binding protons from the outside until an activated state allows proton transport to the inside. While previous work has focused on proton transport through the channel, the structural and dynamic changes that accompany proton flux and enable activation have yet to be resolved. In this study, extensive Multiscale Reactive Molecular Dynamics simulations with explicit Grotthuss-shuttling hydrated excess protons are used to explore detailed molecular-level interactions that accompany proton transport in the +0, +1, and +2 histidine charge states. The results demonstrate how the hydrated excess proton strongly influences both the protein and water hydrogen-bonding network throughout the channel, providing further insight into the channel's acid-activation mechanism and rectification behavior. We find that the excess proton dynamically, as a function of location, shifts the protein structure away from its equilibrium distributions uniquely for different pH conditions consistent with acid-activation. The proton distribution in the xy-plane is also shown to be asymmetric about the channel's main axis, which has potentially important implications for the mechanism of proton conduction and future drug design efforts.
机译:流感M2蛋白是酸活性质子通道,其负责病毒内部的酸化,病毒生命周期中的临界步骤。该通道具有四种中央组氨酸残基,其形成酸活化栅极,从外部结合质子,直到活化状态允许质子输送到内部。虽然以前的作品专注于通过通道的质子传输,但伴随质子助焊剂的结构和动态变化尚未解决。在这项研究中,使用明确的麦克风过度水合过量质子的广泛的多尺度反应分子动力学模拟用于探讨+0,+1和+ 2个组氨酸电荷状态的质子传输的详细分子水平相互作用。结果表明,水合过量质子如何在整个通道中强烈影响蛋白质和水氢键网络,进一步了解通道的酸活化机制和整流行为。我们发现多余的质子作为位置的函数,使蛋白质结构唯一地将蛋白质结构与酸活化一致的不同pH条件唯一地移除其平衡分布。 XY平面中的质子分布也显示出对通道的主轴不对称,这对质子传导和未来药物设计努力的机制具有潜在的重要意义。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2019年第29期|11667-11676|共10页
  • 作者单位

    Univ Chicago Inst Biophys Dynam Dept Chem Chicago IL 60637 USA|Univ Chicago James Franck Inst Chicago IL 60637 USA;

    Univ Chicago Inst Biophys Dynam Dept Chem Chicago IL 60637 USA|Univ Chicago James Franck Inst Chicago IL 60637 USA;

    Univ Chicago Inst Biophys Dynam Dept Chem Chicago IL 60637 USA|Univ Chicago James Franck Inst Chicago IL 60637 USA;

    Univ Calif San Francisco Dept Pharmaceut Chem San Francisco CA 94158 USA;

    Univ Chicago Inst Biophys Dynam Dept Chem Chicago IL 60637 USA|Univ Chicago James Franck Inst Chicago IL 60637 USA;

  • 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);
  • 原文格式 PDF
  • 正文语种 eng
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