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基于非平衡响应光谱法对电压门控钠离子通道失活路径的动力学表征

Dynamical characterization of inactivation path in voltage-gated Na(+) ion channel by non-equilibrium response spectroscopy.

作者信息

Pal Krishnendu, Gangopadhyay Gautam

机构信息

a Chemical Biological and Macromolecular Sciences, S.N. Bose National Center for Basic Sciences , Kolkata , India.

出版信息

Channels (Austin). 2016 Nov;10(6):478-97. doi: 10.1080/19336950.2016.1205175. Epub 2016 Jul 1.

Abstract

Inactivation path of voltage gated sodium channel has been studied here under various voltage protocols as it is the main governing factor for the periodic occurrence and shape of the action potential. These voltage protocols actually serve as non-equilibrium response spectroscopic tools to study the ion channel in non-equilibrium environment. In contrast to a lot of effort in finding the crystal structure based molecular mechanism of closed-state(CSI) and open-state inactivation(OSI); here our approach is to understand the dynamical characterization of inactivation. The kinetic flux as well as energetic contribution of the closed and open- state inactivation path is compared here for voltage protocols, namely constant, pulsed and oscillating. The non-equilibrium thermodynamic quantities used in response to these voltage protocols serve as improved characterization tools for theoretical understanding which not only agrees with the previously known kinetic measurements but also predict the energetically optimum processes to sustain the auto-regulatory mechanism of action potential and the consequent inactivation steps needed. The time dependent voltage pattern governs the population of the conformational states which when couple with characteristic rate parameters, the CSI and OSI selectivity arise dynamically to control the inactivation path. Using constant, pulsed and continuous oscillating voltage protocols we have shown that during depolarization the OSI path is more favored path of inactivation however, in the hyper-polarized situation the CSI is favored. It is also shown that the re-factorisation of inactivated sodium channel to resting state occurs via CSI path. Here we have shown how the subtle energetic and entropic cost due to the change in the depolarization magnitude determines the optimum path of inactivation. It is shown that an efficient CSI and OSI dynamical profile in principle can characterize the open-state drug blocking phenomena.

摘要

在此,我们研究了电压门控钠通道在各种电压协议下的失活途径,因为它是动作电位周期性发生和形状的主要控制因素。这些电压协议实际上作为非平衡响应光谱工具,用于研究非平衡环境中的离子通道。与在寻找基于晶体结构的关闭状态失活(CSI)和开放状态失活(OSI)分子机制方面所做的大量努力不同;我们这里的方法是了解失活的动力学特征。在此针对恒定、脉冲和振荡等电压协议,比较了关闭和开放状态失活途径的动力学通量以及能量贡献。响应这些电压协议所使用的非平衡热力学量作为改进的表征工具,用于理论理解,其不仅与先前已知的动力学测量结果一致,还预测了维持动作电位自动调节机制所需的能量最优过程以及随之而来的失活步骤。随时间变化的电压模式控制构象状态的数量,当与特征速率参数耦合时,CSI和OSI选择性动态出现以控制失活途径。使用恒定、脉冲和连续振荡电压协议,我们表明在去极化期间,OSI途径是更有利的失活途径,然而,在超极化情况下,CSI更受青睐。还表明,失活的钠通道重归静息状态是通过CSI途径发生的。在此我们展示了由于去极化幅度变化而产生的微妙能量和熵成本如何决定最优失活途径。结果表明,原则上有效的CSI和OSI动力学概况可以表征开放状态药物阻断现象。

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