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Exploring the Membrane Potential of Simple Dual-Membrane Systems as Models for Gap-Junction Channels

机译:探索简单双膜系统的膜电位作为间隙连接通道的模型

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The conductance of ion channels can be modulated by a transmembrane potential difference, due to alterations on ion-mobility and also by changes in the pore structure. Despite the vast knowledge regarding the influence of voltage on transport properties of ion channels, little attention has been paid to describe, with atomic detail, the modulation of ionic transport in gap-junction channels (GJCs). Hence, molecular dynamics simulations were performed to explore the conductance of simple dual-membrane systems that account for the very basic features of GJCs. In doing so, we studied the influence of different charge distributions in the channel surface on these idealized systems under external electric fields, paying attention to the behavior of the electrostatic potential, ion density, ion currents, and equilibrium properties. Our results demonstrate that the incorporation of a charge distribution akin GJCs decreased anionic currents, favoring the transport of cationic species. Moreover, a thermodynamic characterization of ionic transport in these systems demonstrate the existence of a kinetic barrier that hinders anionic currents, reinforcing the role played by the internal arrangement of charges in GJCs. Overall, our results provide insights at the atomic scale on the effects of charge distributions over ionic transport, constituting a step forward into a better understanding of GJCs.
机译:由于离子迁移率的改变以及孔结构的变化,由于离子迁移率的改变,可以通过跨膜电位差来调节离子通道的电导。尽管有关于电压对离子通道的运输性能的影响的知识,但是已经注意到了以原子细节描述了Gap-结通道(GJC)的离子传输的调制。因此,进行分子动力学模拟以探讨算用于GJCS非常基本特征的简单双膜系统的电导。在这样做时,我们研究了在外部电场下这些理想化系统的不同电荷分布在沟道表面上的影响,请注意静电电位,离子密度,离子电流和平衡性能的行为。我们的结果表明,掺入电荷分布类似Akin GJC的阴离子电流降低,有利于阳离子种类的运输。此外,这些系统中离子转运的热力学表征证明了阻碍阴离子电流的动力学屏障的存在,加强了通过GJC中的内部布置的内部排列所发挥的作用。总体而言,我们的结果为电荷分布对离子运输的影响提供了原子规模的见解,构成了对GJC的更好理解的一步。

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  • 来源
    《Biophysical Journal 》 |2016年第12期| 共11页
  • 作者单位

    Fdn Ciencia &

    Vida Computat Biol Lab DLab Santiago Chile;

    Fdn Ciencia &

    Vida Computat Biol Lab DLab Santiago Chile;

    Ohio State Univ Dept Chem &

    Biochem Columbus OH 43210 USA;

    IBM Corp Thomas J Watson Res Ctr Computat Biol Ctr Yorktown Hts NY USA;

    IBM Corp Thomas J Watson Res Ctr Computat Biol Ctr Yorktown Hts NY USA;

    Fdn Ciencia &

    Vida Computat Biol Lab DLab Santiago Chile;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物物理学 ;
  • 关键词

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