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A Novel Rate Theory Approach To Transport In Ion Channels

机译:一种新的离子渠道运输速率理论方法

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We present a novel rate theory based on the notions of splitting probability and mean first passage time to describe conduction of single ions in narrow, effectively 1D membrane channels. In contrast to traditional approaches such as transition state theory or Kramers theory, transitions between different conduction states in our model are governed by rates which depend on the full geometry of the potential of mean force (PMF) resulting from the superposition of an equilibrium free energy profile and a transmembrane potential induced by a nonequilibrium constraint. If a detailed theoretical PMF is available (e.g. from atomistic molecular dynamics simulations), it can be used to compute characteristic conductance curves in the framework of our model, thereby bridging the gap between the atomistic and the mesoscopic level of description. Explicit analytic solutions for the rates, the ion flux and the associated electric current can be obtained by approximating the actual PMF by a piecewise linear potential.
机译:我们提出了一种基于分裂概率的概念的新颖速率理论,并且平均第一次通过时间来描述窄,有效的1D膜通道中的单离子的传导。与转变状态理论或克拉姆斯理论的传统方法相比,我们模型中的不同传导状态之间的转变受率的管辖,这依赖于由均衡自由能叠加引起的平均力(PMF)的完整几何形状的速率轮廓和由非QuibiBribrium约束引起的跨膜电位。如果提供了详细的理论PMF(例如原子分子动力学模拟),则可以使用它来计算我们模型框架中的特征电导曲线,从而弥合原子和介观的描述之间的间隙。通过通过分段线性电位近似实际PMF,可以获得用于速率的显式分析解,可以获得离子通量和相关电流。

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