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Analytical theory of hysteresis in ion channels: Two-state model

机译:离子通道的磁滞分析理论:二态模型

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Channel-forming proteins in a lipid bilayer of a biological membrane usually respond to variation of external voltage by changing their conformations. Periodic voltages with frequency comparable with the inverse relaxation time of the protein produce hysteresis in the occupancies of the protein conformations. If the channel conductance changes when the protein jumps between these conformations, hysteresis in occupancies is observed as hysteresis in ion current through the channel. We develop an analytical theory of this phenomenon assuming that the channel conformational dynamics can be described in terms of a two-state model. The theory describes transient behavior of the channel after the periodic voltage is switched on as well as the shape and area of the hysteretic loop as functions of the frequency and amplitude of the applied voltage. The area vanishes as the voltage period T tends to zero and infinity. Asymptotic behaviors of the loop area A in the high- and low-frequency regimes, respectively, are A similar to T and A similar to T-1. (c) 2006 American Institute of Physics.
机译:生物膜脂质双层中的通道形成蛋白通常通过改变其构象来响应外部电压的变化。具有与蛋白质的反向弛豫时间相当的频率的周期性电压在蛋白质构象的占据中产生迟滞。如果当蛋白质在这些构象之间跳跃时通道电导发生变化,则在占用中的滞后会被观察为通过通道的离子电流中的滞后。我们假设该通道构象动力学可以用两态模型来描述,因此我们开发了这种现象的分析理论。该理论描述了周期性电压接通后通道的瞬态行为,以及磁滞回线的形状和面积与所施加电压的频率和幅度的函数关系。随着电压周期T趋于零和无穷大,该面积消失。在高频和低频区域,环路区域A的渐近行为分别为A类似于T,A类似于T-1。 (c)2006年美国物理研究所。

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