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A permeation theory for single-file ion channels: One- and two-step models

机译:单文件离子通道的渗透理论:一步和两步模型

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How many steps are required to model permeation through ion channels This question is investigated by comparing one- and two-step models of permeation with experiment and MD simulation for the first time. In recent MD simulations, the observed permeation mechanism was identified as resembling a Hodgkin and Keynes knock-on mechanism with one voltage-dependent rate-determining step Jensen, PNAS 107, 5833 (2010). These previously published simulation data are fitted to a one-step knock-on model that successfully explains the highly non-Ohmic current-voltage curve observed in the simulation. However, these predictions (and the simulations upon which they are based) are not representative of real channel behavior, which is typically Ohmic at low voltages. A two-step associationdissociation (AD) model is then compared with experiment for the first time. This two-parameter model is shown to be remarkably consistent with previously published permeation experiments through the MaxiK potassium channel over a wide range of concentrations and positive voltages. The AD model also provides a first-order explanation of permeation through the Shaker potassium channel, but it does not explain the asymmetry observed experimentally. To address this, a new asymmetric variant of the AD model is developed using the present theoretical framework. It includes a third parameter that represents the value of the permeation coordinate (fractional electric potential energy) corresponding to the triply occupied state n of the channel. This asymmetric AD model is fitted to published permeation data through the Shaker potassium channel at physiological concentrations, and it successfully predicts qualitative changes in the negative current-voltage data (including a transition to super-Ohmic behavior) based solely on a fit to positive-voltage data (that appear linear). The AD model appears to be qualitatively consistent with a large group of published MD simulations, but no quantitative comparison has yet been made. The AD model makes a network of predictions for how the elementary steps and the channel occupancy vary with both concentration and voltage. In addition, the proposed theoretical framework suggests a new way of plotting the energetics of the simulated system using a one-dimensional permeation coordinate that uses electric potential energy as a metric for the net fractional progress through the permeation mechanism. This approach has the potential to provide a quantitative connection between atomistic simulations and permeation experiments for the first time.
机译:首次通过离子通道的渗透模型需要比较多少步,才能通过对渗透模型的一步和两步模型与实验和MD模拟进行比较来研究这个问题。在最近的MD模拟中,观察到的渗透机制被确定为类似于霍奇金和凯恩斯的敲除机制,具有一个电压依赖性的速率决定步骤Jensen,PNAS 107,5833(2010)。这些先前发布的仿真数据被拟合到一步式连锁模型中,该模型成功地解释了仿真中观察到的高度非欧姆电流-电压曲线。但是,这些预测(以及它们所基于的模拟)不能代表实际的通道行为,通常在低电压下为欧姆。然后首次将两步关联解离(AD)模型与实验进行了比较。该两参数模型显示出与先前发表的通过MaxiK钾离子通道在各种浓度和正电压范围内的渗透实验非常一致的模型。 AD模型还提供了通过Shaker钾离子通道渗透的一级解释,但没有解释实验观察到的不对称性。为了解决这个问题,使用当前的理论框架开发了AD模型的新的不对称变体。它包括一个第三参数,代表与通道的三重占据状态n对应的渗透坐标(分数势能)的值。这个非对称的AD模型适合于通过摇床钾通道以生理浓度发布的渗透数据,并且仅基于对正负离子的拟合,就可以成功预测负电流-电压数据的质变(包括向超欧姆行为的转变)。电压数据(呈线性)。 AD模型似乎与大量已发布的MD模拟在质量上是一致的,但是尚未进行定量比较。 AD模型对网络的基本步阶和信道占用率随浓度和电压如何变化进行了预测。此外,提出的理论框架提出了一种使用一维渗透坐标绘制模拟系统能量的新方法,该坐标使用势能作为通过渗透机理进行的净分数进展的度量。这种方法有可能首次在原子模拟和渗透实验之间建立定量联系。

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