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利用多离子通道对大鼠骨骼肌中经蟾毒素修饰的钠离子通道的离子渗透进行建模。

Modeling ion permeation through batrachotoxin-modified Na+ channels from rat skeletal muscle with a multi-ion pore.

作者信息

Ravindran A, Kwiecinski H, Alvarez O, Eisenman G, Moczydlowski E

机构信息

Department of Pharmacology, Yale University School of Medicine, New Haven, Connecticut 06510.

出版信息

Biophys J. 1992 Feb;61(2):494-508. doi: 10.1016/S0006-3495(92)81854-4.

Abstract

The mechanism of ion permeation through Na+ channels that have been modified by batrachotoxin (BTX) and inserted into planar bilayers has been generally described by models based on single-ion occupancy, with or without an influence of negative surface charge, depending on the tissue source. For native Na+ channels there is evidence suggestive of a multi-ion conduction mechanism. To explore the question of ion occupancy, we have reexamined permeation of Na+, Li+, and K+ through BTX-modified Na+ channels from rat skeletal muscle. Single-channel current-voltage (I-V) behavior was studied in neutral lipid bilayers in the presence of symmetrical Na+ concentrations ranging from 0.5 to 3,000 mM. The dependence of unitary current on the mole fraction of Na+ was also examined in symmetrical mixtures of Na(+)-Li+ and Na(+)-K+ at a constant total ionic strength of 206 and 2,006 mM. The dependence of unitary conductance on symmetrical Na+ concentration does not exhibit Michaelis-Menten behavior characteristic of single-ion occupancy but can be simulated by an Eyring-type model with three barriers and two sites (3B2S) that includes double occupancy and ion-ion repulsion. Best-fit energy barrier profiles for Na+, Li+, and K+ were obtained by nonlinear curve fitting of I-V data using the 3B2S model. The Na(+)-Li+ and Na(+)-K+ mole-fraction experiments do not exhibit an anomalous mole-fraction effect. However, the 3B2S model is able to account for the biphasic dependence of unitary conductance on symmetrical [Na+] that is suggestive of multiple occupancy and the monotonic dependence of unitary current on the mole fraction of Na+ that is compatible with single or multiple occupancy. The best-fit 3B2S barrier profiles also successfully predict bi-ionic reversal potentials for Na(+)-Li+ and Na(+)-K+ in both orientations across the channel. Our experimental and modeling results reconcile the dual personality of ion permeation through Na+ channels, which can display features of single or multiple occupancy under various conditions. To a first approximation, the 3B2S model developed for this channel does not require corrections for vestibule surface charge. However, if negative surface charges of the protein do influence conduction, the conductance behavior in the limit of low [Na+] does not correspond to a Gouy-Chapman model of planar surface charge.

摘要

经蟾毒素(BTX)修饰并插入平面双层膜中的钠通道的离子渗透机制,通常由基于单离子占据的模型来描述,该模型是否考虑负表面电荷的影响取决于组织来源。对于天然钠通道,有证据表明存在多离子传导机制。为了探究离子占据问题,我们重新研究了钠离子、锂离子和钾离子通过大鼠骨骼肌中经BTX修饰的钠通道的渗透情况。在中性脂质双层膜中,研究了单通道电流 - 电压(I - V)行为,对称钠离子浓度范围为0.5至3000 mM。在总离子强度分别为206 mM和2006 mM的Na(+) - Li+和Na(+) - K+对称混合物中,还研究了单位电流对钠离子摩尔分数的依赖性。单位电导对对称钠离子浓度的依赖性并不表现出单离子占据特征的米氏行为,而是可以用具有三个势垒和两个位点(3B2S)的艾林型模型来模拟,该模型包括双占据和离子 - 离子排斥。通过使用3B2S模型对I - V数据进行非线性曲线拟合,获得了钠离子、锂离子和钾离子的最佳拟合能垒分布。Na(+) - Li+和Na(+) - K+摩尔分数实验未表现出反常摩尔分数效应。然而,3B2S模型能够解释单位电导对对称[Na+]的双相依赖性,这暗示了多占据,以及单位电流对钠离子摩尔分数的单调依赖性,这与单占据或多占据兼容。最佳拟合的3B2S势垒分布还成功预测了Na(+) - Li+和Na(+) - K+在通道两侧两个方向上的双离子反转电位。我们的实验和建模结果协调了钠通道离子渗透的双重特性,即在各种条件下,钠通道可以表现出单占据或多占据的特征。初步近似来看,为该通道开发的3B2S模型不需要对前庭表面电荷进行校正。然而,如果蛋白质的负表面电荷确实影响传导,那么在低[Na+]极限下的电导行为并不符合平面表面电荷的古伊 - 查普曼模型。

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