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电解质屏蔽如何影响跨膜离子通道中的电势。

How electrolyte shielding influences the electrical potential in transmembrane ion channels.

作者信息

Jordan P C, Bacquet R J, McCammon J A, Tran P

机构信息

Department of Chemistry, Brandeis University, Waltham, Massachusetts 02254.

出版信息

Biophys J. 1989 Jun;55(6):1041-52. doi: 10.1016/S0006-3495(89)82903-0.

Abstract

The electrical potential due to fixed charge distributions is strongly altered in the vicinity of a membrane and notably dependent on aqueous electrolyte concentration. We present an efficient way to solve the nonlinear Poisson-Boltzmann equation applicable to general cylindrically symmetric dielectric geometries. It generalizes Gouy-Chapman theory to systems containing transmembrane channels. The method is applied to three channel systems: gramicidin, gap junction, and porin. We find that for a long, narrow channel such as gramicidin concentration variation has little influence on the electrical image barrier to ion permeation. However, electrolyte shielding reduces the image induced contribution to the energy required for multiple occupancy. In addition, the presence of electrolyte significantly affects the voltage profile due to an applied potential, substantially compressing the electric field to the immediate vicinity of the pore itself. In the large diameter channels, where bulk electrolyte may be assumed to enter the pore, the electrolyte greatly reduces the image barrier to ion permeation. At physiological ionic strengths this barrier is negligible and the channel may be readily multiply occupied. At all ionic strengths considered (l greater than 0.005 M) the image barrier saturates rapidly and is essentially constant more than one channel radius from the entrance to the pore. At lower ionic strengths (l less than 0.016 M) there are noticeable (greater than 20 mV) energy penalties associated with multiple occupancy.

摘要

由于固定电荷分布产生的电势在膜附近会发生强烈变化,并且显著依赖于水性电解质浓度。我们提出了一种有效的方法来求解适用于一般圆柱对称介电几何结构的非线性泊松 - 玻尔兹曼方程。它将古依 - 查普曼理论推广到包含跨膜通道的系统。该方法应用于三种通道系统:短杆菌肽、间隙连接和孔蛋白。我们发现,对于像短杆菌肽这样的长而窄的通道,浓度变化对离子渗透的电像势垒影响很小。然而,电解质屏蔽会降低多占据所需能量的像诱导贡献。此外,电解质的存在由于外加电势会显著影响电压分布,将电场大幅压缩到孔本身的紧邻区域。在大直径通道中,假定本体电解质可进入孔内,电解质会大大降低离子渗透的像势垒。在生理离子强度下,该势垒可忽略不计,通道可容易地被多占据。在所有考虑的离子强度((l\gt0.005M))下,像势垒迅速饱和,并且在从孔入口起超过一个通道半径的距离处基本保持恒定。在较低离子强度((l\lt0.016M))下,多占据会有明显的(大于(20mV))能量惩罚。

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