Bhattacharya Swati, Muzard L, Payet L, Mathé Jerome, Bockelmann Ulrich, Aksimentiev Aleksei, Viasnoff Virgile
Department of Physics and Beckman Institute, University of Illinois, Urbana, Illinois.
J Phys Chem C Nanomater Interfaces. 2011 Feb 21;115(10):4255-4264. doi: 10.1021/jp111441p.
A striking feature of the alpha-hemolysin channel-a prime candidate for biotechnological applications-is the dependence of its ionic conductance on the magnitude and direction of the applied bias. Through a combination of lipid bilayer single-channel recording and molecular dynamics (MD) simulations, we characterized the current-voltage relationship of alpha-hemolysin for all alkali chloride salts at neutral pH. The rectification of the ionic current was found to depend on the type of cations and increase from Li(+) to Cs(+). Analysis of the MD trajectories yielded a simple quantitative model that related the ionic current to the electrostatic potential, the concentration and effective mobility of ions in the channel. MD simulations reveal that the major contribution to the current asymmetry and rectification properties originates from the cationic contribution to the current that is significantly reduced in a cationic dependent way when the membrane polarity is reversed. The variation of chloride current was found to be less important. We report that the differential affinity of cations for the charged residues positioned at the channel's end modulates the number of ions inside the channel stem thus affecting the current properties. Through direct comparison of simulation and experiment, this study evaluates the accuracy of the MD method for prediction of the asymmetric, voltage dependent conductances of a membrane channel.
α-溶血素通道作为生物技术应用的主要候选对象,其一个显著特征是其离子电导率取决于所施加偏压的大小和方向。通过结合脂质双层单通道记录和分子动力学(MD)模拟,我们表征了中性pH下所有碱金属氯化物盐的α-溶血素的电流-电压关系。发现离子电流的整流取决于阳离子的类型,并从Li(+)到Cs(+)逐渐增加。对MD轨迹的分析得出了一个简单的定量模型,该模型将离子电流与静电势、通道中离子的浓度和有效迁移率联系起来。MD模拟表明,电流不对称性和整流特性的主要贡献源于阳离子对电流的贡献,当膜极性反转时,这种贡献会以阳离子依赖的方式显著降低。发现氯离子电流的变化不太重要。我们报告说,阳离子对位于通道末端的带电残基的不同亲和力调节了通道茎内离子的数量,从而影响了电流特性。通过模拟与实验的直接比较,本研究评估了MD方法预测膜通道不对称、电压依赖性电导的准确性。