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Conductivity noise in transmembrane ion channels due to ion concentration fluctuations via diffusion.

机译:跨膜离子通道中的电导率噪声是由于离子浓度通过扩散而引起的波动。

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摘要

A Green's function approach is developed from first principles to evaluate the power spectral density of conductance fluctuations caused by ion concentration fluctuations via diffusion in an electrolyte system. This is applied to simple geometric models of transmembrane ion channels to obtain an estimate of the magnitude of ion concentration fluctuation noise in the channel current. Pure polypeptide alamethicin forms stable ion channels with multiple conductance states in artificial phospholipid bilayers isolated onto tips of micropipettes with gigaohm seals. In the single-channel current recorded by voltage-clamp techniques, excess noise was found after the background instrumental noise and the intrinsic Johnson and shot noises were removed. The noise que to ion concentration fluctuations via diffusion was isolated by the dependence of the excess current noise on buffer ion concentration. The magnitude of the concentration fluctuation noise derived from experimental data lies within limits estimated using our simple geometric channel models. Variation of the noise magnitude for alamethicin channels in various conductance states agrees with theoretical prediction.
机译:格林函数方法是从第一原理发展而来的,它通过电解质系统中的扩散来评估由离子浓度波动引起的电导波动的功率谱密度。将其应用于跨膜离子通道的简单几何模型,以获得对通道电流中离子浓度波动噪声的大小的估计。纯化的多肽alamethicin在具有千兆欧封口的微量移液器尖端上分离的人工磷脂双层中形成具有多个电导状态的稳定离子通道。在通过电压钳制技术记录的单通道电流中,在去除背景仪器噪声以及固有的约翰逊和散粒噪声之后,发现了多余的噪声。通过过量电流噪声对缓冲离子浓度的依赖性,隔离了通过扩散引起的离子浓度波动引起的噪声。从实验数据得出的浓度波动噪声的大小在使用我们的简单几何通道模型估算的范围内。在不同电导状态下,Alamethicin通道的噪声幅度变化与理论预测一致。

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