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Tests of continuum theories as models of ion channels. I. Poisson-Boltzmann theory versus Brownian dynamics.

机译:检验作为离子通道模型的连续理论。 I.泊松-玻尔兹曼理论与布朗动力学。

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摘要

Continuum theories of electrolytes are widely used to describe physical processes in various biological systems. Although these are well-established theories in macroscopic situations, it is not clear from the outset that they should work in small systems whose dimensions are comparable to or smaller than the Debye length. Here, we test the validity of the mean-field approximation in Poisson-Boltzmann theory by comparing its predictions with those of Brownian dynamics simulations. For this purpose we use spherical and cylindrical boundaries and a catenary shape similar to that of the acetylcholine receptor channel. The interior region filled with electrolyte is assumed to have a high dielectric constant, and the exterior region representing protein a low one. Comparisons of the force on a test ion obtained with the two methods show that the shielding effect due to counterions is overestimated in Poisson-Boltzmann theory when the ion is within a Debye length of the boundary. As the ion gets closer to the boundary, the discrepancy in force grows rapidly. The implication for membrane channels, whose radii are typically smaller than the Debye length, is that Poisson-Boltzmann theory cannot be used to obtain reliable estimates of the electrostatic potential energy and force on an ion in the channel environment.
机译:电解质的连续理论被广泛用于描述各种生物系统中的物理过程。尽管这些是在宏观情况下公认的理论,但从一开始就不清楚它们是否应在尺寸等于或小于Debye长度的小型系统中工作。在这里,我们将Poisson-Boltzmann理论中的平均场近似与布朗动力学模拟的预测进行比较,以检验其均值近似的有效性。为此,我们使用球形和圆柱形边界以及类似于乙酰胆碱受体通道的悬链线形状。假设充满电解质的内部区域具有高介电常数,而代表蛋白质的外部区域则具有低介电常数。通过两种方法获得的作用在测试离子上的力的比较表明,当离子在边界的德拜长度内时,由抗衡离子引起的屏蔽作用在Poisson-Boltzmann理论中被高估了。随着离子越来越靠近边界,力的差异迅速增大。半径通常小于Debye长度的膜通道的含义是,泊松-玻耳兹曼理论不能用于获得通道环境中静电势能和离子上力的可靠估计。

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