Self-Optimized Biological Channels in Facilitating the Transmembrane Movement of Charged Molecules

V. T. N. Huyen, Le Bin Ho, V. Lap, V. L. Nguyen
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Abstract

We consider an anisotropically two-dimensional diffusion of a charged molecule (particle) through a large biological channel under an external voltage. The channel is modeled as a cylinder of three structure parameters: radius, length, and surface density of negative charges located at the channel interior-lining. These charges induce inside the channel a potential that plays a key role in controlling the particle current through the channel. It was shown that to facilitate the transmembrane particle movement the channel should be reasonably self-optimized so that its potential coincides with the resonant one, resulting in a large particle current across the channel. Observed facilitation appears to be an intrinsic property of biological channels, regardless of the external voltage or the particle concentration gradient. This facilitation is very selective in the sense that a channel of definite structure parameters can facilitate the transmembrane movement of only particles of proper valence at corresponding temperatures. Calculations also show that the modeled channel is nonohmic with the ion conductance which exhibits a resonance at the same channel potential as that identified in the current.
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促进带电分子跨膜运动的自优化生物通道
我们考虑带电分子(粒子)在外部电压下通过一个大生物通道的各向异性二维扩散。该通道被建模为具有三个结构参数的圆柱体:半径、长度和位于通道内壁的负电荷的表面密度。这些电荷在通道内产生电势,电势在控制通过通道的粒子电流方面起着关键作用。结果表明,为了促进粒子跨膜运动,通道应合理自优化,使通道电位与共振电位重合,从而使通道上的粒子电流较大。观察到的易化似乎是生物通道的固有特性,无论外部电压或颗粒浓度梯度如何。从某种意义上说,这种促进是非常选择性的,即具有确定结构参数的通道只能在相应温度下促进具有适当价态的粒子的跨膜运动。计算还表明,模拟的通道是非欧姆的,离子电导在与电流中确定的通道电势相同的情况下表现出共振。
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