Skinner F K, Ward C A, Bardakjian B L
Department of Mechanical Engineering, University of Toronto, Ontario, Canada.
Biophys J. 1993 Aug;65(2):618-29. doi: 10.1016/S0006-3495(93)81095-6.
A novel way to model permeation through ionic channels is formulated. Our method does not require that equilibrium exists in the channel or at the channel interfaces. In addition, the potential profile does not need to be specified and the assumption of constant field across the membrane does not need to be made. Our formulation relies on statistical rate theory for its development and uses a form of the electrochemical potential which assumes that the ions are in solution. We show that the conductance and the degree of nonlinearity are dependent on the relative equilibrium exchange rates in the channel and at the interfaces. Nonlinear current-voltage plots can be obtained in symmetric solutions as well as a nonunity exponent for the Ussing flux ratio. Due to the dependence of the partition coefficient on solubility, it is highly unlikely that the intracellular and extracellular partition coefficients are the same. A manifestation of unequal partition coefficients is a current reversal at a membrane voltage that is different from the Nernst potential of the current-carrying ionic species.
提出了一种模拟离子通道渗透的新方法。我们的方法不要求通道内或通道界面处存在平衡。此外,不需要指定电势分布,也不需要假设膜上存在恒定电场。我们的公式基于统计速率理论进行推导,并使用了一种电化学势形式,该形式假设离子处于溶液中。我们表明,电导率和非线性程度取决于通道内和界面处的相对平衡交换速率。在对称溶液中可以得到非线性电流 - 电压图,并且对于乌斯通量比可以得到非单位指数。由于分配系数取决于溶解度,细胞内和细胞外分配系数相同的可能性极小。分配系数不相等的一个表现是在与载流离子物种的能斯特电位不同的膜电压下出现电流反转。