Vora Taira, Corry Ben, Chung Shin-Ho
Research School of Biological Sciences, The Australian National University, Canberra, Australia.
Eur Biophys J. 2008 Nov;38(1):45-52. doi: 10.1007/s00249-008-0353-5. Epub 2008 Jul 2.
Measurements of unidirectional fluxes in ion channels provide one of the experimental methods for studying the steps involved in ion permeation in biological pores. Conventionally, the number of ions in the pore is inferred by fitting the ratio of inward and outward currents to an exponential function with an adjustable parameter known as the flux ratio exponent. Here we investigate the relationship between the number of ions in the pore and the flux ratio exponent in a model sodium channel under a range of conditions. Brownian dynamics simulations enable us to count the precise number of ions in the channel and at the same time measure the currents flowing across the pore in both directions. We show here that the values of the flux ratio exponent n' ranges between 1 and 3 and is highly dependent on the ionic concentrations in which measurements are made. This is a consequence of the fact that both inward and outward currents are susceptible to saturation with increasing concentration. These results indicate that measurements of the flux ratio exponent cannot be directly related to the number of ions in the pore and that interpretation of such experimental measurements requires careful consideration of the conditions in which the study is made.
测量离子通道中的单向通量是研究生物孔道中离子渗透所涉及步骤的实验方法之一。传统上,通过将内向电流与外向电流的比率拟合为具有一个称为通量比率指数的可调参数的指数函数来推断孔道中的离子数量。在此,我们研究了在一系列条件下模型钠通道中孔道内离子数量与通量比率指数之间的关系。布朗动力学模拟使我们能够精确计算通道中的离子数量,同时测量双向流过孔道的电流。我们在此表明,通量比率指数n'的值在1到3之间,并且高度依赖于进行测量时的离子浓度。这是由于内向电流和外向电流都会随着浓度增加而趋于饱和。这些结果表明,通量比率指数的测量不能直接与孔道中的离子数量相关,并且对此类实验测量结果的解释需要仔细考虑研究进行时的条件。