Rawlings P K, Neumann E
Proc Natl Acad Sci U S A. 1976 Dec;73(12):4492-6. doi: 10.1073/pnas.73.12.4492.
A new method is proposed for analyzing the rapid transient current component (Na ions) in voltage clamp experiments on excitable membranes. The method is based on only two very general assumptions: the Na ion conductivity of an excitable membrane is determined by some general membrane parameter, the kinetic behavior of which is consistently described by the sum of only two simple exponential terms. A least square computer analysis for the data by L. Goldman and C.L. Schauf on Myxicola axons is described [(1973) J. Gen. Physiol. 61, 361-384]. The method gives (as a result) the relationship between conductivity and membrane parameter. A physically plausible, chemical model (cycle of three states) is proposed for a dissipative control of the Na ion conductivity. The rate constants for the specific model are calculated from kinetic parameters derived only from the general analysis. These rate constants reproduce the original voltage clamp data in every feature which includes peak current ratios (h infinity)-shift with test potential. By allowing for differences in the experimental conditions, we derive essentially the same rate constants for the voltage clamp data of A.L. Hodgkin and A.F. Huxley on squid giant axons.
本文提出了一种新方法,用于分析可兴奋膜电压钳实验中的快速瞬态电流成分(钠离子)。该方法仅基于两个非常普遍的假设:可兴奋膜的钠离子电导率由某个一般的膜参数决定,其动力学行为仅由两个简单指数项的和一致地描述。描述了L. Goldman和C.L. Schauf对黏液虫轴突的数据进行的最小二乘计算机分析[(1973年)《普通生理学杂志》61卷,361 - 384页]。该方法得出(结果是)电导率与膜参数之间的关系。针对钠离子电导率的耗散控制,提出了一个物理上合理的化学模型(三态循环)。特定模型的速率常数是根据仅从一般分析得出的动力学参数计算得出的。这些速率常数在包括峰值电流比(h无穷大)随测试电位的变化等每个特征上都重现了原始的电压钳数据。通过考虑实验条件的差异,我们为A.L. Hodgkin和A.F. Huxley对乌贼巨轴突的电压钳数据推导出了基本相同的速率常数。