Sabah N H, Leibovic K N
Biophys J. 1969 Oct;9(10):1206-22. doi: 10.1016/S0006-3495(69)86446-5.
The classical cable equation, in which membrane conductance is considered constant, is modified by including the linearized effect of membrane potential on sodium and potassium ionic currents, as formulated in the Hodgkin-Huxley equations for the squid giant axon. The resulting partial differential equation is solved by numerical inversion of the Laplace transform of the voltage response to current and voltage inputs. The voltage response is computed for voltage step, current step, and current pulse inputs, and the effect of temperature on the response to a current step input is also calculated.The validity of the linearized approximation is examined by comparing the linearized response to a current step input with the solution of the nonlinear partial differential cable equation for various subthreshold current step inputs.All the computed responses for the squid giant axon show oscillatory behavior and depart significantly from what is predicted on the basis of the classical cable equation. The linearization procedure, coupled with numerical inversion of the Laplace transform, proves to be a convenient approach which predicts at least qualitatively the subthreshold behavior of the nonlinear system.
经典的电缆方程(其中膜电导被视为常数)通过纳入膜电位对钠和钾离子电流的线性化效应进行了修正,这一效应是按照乌贼巨大轴突的霍奇金 - 赫胥黎方程来表述的。通过对电流和电压输入的电压响应进行拉普拉斯变换的数值反演,求解所得的偏微分方程。针对电压阶跃、电流阶跃和电流脉冲输入计算电压响应,并且还计算了温度对电流阶跃输入响应的影响。通过将电流阶跃输入的线性化响应与各种阈下电流阶跃输入的非线性偏微分电缆方程的解进行比较,检验线性化近似的有效性。乌贼巨大轴突的所有计算响应均呈现振荡行为,并且与基于经典电缆方程所预测的结果有显著差异。线性化过程与拉普拉斯变换的数值反演相结合,被证明是一种方便的方法,它至少能定性地预测非线性系统的阈下行为。