Yuen G L, Hockberger P E, Houk J C
Department of Physiology, Northwestern University Medical Center, Chicago, IL 60611, USA.
Biol Cybern. 1995 Sep;73(4):375-88. doi: 10.1007/BF00199473.
Phase-plane analysis of the ionic currents underlying dendritic plateau potentials was carried out to study the nonlinear dynamics and steady-state transfer properties of the dendritic tree in cerebellar Purkinje cells. The results of an analysis of the P-type calcium and delayed rectifier potassium channel system are presented in this study. These channels constitute a simple system that can support bistability and plateau potentials. By requiring both the steady-state current-voltage curve and nullclines to mimic basic plateau potential properties, we obtained well-defined ranges of specific conductance that can support bistability. Hysteresis was found to be surprisingly prevalent in this simple ion-channel system. Using the steady-state current voltage relationship, we derive concise, algebraic expressions for the voltage and current thresholds of state transitions as functions of specific conductance. The significance of bistability in this ion-channel system is discussed with respect to the generation of plateau potentials in Purkinje cells dendrites and the role of the cerebellum in motor control.
为了研究小脑浦肯野细胞树突的非线性动力学和稳态传递特性,对树突状平台电位背后的离子电流进行了相平面分析。本研究展示了对P型钙通道和延迟整流钾通道系统的分析结果。这些通道构成了一个能够支持双稳态和平台电位的简单系统。通过要求稳态电流-电压曲线和零倾线都能模拟基本的平台电位特性,我们获得了能够支持双稳态的特定电导率的明确范围。令人惊讶的是,在这个简单的离子通道系统中发现滞后现象非常普遍。利用稳态电流电压关系,我们推导出了作为特定电导率函数的状态转换电压和电流阈值的简洁代数表达式。本文讨论了该离子通道系统中双稳态对于浦肯野细胞树突中平台电位产生的意义以及小脑在运动控制中的作用。