Rinzel J
Fed Proc. 1975 Apr;34(5):1350-6.
An analytical method is outlined for calculating the passive voltage transient at each point in an extensively branched neuron model for arbitrary current injection at a single branch. The method is based on a convolution formula that employs the transient response function, the voltage response to an instantaneous pulse of current. For branching that satisfies Rall's equivalent cylinder constraint, the response function is determined explicitly. Voltage transients, for a brief current injected at a branch terminal, are evaluated at several locations to illustrate the attenuation and delay characteristics of passive spread. A comparison with the same transient input terminal input, the fraction of input charge dissipated by various branches in the neuron model is illustrated. These fractions are independent of the input time course. For transient synaptic conductance change at a single branch terminal, a numerical example demonstrates the nonlinear effect of reduced synaptic driving potential. The branch terminal synaptic input is compared with the same synaptic conductance input applied to the soma on the basis of excitatory postsynaptic potential amplitude at the soma and charge delivered to the soma.
概述了一种分析方法,用于计算在广泛分支的神经元模型中,单个分支处任意电流注入时各点的被动电压瞬变。该方法基于一个卷积公式,该公式采用瞬态响应函数,即对瞬时电流脉冲的电压响应。对于满足拉尔等效圆柱体约束的分支,明确确定了响应函数。在几个位置评估了在分支末端注入短暂电流时的电压瞬变,以说明被动传播的衰减和延迟特性。与相同的瞬态输入终端输入进行比较,说明了神经元模型中各个分支耗散的输入电荷比例。这些比例与输入时间进程无关。对于单个分支末端的瞬态突触电导变化,一个数值示例展示了突触驱动电位降低的非线性效应。基于胞体处的兴奋性突触后电位幅度和传递到胞体的电荷,将分支末端突触输入与应用于胞体的相同突触电导输入进行比较。