Hunter J D, Milton J G, Thomas P J, Cowan J D
Committee on Neurobiology, University of Chicago, Illinois 60637, USA.
J Neurophysiol. 1998 Sep;80(3):1427-38. doi: 10.1152/jn.1998.80.3.1427.
The spike timing reliability of Aplysia motoneurons stimulated by repeated presentation of periodic or aperiodic input currents is investigated. Two properties of the input are varied, the frequency content and the relative amplitude of the fluctuations to the mean (expressed as the coefficient of variation: CV). It is shown that, for small relative amplitude fluctuations (CV approximately 0.05-0.15), the reliability of spike timing is enhanced if the input contains a resonant frequency equal to the firing rate of the neuron in response to the DC component of the input. This resonance-related enhancement in reliability decreases as the relative amplitude of the fluctuations increases (CV-->1). Similar results were obtained for a leaky integrate-and-fire neuronal model, suggesting that these effects are a general property of encoders that combine a threshold with a leaky integrator. These observations suggest that, when the magnitude of input fluctuations is small, changes in the power spectrum of the current fluctuations or in the spike discharge rate can have a pronounced effect on the ability of the neuron to encode a time-varying input with reliably timed spikes.
研究了通过周期性或非周期性输入电流的重复呈现来刺激海兔运动神经元时的峰电位时间可靠性。输入的两个属性会发生变化,即频率成分以及波动相对于平均值的相对幅度(以变异系数:CV表示)。结果表明,对于较小的相对幅度波动(CV约为0.05 - 0.15),如果输入包含一个与神经元对输入直流分量的放电率相等的共振频率,则峰电位时间的可靠性会提高。随着波动相对幅度的增加(CV -> 1),这种与共振相关的可靠性增强会降低。对于一个漏电积分发放神经元模型也获得了类似结果,这表明这些效应是将阈值与漏电积分器相结合的编码器的一般属性。这些观察结果表明,当输入波动幅度较小时,电流波动功率谱或峰电位发放率的变化会对神经元用可靠定时的峰电位对时变输入进行编码的能力产生显著影响。