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听觉神经频率适应对电刺激参数、电极位置和纤维直径的依赖性:计算机模型研究。

The dependence of auditory nerve rate adaptation on electric stimulus parameters, electrode position, and fiber diameter: a computer model study.

机构信息

Department of Otolaryngology, University of Iowa Hospitals and Clinics, Iowa City, IA 52242, USA.

出版信息

J Assoc Res Otolaryngol. 2010 Jun;11(2):283-96. doi: 10.1007/s10162-009-0199-2. Epub 2009 Dec 22.

Abstract

This paper describes results from a stochastic computational neuron model that simulates the effects of rate adaptation on the responses to electrical stimulation in the form of pulse trains. We recently reported results from a single-node computational model that included a novel element that tracks external potassium ion concentration so as to modify membrane voltage and cause adaptation-like responses. Here, we report on an improved version of the model that incorporates the anatomical components of a complete feline auditory nerve fiber (ANF) so that conduction velocity and effects of manipulating the site of excitation can be evaluated. Model results demonstrate rate adaptation and changes in spike amplitude similar to those reported for feline ANFs. Changing the site of excitation from a central to a peripheral axonal site resulted in plausible changes in latency and relative spread (i.e., dynamic range). Also, increasing the distance between a modeled ANF and a stimulus electrode tended to decrease the degree of rate adaptation observed in pulse-train responses. This effect was clearly observed for high-rate (5,000 pulse/s) trains but not low-rate (250 pulse/s) trains. Finally, for relatively short electrode-to-ANF distances, increases in modeled ANF diameter increased the degree of rate adaptation. These results are compared against available feline ANF data, and possible effects of individual parameters are discussed.

摘要

本文描述了一个随机计算神经元模型的结果,该模型模拟了在脉冲串形式的电刺激下,速率适应对反应的影响。我们最近报告了一个单节点计算模型的结果,该模型包括一个新的元素,该元素跟踪外部钾离子浓度,以改变膜电压并引起类似适应的反应。在这里,我们报告了该模型的一个改进版本,该版本包含了完整猫听觉神经纤维 (ANF) 的解剖结构,以便评估传导速度和操纵兴奋部位的影响。模型结果表明,速率适应和尖峰幅度的变化与为猫 ANF 报告的结果相似。将兴奋部位从中央轴突部位改变为周围轴突部位,会导致潜伏期和相对扩散(即动态范围)发生合理的变化。此外,在模拟的 ANF 和刺激电极之间增加距离往往会降低脉冲串反应中观察到的速率适应程度。这种效应在高(5000 脉冲/秒)率脉冲串中很明显,但在低(250 脉冲/秒)率脉冲串中不明显。最后,对于相对较短的电极到 ANF 的距离,增加模拟的 ANF 直径会增加速率适应的程度。将这些结果与可用的猫 ANF 数据进行比较,并讨论了个别参数的可能影响。

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