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A quantitative approach to modeling mammalian myelinated nerve fibers for electrical prosthesis design

机译:用于电假体设计的哺乳动物髓鞘神经纤维建模的定量方法

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摘要

Presents an upgraded cable model of mammalian myelinated nerve fibers in an extracellularly applied field. The kinetics of the nodes is based upon voltage clamp data in rat motor fibers at 37/spl deg/C (J.R. Schwartz and G. Eikhof, 1987), while the resting membrane potential is computed with the Goldman equation. The resulting spike shape, conduction velocity, strength/duration behavior, and absolute and relative refractory period are in good quantitative agreement with published experimental data in mammals at normal body temperature and at 20/spl deg/C. Results at intermediate temperatures however, suggest that the widely used concept of a constant Q/sub 10/ for the rate constants is invalid. In addition, the model generates realistic abortive spikes towards the end of the absolute refractory period and it can describe the consequences of repetitive firing. The results stress the advantages of a multiple nonlinear node model even if only time aspects of nerve behavior are under study. It turned out, that the model presented here describes in vivo neural properties relevant for electrical prosthesis design better than previous models in literature.
机译:提出了在细胞外应用领域的哺乳动物的有髓神经纤维的升级的电缆模型。节点的动力学是基于大鼠运动纤维在37 / spl deg / C下的电压钳数据(J.R. Schwartz和G.Eikhof,1987),而静息膜电位是通过Goldman方程计算的。所产生的尖峰形状,传导速度,强度/持续时间行为以及绝对和相对不应期均与哺乳动物在正常体温和20 / spl deg / C下的实验数据定量一致。然而,在中间温度下的结果表明,速率常数常数Q / sub 10 /的广泛使用的概念是无效的。此外,该模型在绝对不应期结束时会产生逼真的流产尖峰,并且可以描述重复点火的后果。即使只研究神经行为的时间方面,结果也强调了多重非线性节点模型的优势。事实证明,与文献中的先前模型相比,此处呈现的模型更好地描述了与电修复体设计相关的体内神经属性。

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