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非对称波形对无髓鞘轴突中高频(kHz)双相刺激诱导的传导阻滞的影响。

Effect of non-symmetric waveform on conduction block induced by high-frequency (kHz) biphasic stimulation in unmyelinated axon.

作者信息

Zhao Shouguo, Yang Guangning, Wang Jicheng, Roppolo James R, de Groat William C, Tai Changfeng

机构信息

Department of Urology, University of Pittsburgh, 700 Kaufmann Building, 15213, Pittsburgh, PA, USA.

出版信息

J Comput Neurosci. 2014 Oct;37(2):377-86. doi: 10.1007/s10827-014-0510-z. Epub 2014 Jun 14.

Abstract

The effect of a non-symmetric waveform on nerve conduction block induced by high-frequency biphasic stimulation is investigated using a lumped circuit model of the unmyelinated axon based on Hodgkin-Huxley equations. The simulation results reveal that the block threshold monotonically increases with the stimulation frequency for the symmetric stimulation waveform. However, a non-monotonic relationship between block threshold and stimulation frequency is observed when the stimulation waveform is non-symmetric. Constant activation of potassium channels by the high-frequency stimulation results in the increase of block threshold with increasing frequency. The non-symmetric waveform with a positive pulse 0.4-0.8 μs longer than the negative pulse blocks axonal conduction by hyperpolarizing the membrane and causes a decrease in block threshold as the frequency increases above 12-16 kHz. On the other hand, the non-symmetric waveform with a negative pulse 0.4-0.8 μs longer than the positive pulse blocks axonal conduction by depolarizing the membrane and causes a decrease in block threshold as the frequency increases above 40-53 kHz. This simulation study is important for understanding the potential mechanisms underlying the nerve block observed in animal studies, and may also help to design new animal experiments to further improve the nerve block method for clinical applications.

摘要

基于霍奇金 - 赫胥黎方程,使用无髓鞘轴突的集总电路模型研究了非对称波形对高频双相刺激诱导的神经传导阻滞的影响。模拟结果表明,对于对称刺激波形,阻滞阈值随刺激频率单调增加。然而,当刺激波形为非对称时,观察到阻滞阈值与刺激频率之间存在非单调关系。高频刺激持续激活钾通道导致阻滞阈值随频率增加而升高。正脉冲比负脉冲长0.4 - 0.8微秒的非对称波形通过使膜超极化来阻断轴突传导,并在频率高于12 - 16千赫兹时导致阻滞阈值降低。另一方面,负脉冲比正脉冲长0.4 - 0.8微秒的非对称波形通过使膜去极化来阻断轴突传导,并在频率高于40 - 53千赫兹时导致阻滞阈值降低。该模拟研究对于理解动物研究中观察到的神经阻滞的潜在机制很重要,并且可能也有助于设计新的动物实验以进一步改进用于临床应用的神经阻滞方法。

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