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首页> 外文期刊>IEEE Transactions on Biomedical Engineering >Simulation analysis of conduction block in unmyelinated axons induced by high-frequency biphasic electrical currents
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Simulation analysis of conduction block in unmyelinated axons induced by high-frequency biphasic electrical currents

机译:高频双相电流诱导无髓突突轴突传导阻滞的仿真分析

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Nerve conduction block induced by high-frequency biphasic electrical currents is analyzed using a lumped circuit model of the unmyelinated axon based on Hodgkin-Huxley equations. Axons of different diameters (5-20 /spl mu/m) can not be blocked completely when the stimulation frequency is between 2 kHz and 4 kHz. However, when the stimulation frequency is above 4 kHz, all axons can be blocked. At high-frequency a higher stimulation intensity is needed to block nerve conduction. The larger diameter axon has a lower threshold intensity for conduction block. The stimulation waveform in which the pulsewidth changes with frequency is more effective in blocking nerve conduction than the waveform in which the pulsewidth is fixed. The activation of potassium channels, rather than inactivation of sodium channels, is the possible mechanism underlying the nerve conduction block of the unmyelinated axon. This simulation study further increases our understanding of axonal conduction block induced by high-frequency biphasic currents, and can guide future animal experiments as well as optimize stimulation waveforms that might be used for electrical nerve block in clinical applications.
机译:使用基于Hodgkin-Huxley方程的无髓鞘轴突的集总电路模型分析了高频双相电流引起的神经传导阻滞。当刺激频率在2 kHz至4 kHz之间时,不同直径的轴突(5-20​​ / spl mu / m)无法完全被阻止。但是,当刺激频率高于4 kHz时,所有轴突均可被阻塞。在高频下,需要更高的刺激强度来阻止神经传导。较大直径的轴突对于传导阻滞具有较低的阈值强度。与脉宽固定的波形相比,脉宽随频率变化的刺激波形在阻止神经传导方面更有效。钾通道的活化而不是钠通道的失活是未髓鞘轴突神经传导阻滞的潜在机制。这项模拟研究进一步增进了我们对高频双相电流引起的轴突传导阻滞的了解,并可以指导未来的动物实验以及优化可能在临床应用中用于电神经阻滞的刺激波形。

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