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The Role of Slow Potassium Current in Nerve Conduction Block Induced by High-Frequency Biphasic Electrical Current

机译:钾电流在高频双相电流诱导的神经传导阻滞中的作用

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摘要

The role of slow potassium current in nerve conduction block induced by high-frequency biphasic electrical current was analyzed using a lumped circuit model of a myelinated axon based on Schwarz-Reid-Bostock (SRB) model. The results indicate that nerve conduction block at stimulation frequencies above 4 kHz is due to constant activation of both fast and slow potassium channels, but the block at stimulation frequencies below 4 kHz could be due to either anodal or cathodal DC block depending on the time of the action potiential arriving at the block electrode. When stimulation frequency was above 4 kHz, the slow potassium current was about 3.5 to 6.5 times greater than the fast potassium current at blocking threshold, indicating that the slow potassium current played a more dominant role than the fast potassium current. The blocking location moved from the node under the blocking electrode to a nearby node as the stimulation intensity increased. This simulation study reveals that in mammalian myelinated axons the slow potassium current probably plays a critical role in the nerve conduction block induced by high-frequency biphasic electrical current.
机译:使用基于Schwarz-Reid-Bostock(SRB)模型的髓鞘轴突集总电路模型分析了慢钾电流在高频双相电流诱导的神经传导阻滞中的作用。结果表明,在高于4 kHz的刺激频率下,神经传导阻滞是由于快,慢钾通道的持续激活引起的,但低于4 kHz的刺激频率下的神经传导阻滞可能是由于阳极或阴极DC阻滞,具体取决于时间。动作电位到达阻挡电极。当刺激频率高于4 kHz时,慢速钾电流大约是阻塞阈值处快速钾电流的3.5至6.5倍,表明慢钾电流比快速钾电流更具主导作用。随着刺激强度的增加,阻挡位置从阻挡电极下方的节点移动到附近的节点。该模拟研究表明,在哺乳动物髓鞘轴突中,缓慢的钾电流可能在高频双相电流诱导的神经传导阻滞中起关键作用。

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