用电磁刺激恢复局部脱髓鞘轴突的轴突电导。

Hui Ye, Yanan Chen, Ji Chen, Jenna Hendee
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摘要

目的:神经轴突脱髓鞘导致神经轴突传导失败。目前对脱髓鞘的研究主要集中在促进脱髓鞘再生。电磁刺激被广泛用于促进神经活动。我们假设电磁刺激脱髓鞘区,通过向Ranvier节点提供激励,可以拯救局部脱髓鞘轴突免于电导失败。方法:我们在电磁刺激下建立了髓鞘轴突的多室神经元模型。我们模拟了局部脱髓鞘发生时的动作电位传播和电导失效。电导失败是由于电流泄漏和脱髓鞘区域的节点缺乏激活。为了研究电磁刺激对局部脱髓鞘轴突的影响,我们在受影响区域附近放置了一个微型线圈来激活脱髓鞘区域的节点。主要结果:阈下微线圈刺激引起结膜去极化。这种去极化与入侵动作电位引起的膜去极化相结合,导致脱髓鞘区节点的充分激活和轴突电导的恢复。恢复的效果取决于刺激的幅度和频率,以及微线圈相对于目标节点的位置。轴突电导的恢复是由于节点内Na+电流的增强和K+电流的减少,而不是脱髓鞘区漏电流的减少。最后,我们发现微线圈刺激对健康的有髓鞘轴突的轴突传导没有影响。意义:利用电磁刺激激活脱髓鞘区域的节点,为局部脱髓鞘条件下恢复轴突功能提供了另一种治疗策略。结果为微线圈技术治疗局灶性节段性脱髓鞘的发展提供了启示,如神经失用症、脊髓损伤和听神经脱髓鞘。& # xD。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Restore axonal conductance in a locally demyelinated axon with electromagnetic stimulation.

Objective. Axonal demyelination leads to failure of axonal conduction. Current research on demyelination focuses on the promotion of remyelination. Electromagnetic stimulation is widely used to promote neural activity. We hypothesized that electromagnetic stimulation of the demyelinated area, by providing excitation to the nodes of Ranvier, could rescue locally demyelinated axons from conductance failure.Approach. We built a multi-compartment NEURON model of a myelinated axon under electromagnetic stimulation. We simulated the action potential (AP) propagation and observed conductance failure when local demyelination occurred. Conductance failure was due to current leakage and a lack of activation of the nodes in the demyelinated region. To investigate the effects of electromagnetic stimulation on locally demyelinated axons, we positioned a miniature coil next to the affected area to activate nodes in the demyelinated region.Main results. Subthreshold microcoil stimulation caused depolarization of node membranes. This depolarization, in combination with membrane depolarization induced by the invading AP, resulted in sufficient activation of nodes in the demyelinated region and restoration of axonal conductance. Efficacy of restoration was dependent on the amplitude and frequency of the stimuli, and the location of the microcoil relative to the targeted nodes. The restored axonal conductance was due to the enhanced Na+current and reduced K+current in the nodes, rather than a reduction in leakage current in the demyelinated region. Finally, we found that microcoil stimulation had no effect on axonal conductance in healthy, myelinated axons.Significance. Activation of nodes in the demyelinated region using electromagnetic stimulation provides an alternative treatment strategy to restore axonal function under local demyelination conditions. Results provide insights to the development of microcoil technology for the treatment of focal segmental demyelination cases, such as neuropraxia, spinal cord injury, and auditory nerve demyelination.

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