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Quantification of Neural Conduction Block on the Rat Sciatic Nerve based on EMG Response

机译:基于EMG响应的大鼠坐骨神经神经传导阻滞的量化

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Neural conduction block performed by balanced-charge kilohertz frequency alternating currents (KHFAC) has been identified as a potential technique for therapy delivery in different clinical setups. The underlying mechanisms that contribute to this phenomenon have been studied through computational models and animal experiments. However, the optimal stimulation parameters to achieve axonal conduction block are difficult to define, since they depend on the species, the nerve being targeted, as well as the technical and experimental setup. This study proposes an experimental setup along with an original data processing approach for the quantification of the effectiveness of neural conduction block. Experiments were performed on the sciatic nerve of two Sprague-Dawley rats, by evaluating different groups of stimulation parameters with varying amplitudes and frequencies, ranging from 1 to 10 mA and from 2 to 10 kHz, respectively. Results suggest that the effectiveness of axonal conduction block strongly depends on the selection of the stimulation parameters. In this work, more effective blockages were achieved for frequencies around 4 kHz and within an approximate amplitude range of 2 to 8 mA.
机译:由平衡电荷千赫兹频率交流电(KHFAC)执行的神经传导阻滞已被确定为在不同临床设置中进行治疗的潜在技术。通过计算模型和动物实验研究了导致这种现象的潜在机制。但是,难以确定实现轴突传导阻滞的最佳刺激参数,因为它们取决于物种,目标神经以及技术和实验设置。这项研究提出了一种实验设置以及原始数据处理方法,用于量化神经传导阻滞的有效性。通过评估振幅和频率分别在1到10 mA和2到10 kHz范围内的不同刺激参数组,对两只Sprague-Dawley大鼠的坐骨神经进行了实验。结果表明,轴突传导阻滞的有效性在很大程度上取决于刺激参数的选择。在这项工作中,对于大约4 kHz的频率以及大约2至8 mA的幅度范围内的频率,实现了更有效的阻塞。

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