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The Crucial Role of Nerve Depolarisation in High Frequency Conduction Block in Mammalian Nerves: Simulation Study

机译:神经去极化在哺乳动物神经高频传导阻滞中的关键作用:仿真研究

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Neurostimulations which use High Frequency Alternating Current (HFAC) block show great promise for neuromodulatory therapies. Treatments have been developed for various health conditions including obesity and obesity related health risks, and now even stomach cancer treatments are being considered. However the mechanism of the block is still not completely clear, as well as how various neural and electrode parameters affect it. In order to study conduction block during HF stimulation in mammalian axons, we describe a detailed computational model and perform comprehensive simulations. We establish relationships between the blocking frequency and amplitude versus fibre diameter and the distance between the electrode and fibre. We found that only a certain level of depolarisation will universally create a block irrespective of the fibre size, and it is in the range 24-30mV depending on the stimulus frequency. Our study crucially improves our knowledge about this important technique which is rapidly emerging as a commercially available therapy.
机译:使用高频交流电(HFAC)块的神经刺激对神经调节疗法显示出巨大的希望。已经针对各种健康状况开发了治疗方法,包括肥胖和与肥胖相关的健康风险,现在甚至正在考虑治疗胃癌。但是,阻滞的机制以及各种神经和电极参数如何影响阻滞机制尚不完全清楚。为了研究哺乳动物轴突在HF刺激过程中的传导阻滞,我们描述了详细的计算模型并进行了全面的模拟。我们在阻塞频率和幅度与纤维直径以及电极与纤维之间的距离之间建立关系。我们发现,无论光纤的大小如何,只有一定水平的去极化会普遍形成阻滞,并且取决于激励频率,其阻滞范围为24-30mV。我们的研究极大地提高了我们对这项重要技术的了解,这项重要技术正在作为一种可商购的疗法而迅速兴起。

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