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Higher-order power harmonics of pulsed electrical stimulation modulates corticospinal contribution of peripheral nerve stimulation

机译:脉冲电刺激的高阶电力谐波调节外周神经刺激的皮质脊髓贡献

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It is well established that electrical-stimulation frequency is crucial to determining the scale of induced neuromodulation, particularly when attempting to modulate corticospinal excitability. However, the modulatory effects of stimulation frequency are not only determined by its absolute value but also by other parameters such as power at harmonics. The stimulus pulse shape further influences parameters such as excitation threshold and fiber selectivity. The explicit role of the power in these harmonics in determining the outcome of stimulation has not previously been analyzed. In this study, we adopted an animal model of peripheral electrical stimulation that includes an amplitude-adapted pulse train which induces force enhancements with a corticospinal contribution. We report that the electrical-stimulation-induced force enhancements were correlated with the amplitude of stimulation power harmonics during the amplitude-adapted pulse train. In an exploratory analysis, different levels of correlation were observed between force enhancement and power harmonics of 20–80?Hz (r?=?0.4247, p?=?0.0243), 100–180?Hz (r?=?0.5894, p?=?0.0001), 200–280?Hz (r?=?0.7002, p??0.0001), 300–380?Hz (r?=?0.7449, p??0.0001), 400–480?Hz (r?=?0.7906, p??0.0001), 500–600?Hz (r?=?0.7717, p??0.0001), indicating a trend of increasing correlation, specifically at higher order frequency power harmonics. This is a pilot, but important first demonstration that power at high order harmonics in the frequency spectrum of electrical stimulation pulses may contribute to neuromodulation, thus warrant explicit attention in therapy design and analysis.
机译:很好地确定,电刺激频率至关重要,以确定诱导的神经调节的规模,特别是在试图调节皮质痉挛性时。然而,刺激频率的调制效果不仅由其绝对值决定,而且由谐波处的电力等其他参数决定。刺激脉冲形状进一步影响诸如激发阈值和光纤选择性的参数。在确定刺激结果时,功率在这些谐波中的明确作用尚未分析。在这项研究中,我们采用了一种外围电刺激的动物模型,其包括幅度适应的脉冲系,其诱导力量增强具有皮质螺旋贡献。我们认为电刺激诱导的力增强与幅度适配的脉冲串期间的刺激电力谐波的幅度相关。在探索性分析中,在20-80℃的力增强和电力谐波之间观察到不同水平的20-80?= 0.4247,p?= 0.0243),100-180?Hz(r?= 0.5894,p ?=?0.0001),200-280?Hz(r?= 0.7002,p?<0.0001),300-380?Hz(r?= 0.7449,P?<0.0001),400-480?Hz( r?=Δ= 0.7906,p?<?0.0001),500-600?Hz(r?= 0.7717,p?<0.0001),表明相关性增加的趋势,特别是在更高阶频率的谐波处。这是一个试点,但重要的首要演示,即电刺激脉冲的频谱中高阶谐波的功率可能有助于神经调节,从而有助于治疗设计和分析。

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