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首页> 外文期刊>Neuromodulation: journal of the International Neuromodulation Society >Evoked Compound Action Potentials Reveal Spinal Cord Dorsal Column Neuroanatomy
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Evoked Compound Action Potentials Reveal Spinal Cord Dorsal Column Neuroanatomy

机译:诱发复合作用潜力揭示脊髓背柱神经肿瘤

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Introduction The electrically evoked compound action potential (ECAP) is a measure of the response from a population of fibers to an electrical stimulus. ECAPs can be assessed during spinal cord stimulation (SCS) to elucidate the relationship between stimulation, electrophysiological response, and neuromodulation. This has consequences for the design and programming of SCS devices. Methods Sheep were implanted with linear epidural SCS leads. After a stimulating pulse, electrodes recorded ECAPs sequentially as they propagated orthodromically or antidromically. After filtering, amplification, and signal processing, ECAP amplitude and dispersion (width) was measured, and conduction velocity was calculated. Similar clinical data was also collected. A single‐neuron computer model that simulated large‐diameter sensory axons was used to explore and explain the observations. Results ECAPs, both animal and human, have a triphasic structure, with P1, N1, and P2 peaks. Conduction velocity in sheep was 109?ms ?1 , which indicates that the underlying neural population includes fibers of up to 20?μm in diameter. For travel in both directions, propagation distance was associated with decrease in amplitude and increase in dispersion. Importantly, characteristics of these changes shifted abruptly at various positions along the cord. Discussion ECAP dispersion increases with propagation distance due to the contribution of slow‐conducting small‐diameter fibers as the signal propagates away from the source. An analysis of the discontinuities in ECAP dispersion changes with propagation revealed that these are due to the termination of smaller‐diameter, slower‐conducting fibers at corresponding segmental levels. The implications regarding SCS lead placement, toward the goal of maximizing clinical benefit while minimizing side‐effects, are discussed. Conflict of Interest John Parker is the founder and CEO of Saluda Medical and holds stock options. Milan Obradovic, Nastaran Hesam Shariati, Dean M. Karantonis, Peter Single, James Laird‐Wah, Robert Gorman and Mark Bickerstaff are employees of Saluda Medical with stock options. At the time the data was collected for the study, Prof. Cousins was a paid consultant for Saluda Medical. John Parker, Milan Obradovic, Dean Karantonis, James Laird‐Wah, Robert Gorman and Peter Single are co‐inventors in one or more patents related to the topics discussed in this work.
机译:引言电诱发的化合物作用电位(ECAP)是从纤维群到电刺激的响应的量度。可以在脊髓刺激(SCS)期间评估ECAPS,以阐明刺激,电生理反应和神经调节之间的关系。这对SCS设备的设计和编程具有后果。方法植入绵羊植入线性硬膜外流SCS引线。在刺激脉冲之后,当它们繁殖或抗体抗体地传播时,电极依次记录肌片。在过滤,放大和信号处理后,测量ECAP振幅和色散(宽度),并计算传导速度。也收集了类似的临床数据。模拟大直径感官轴突的单个神经元计算机模型用于探索和解释观察结果。结果ECAPS,动物和人类,具有三足球结构,具有P1,N1和P2峰。绵羊中的传导速度为109?MS?1,表明潜在的神经群包括直径最多20ΩΩμm的纤维。对于两个方向的行进,传播距离与幅度的降低和分散的增加有关。重要的是,这些变化的特性突然在绳索的各个位置突然移动。讨论eCAP色散随着传播距离而增加,由于信号从源传播远离源时,由于慢导通的小直径光纤的贡献。传播中的ECAP色散变化的不连续性的分析显示,这些是由于相应的节段水平的较小直径较慢的导电纤维。讨论了关于SCS引线放置的影响,朝向最大化临床益处的目的,同时最小化副作用。利益冲突John Parker是Saluda Medical的创始人兼首席执行官,并拥有股票期权。米兰Obradovic,Nastaran Hesa​​m Shariati,Dean M.Kantonis,彼得唯一,詹姆斯莱尔德 - 华,罗伯特Gorman和Mark Bickersaff是Saluda医疗与股票期权的员工。在收集数据的数据时,堂兄教授是Saluda Medical的付费顾问。 John Parker,米兰Obradovic,Dean Kanceronis,James Laird-Wah,Robert Gorman和Peter Single是一个或多个与本工作中讨论的主题相关的一个或多个专利的共同发明人。

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