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Modelling of the Current Density Distributions during Cortical Electric Stimulation for Neuropathic Pain Treatment

机译:皮层电刺激神经痛治疗过程中电流密度分布的模型

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摘要

In the last two decades, motor cortex stimulation has been recognized as a valuable alternative to pharmacological therapy for the treatment of neuropathic pain. Although this technique started to be used in clinical studies, the debate about the optimal settings that enhance its effectiveness without inducing tissue damage is still open. To this purpose, computational approaches applied to realistic human models aimed to assess the current density distribution within the cortex can be a powerful tool to provide a basic understanding of that technique and could help the design of clinical experimental protocols. This study aims to evaluate, by computational techniques, the current density distributions induced in the brain by a realistic electrode array for cortical stimulation. The simulation outcomes, summarized by specific metrics quantifying the efficacy of the stimulation (i.e., the effective volume and the effective depth of penetration) over two cortical targets, were evaluated by varying the interelectrode distance, the stimulus characteristics (amplitude and frequency), and the anatomical human model. The results suggest that all these parameters somehow affect the current density distributions and have to be therefore taken into account during the planning of effective electrical cortical stimulation strategies. In particular, our calculations show that (1) the most effective interelectrode distance equals 2 cm; (2) increasing voltage amplitudes increases the effective volume; (3) increasing frequencies allow enlarging the effective volume; and (4) the effective depth of penetration is strictly linked to both the anatomy of the subject and the electrode placement.
机译:在过去的二十年中,运动皮层刺激已被认为是治疗神经性疼痛的药物治疗的一种有价值的替代方法。尽管该技术已开始用于临床研究,但有关在不引起组织损伤的情况下增强其有效性的最佳设置的争论仍在讨论中。为此,应用于现实人体模型的计算方法旨在评估皮质内的当前密度分布,可以成为提供对该技术基本了解的强大工具,并有助于设计临床实验方案。这项研究旨在通过计算技术评估由真实的皮层刺激电极阵列在大脑中诱导的电流密度分布。通过改变电极间距离,刺激特性(幅度和频率)以及通过改变电极之间的距离来评估模拟结果,该结果由用于量化刺激两个皮质目标的功效(即有效穿透量和有效穿透深度)的特定指标总结而成。人体解剖模型。结果表明,所有这些参数都以某种方式影响电流密度分布,因此在规划有效的皮层电刺激策略时必须予以考虑。特别地,我们的计算表明:(1)最有效的电极间距离等于2 cm; (2)增加电压幅度会增加有效音量; (3)增加频率可以扩大有效音量; (4)有效的穿透深度与受试者的解剖结构和电极放置都紧密相关。

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