超实用微刺激:微电极设计和体内验证的进展。

IF 12.8 1区 工程技术 Q1 ENGINEERING, BIOMEDICAL
Cecilia Schmitz, J Evan Smith, Iakov Rachinskiy, Bijan Pesaran, Flavia Vitale, Marc Sommer, Jonathan Viventi
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引用次数: 0

摘要

脑电刺激作为一种治疗越来越多的神经系统疾病的方法正在得到发展。提供电刺激的技术正在迅速发展,在特异性、覆盖范围和侵入性方面各不相同。实践上微刺激(SCMS)的特点是在硬膜外或硬膜下皮层表面放置微电极接触,通过提供空间精确的激活而不破坏皮层的完整性,在其他电刺激技术的优点和局限性之间取得了平衡。然而,涉及SCMS的体内实验尚未得到全面总结。在这里,我们回顾了SCMS领域的最新进展,以指导临床可翻译的实践性上微电极的发展。我们还强调了我们对这项技术的生物物理效应的理解上的差距。未来研究超皮层微电极独特的电化学特性,并在非人类灵长类动物临床前研究中验证SCMS,可以使神经系统疾病患者的创新治疗方法快速临床转化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Supracortical Microstimulation: Advances in Microelectrode Design and In Vivo Validation.

Electrical stimulation of the brain is being developed as a treatment for an increasing number of neurological disorders. Technologies for delivering electrical stimulation are advancing rapidly and vary in specificity, coverage, and invasiveness. Supracortical microstimulation (SCMS), characterized by microelectrode contacts placed on the epidural or subdural cortical surface, achieves a balance between the advantages and limitations of other electrical stimulation technologies by delivering spatially precise activation without disrupting the integrity of the cortex. However, in vivo experiments involving SCMS have not been comprehensively summarized. Here, we review the field of SCMS, focusing on recent advances, to guide the development of clinically translatable supracortical microelectrodes. We also highlight the gaps in our understanding of the biophysical effects of this technology. Future work investigating the unique electrochemical properties of supracortical microelectrodes and validating SCMS in nonhuman primate preclinical studies can enable rapid clinical translation of innovative treatments for humans with neurological disorders.

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来源期刊
Annual Review of Biomedical Engineering
Annual Review of Biomedical Engineering 工程技术-工程:生物医学
CiteScore
18.80
自引率
0.00%
发文量
14
期刊介绍: Since 1999, the Annual Review of Biomedical Engineering has been capturing major advancements in the expansive realm of biomedical engineering. Encompassing biomechanics, biomaterials, computational genomics and proteomics, tissue engineering, biomonitoring, healthcare engineering, drug delivery, bioelectrical engineering, biochemical engineering, and biomedical imaging, the journal remains a vital resource. The current volume has transitioned from gated to open access through Annual Reviews' Subscribe to Open program, with all articles published under a CC BY license.
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