电刺激对神经胶质细胞行为的影响。

Christopher T Tsui, Preet Lal, Katelyn V R Fox, Matthew A Churchward, Kathryn G Todd
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引用次数: 3

摘要

神经接口装置与中枢神经系统(CNS)相互作用,以替代某种功能缺陷,提高残疾人的生活质量。设计安全、生物相容的神经接口装置是神经科学研究的一个新兴领域。设计直接与脑或脊髓组织接触的侵入性植入材料的发展主要集中在减轻神经胶质疤痕对植入物本身的反应性,但在文献中很少有直接记录电刺激对神经胶质细胞的影响。在这篇综述中,根据所使用的各种类型的刺激范式及其对神经胶质细胞的观察效果,对记录这种效应的研究进行了综述和分类。混合神经科学和细胞生物学工程的观点强调了在开发安全植入物时必须考虑的两个学科。为了进一步了解电刺激如何影响神经胶质细胞,我们还建议通过实验来阐明电刺激可能导致的电化学反应以及这些反应如何影响神经胶质细胞。设计一种生物相容的刺激模式应该是开发一种提高安全性和寿命的设备的首要考虑因素。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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The effects of electrical stimulation on glial cell behaviour.

Neural interface devices interact with the central nervous system (CNS) to substitute for some sort of functional deficit and improve quality of life for persons with disabilities. Design of safe, biocompatible neural interface devices is a fast-emerging field of neuroscience research. Development of invasive implant materials designed to directly interface with brain or spinal cord tissue has focussed on mitigation of glial scar reactivity toward the implant itself, but little exists in the literature that directly documents the effects of electrical stimulation on glial cells. In this review, a survey of studies documenting such effects has been compiled and categorized based on the various types of stimulation paradigms used and their observed effects on glia. A hybrid neuroscience cell biology-engineering perspective is offered to highlight considerations that must be made in both disciplines in the development of a safe implant. To advance knowledge on how electrical stimulation affects glia, we also suggest experiments elucidating electrochemical reactions that may occur as a result of electrical stimulation and how such reactions may affect glia. Designing a biocompatible stimulation paradigm should be a forefront consideration in the development of a device with improved safety and longevity.

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