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用于体内神经电生理记录与刺激的可植入微电极阵列制造工艺:最新综述

Manufacturing Processes of Implantable Microelectrode Array for In Vivo Neural Electrophysiological Recordings and Stimulation: A State-Of-the-Art Review.

作者信息

Yi Dongyang, Yao Yao, Wang Yi, Chen Lei

机构信息

Department of Mechanical and Industrial Engineering, University of Massachusetts Lowell, 1 University Avenue, Lowell, MA 01854.

Department of Industrial and Systems Engineering, University of Missouri, 416 South 6th Street, Columbia, MO 65211.

出版信息

J Micro Nanomanuf. 2022 Dec 1;10(4):041001. doi: 10.1115/1.4063179. Epub 2023 Oct 9.

DOI:10.1115/1.4063179
PMID:37860671
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC10583290/
Abstract

Electrophysiological recording and stimulation of neuron activities are important for us to understand the function and dysfunction of the nervous system. To record/stimulate neuron activities as voltage fluctuation extracellularly, microelectrode array (MEA) implants are a promising tool to provide high temporal and spatial resolution for neuroscience studies and medical treatments. The design configuration and recording capabilities of the MEAs have evolved dramatically since their invention and manufacturing process development has been a key driving force for such advancement. Over the past decade, since the White House Brain Research Through Advancing Innovative Neurotechnologies (BRAIN) Initiative launched in 2013, advanced manufacturing processes have enabled advanced MEAs with increased channel count and density, access to more brain areas, more reliable chronic performance, as well as minimal invasiveness and tissue reaction. In this state-of-the-art review paper, three major types of electrophysiological recording MEAs widely used nowadays, namely, microwire-based, silicon-based, and flexible MEAs are introduced and discussed. Conventional design and manufacturing processes and materials used for each type are elaborated, followed by a review of further development and recent advances in manufacturing technologies and the enabling new designs and capabilities. The review concludes with a discussion on potential future directions of manufacturing process development to enable the long-term goal of large-scale high-density brain-wide chronic recordings in freely moving animals.

摘要

神经元活动的电生理记录和刺激对于我们理解神经系统的功能及功能障碍至关重要。为了在细胞外将神经元活动记录/刺激为电压波动,微电极阵列(MEA)植入物是一种很有前景的工具,可为神经科学研究和医学治疗提供高时间和空间分辨率。自发明以来,MEA的设计结构和记录能力有了显著发展,制造工艺的发展一直是这种进步的关键驱动力。在过去十年中,自2013年白宫推进创新神经技术脑研究(BRAIN)计划启动以来,先进的制造工艺使得先进的MEA具有更多的通道数量和密度、能够进入更多脑区、具有更可靠的长期性能,以及最小的侵入性和组织反应。在这篇前沿综述论文中,介绍并讨论了如今广泛使用的三种主要类型的电生理记录MEA,即基于微丝的MEA、基于硅的MEA和柔性MEA。阐述了每种类型所使用的传统设计、制造工艺和材料,随后回顾了制造技术的进一步发展和最新进展以及由此实现的新设计和能力。综述最后讨论了制造工艺发展的潜在未来方向,以实现对自由活动动物进行大规模全脑长期高密度慢性记录的长期目标。

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2
CMU Array: A 3D nanoprinted, fully customizable high-density microelectrode array platform.卡内基梅隆大学阵列:一个3D纳米打印的、完全可定制的高密度微电极阵列平台。
Sci Adv. 2022 Oct 7;8(40):eabj4853. doi: 10.1126/sciadv.abj4853. Epub 2022 Oct 5.
3
A flexible implantable microelectrode array for recording electrocorticography signals from rodents.一种用于记录啮齿动物脑电信号的柔性可植入微电极阵列。
Biomed Microdevices. 2022 Sep 17;24(4):31. doi: 10.1007/s10544-022-00632-0.
4
Electrochemical and biological performance of hierarchical platinum-iridium electrodes structured by a femtosecond laser.飞秒激光构建的分级铂铱电极的电化学和生物学性能
Microsyst Nanoeng. 2022 Sep 2;8:96. doi: 10.1038/s41378-022-00433-8. eCollection 2022.
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Laser Sharpening of Carbon Fiber Microelectrode Arrays for Brain Recording.用于脑记录的碳纤维微电极阵列的激光锐化
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Microsyst Nanoeng. 2022 Feb 16;8:21. doi: 10.1038/s41378-022-00353-7. eCollection 2022.
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