Electrode Arrays for Detecting and Modulating Deep Brain Neural Information in Primates: A Review.

IF 10.5 Q1 ENGINEERING, BIOMEDICAL
Cyborg and bionic systems (Washington, D.C.) Pub Date : 2025-05-02 eCollection Date: 2025-01-01 DOI:10.34133/cbsystems.0249
Siyu Zhang, Yilin Song, Shiya Lv, Luyi Jing, Mingchuan Wang, Yu Liu, Wei Xu, Peiyao Jiao, Suyi Zhang, Mixia Wang, Juntao Liu, Yirong Wu, Xinxia Cai
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Abstract

Primates possess a more developed central nervous system and a higher level of intelligence than rodents. Detecting and modulating deep brain activity in primates enhances our understanding of neural mechanisms, facilitates the study of major brain diseases, enables brain-computer interactions, and supports advancements in artificial intelligence. Traditional imaging methods such as magnetic resonance imaging, positron emission computed tomography, and scalp electroencephalogram are limited in spatial resolution. They cannot accurately capture deep brain signals from individual neurons. With the progress of microelectromechanical systems and other micromachining technologies, single-neuron level detection and stimulation technology in rodents based on microelectrodes has made important progress. However, compared with rodents, human and nonhuman primates have larger brain volume that needs deeper implantation depth, and the test object has higher safety and device preparation requirements. Therefore, high-resolution devices suitable for long-term detection in the brains of primates are urgently needed. This paper reviewed electrode array devices used for electrophysiological and electrochemical detections in primates' deep brains. The research progress of neural recording and stimulation technologies was introduced from the perspective of electrode type and device structures, and their potential value in neuroscience research and clinical disease treatments was discussed. Finally, it is speculated that future electrodes will have a lot of room for development in terms of flexibility, high resolution, deep brain, and high throughput. The improvements in electrode forms and preparation process will expand our understanding of deep brain neural activities, and bring new opportunities and challenges for the further development of neuroscience.

用于检测和调制灵长类动物深部脑神经信息的电极阵列:综述。
灵长类动物拥有比啮齿类动物更发达的中枢神经系统和更高水平的智力。探测和调节灵长类动物的深部脑活动增强了我们对神经机制的理解,促进了对主要脑部疾病的研究,实现了脑机交互,并支持了人工智能的进步。传统的成像方法如磁共振成像、正电子发射计算机断层扫描和头皮脑电图在空间分辨率上是有限的。它们不能准确地捕获来自单个神经元的深层大脑信号。随着微机电系统和其他微加工技术的发展,基于微电极的啮齿动物单神经元水平检测和刺激技术取得了重要进展。然而,与啮齿类动物相比,人类和非人类灵长类动物的脑容量更大,需要植入深度更深,测试对象的安全性和设备制备要求更高。因此,迫切需要适合灵长类动物大脑长期检测的高分辨率设备。本文综述了用于灵长类动物脑深部电生理和电化学检测的电极阵列装置。从电极类型和装置结构的角度介绍了神经记录和刺激技术的研究进展,并讨论了其在神经科学研究和临床疾病治疗中的潜在价值。最后,推测未来电极在灵活性、高分辨率、深脑、高通量等方面都有很大的发展空间。电极形式和制备工艺的改进将扩大我们对脑深部神经活动的认识,为神经科学的进一步发展带来新的机遇和挑战。
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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来源期刊
CiteScore
7.70
自引率
0.00%
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审稿时长
21 weeks
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