A Soft-Fiber Bioelectronic Device with Axon-Like Architecture Enables Reliable Neural Recording In Vivo under Vigorous Activities

IF 27.4 1区 材料科学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Chengqiang Tang, Zhengqi Han, Ziwei Liu, Wenjun Li, Jiahao Shen, Kailin Zhang, Shuting Mai, Jinyan Li, Xiao Sun, Xingfei Chen, Hongjian Li, Liyuan Wang, Jiaheng Liang, Meng Liao, Jianyou Feng, Chuang Wang, Jiajia Wang, Lei Ye, Yiqing Yang, Songlin Xie, Xiang Shi, Kaiwen Zeng, Xuefeng Zhang, Xiangran Cheng, Kun Zhang, Yue Guo, Han Yang, Yifei Xu, Qi Tong, Hongbo Yu, Peining Chen, Huisheng Peng, Xuemei Sun
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引用次数: 0

Abstract

Implantable neural devices that record neurons in various states, including static states, light activities such as walking, and vigorous activities such as running, offer opportunities for understanding brain functions and dysfunctions. However, recording neurons under vigorous activities remains a long-standing challenge because it leads to intense brain deformation. Thus, three key requirements are needed simultaneously for neural devices, that is, low modulus, low specific interfacial impedance, and high electrical conductivity, to realize stable device/brain interfaces and high-quality transmission of neural signals. However, they always contradict each other in current material strategies. Here, a soft fiber neural device capable of stably tracking individual neurons in the deep brain of medium-sized animals under vigorous activity is reported. Inspired by the axon architecture, this fiber neural device is constructed with a conductive gel fiber possessing a network-in-liquid structure using conjugated polymers and liquid matrices and then insulated with soft fluorine rubber. This strategy reconciles the contradictions and simultaneously confers the fiber neural device with low modulus (300 kPa), low specific impedance (579 kΩ µm2), and high electrical conductivity (32 700 S m−1) – ≈1–3 times higher than hydrogels. Stable single-unit spike tracking in running cats, which promises new opportunities for neuroscience is demonstrated.

Abstract Image

Abstract Image

具有类似轴突结构的软纤维生物电子器件可在剧烈运动下进行可靠的体内神经记录。
植入式神经装置可记录神经元在各种状态下的活动,包括静态、轻度活动(如行走)和剧烈活动(如跑步),这为了解大脑功能和功能障碍提供了机会。然而,在剧烈活动下记录神经元仍是一项长期挑战,因为这会导致大脑剧烈变形。因此,神经设备需要同时满足三个关键要求,即低模量、低比界面阻抗和高导电性,以实现稳定的设备/大脑界面和高质量的神经信号传输。然而,在当前的材料战略中,这两者总是相互矛盾。本文报告了一种软纤维神经装置,该装置能够在中型动物剧烈活动时稳定跟踪大脑深部的单个神经元。受轴突结构的启发,这种纤维神经设备是利用共轭聚合物和液体基质构建的具有液中网结构的导电凝胶纤维,然后用软氟橡胶绝缘。这一策略调和了上述矛盾,同时使纤维神经装置具有低模量(300 kPa)、低比阻抗(579 kΩ µm2)和高导电率(32700 S m-1)--比水凝胶高出≈1-3倍。实验证明,对奔跑的猫进行稳定的单体尖峰跟踪,有望为神经科学带来新的机遇。
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
Advanced Materials
Advanced Materials 工程技术-材料科学:综合
CiteScore
43.00
自引率
4.10%
发文量
2182
审稿时长
2 months
期刊介绍: Advanced Materials, one of the world's most prestigious journals and the foundation of the Advanced portfolio, is the home of choice for best-in-class materials science for more than 30 years. Following this fast-growing and interdisciplinary field, we are considering and publishing the most important discoveries on any and all materials from materials scientists, chemists, physicists, engineers as well as health and life scientists and bringing you the latest results and trends in modern materials-related research every week.
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