光遗传学
神经科学
接口
脑-机接口
微电极
神经假体
沟道视紫红质
生物神经网络
材料科学
计算机科学
生物医学工程
生物
电极
化学
医学
脑电图
计算机硬件
物理化学
作者
Dayo O. Adewole,Laura A. Struzyna,Justin C. Burrell,James P. Harris,Ashley D. Nemes,Dmitriy Petrov,Reuben H. Kraft,H. Isaac Chen,Mijail Serruya,John A. Wolf,D. Kacy Cullen
出处
期刊:Science Advances
[American Association for the Advancement of Science (AAAS)]
日期:2021-01-22
卷期号:7 (4)
被引量:59
标识
DOI:10.1126/sciadv.aay5347
摘要
For implantable neural interfaces, functional/clinical outcomes are challenged by limitations in specificity and stability of inorganic microelectrodes. A biological intermediary between microelectrical devices and the brain may improve specificity and longevity through (i) natural synaptic integration with deep neural circuitry, (ii) accessibility on the brain surface, and (iii) optogenetic manipulation for targeted, light-based readout/control. Accordingly, we have developed implantable "living electrodes," living cortical neurons, and axonal tracts protected within soft hydrogel cylinders, for optobiological monitoring/modulation of brain activity. Here, we demonstrate fabrication, rapid axonal outgrowth, reproducible cytoarchitecture, and simultaneous optical stimulation and recording of these tissue engineered constructs in vitro. We also present their transplantation, survival, integration, and optical recording in rat cortex as an in vivo proof of concept for this neural interface paradigm. The creation and characterization of these functional, optically controllable living electrodes are critical steps in developing a new class of optobiological tools for neural interfacing.
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