电生理学
微电极
神经科学
缺氧(环境)
脑电图
生物医学工程
多电极阵列
材料科学
生物神经网络
原位
化学
医学
生物
电极
氧气
有机化学
物理化学
作者
Longchun Wang,Ye Xi,Qingda Xu,Chunpeng Jiang,Jiawei Cao,Xiaolin Wang,Bin Yang,Jingquan Liu
出处
期刊:ACS Nano
[American Chemical Society]
日期:2023-11-06
卷期号:17 (22): 22277-22286
被引量:4
标识
DOI:10.1021/acsnano.3c02704
摘要
Perioperative cerebral hypoxia and neonatal hypoxia-ischemic encephalopathy are the main triggers that lead to temporary or permanent brain dysfunction. The pathogenesis is intimately correlated to neural activities and the pH of the microenvironment, which calls for a high demand for in situ multitype physiological signal acquisition in the brain. However, conventional pH sensing neural interfaces cannot obtain the characteristics of multimodes, multichannels, and high spatial resolution of physiological signals simultaneously. Here, we report a multifunctional implantable iridium oxide (IrOx) neural probe (MIIONP) combined with electrophysiology recording, in situ pH sensing, and neural stimulation for real-time dynamic brain hypoxia evaluation. The neural probe modified with IrOx films exhibits outstanding electrophysiology recording and neural stimulation performance and long-term stable high spatial pH sensing resolution of about 100 μm, and the cytotoxicity of IrOx microelectrodes was investigated as well. In addition, 4 weeks' tracking of the same neuron firing and instantaneous population spike captured during electrical stimulation was achieved by MIIONP. Finally, in a mouse brain hypoxia model, the MIIONP has demonstrated the capability of synchronous in situ recording of the pH and neural firing changes in the brain, which has a valuable application in dynamic brain disease evaluation through real-time acquisition of multiple physiological signals.
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