适体
纳米技术
神经递质
体内
材料科学
场效应晶体管
寡核苷酸
神经化学
薄脆饼
晶体管
血清素
计算机科学
神经科学
化学
受体
生物
生物化学
电气工程
工程类
生物技术
电压
遗传学
DNA
作者
Chuanzhen Zhao,Kevin M. Cheung,Iwen Huang,Hongyan Yang,Nako Nakatsuka,Wenfei Liu,Yan Cao,Tianxing Man,Paul S. Weiss,Harold G. Monbouquette,Anne M. Andrews
出处
期刊:Science Advances
[American Association for the Advancement of Science (AAAS)]
日期:2021-11-24
卷期号:7 (48)
被引量:94
标识
DOI:10.1126/sciadv.abj7422
摘要
While tools for monitoring in vivo electrophysiology have been extensively developed, neurochemical recording technologies remain limited. Nevertheless, chemical communication via neurotransmitters plays central roles in brain information processing. We developed implantable aptamer–field-effect transistor (FET) neuroprobes for monitoring neurotransmitters. Neuroprobes were fabricated using high-throughput microelectromechanical system (MEMS) technologies, where 150 probes with shanks of either 150- or 50-μm widths and thicknesses were fabricated on 4-inch Si wafers. Nanoscale FETs with ultrathin (~3 to 4 nm) In2O3 semiconductor films were prepared using sol-gel processing. The In2O3 surfaces were coupled with synthetic oligonucleotide receptors (aptamers) to recognize and to detect the neurotransmitter serotonin. Aptamer-FET neuroprobes enabled femtomolar serotonin detection limits in brain tissue with minimal biofouling. Stimulated serotonin release was detected in vivo. This study opens opportunities for integrated neural activity recordings at high spatiotemporal resolution by combining these aptamer-FET sensors with other types of Si-based implantable probes to advance our understanding of brain function.
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