接口
晶体管
材料科学
可扩展性
电生理学
心脏电生理学
细胞内
信号(编程语言)
纳米技术
计算机科学
神经科学
物理
生物
电压
计算机硬件
细胞生物学
数据库
程序设计语言
量子力学
作者
Yue Gu,Chunfeng Wang,Nam-Heon Kim,Jingxin Zhang,Tsui-Min Wang,Jennifer Stowe,Rohollah Nasiri,Jinfeng Li,Daibo Zhang,Albert Yang,Leo Huan-Hsuan Hsu,Xiaochuan Dai,Jing Mu,Zheyuan Liu,Muyang Lin,Weixin Li,Chonghe Wang,Hua Gong,Yimu Chen,Yusheng Lei
标识
DOI:10.1038/s41565-021-01040-w
摘要
Electrical impulse generation and its conduction within cells or cellular networks are the cornerstone of electrophysiology. However, the advancement of the field is limited by sensing accuracy and the scalability of current recording technologies. Here we describe a scalable platform that enables accurate recording of transmembrane potentials in electrogenic cells. The platform employs a three-dimensional high-performance field-effect transistor array for minimally invasive cellular interfacing that produces faithful recordings, as validated by the gold standard patch clamp. Leveraging the high spatial and temporal resolutions of the field-effect transistors, we measured the intracellular signal conduction velocity of a cardiomyocyte to be 0.182 m s−1, which is about five times the intercellular velocity. We also demonstrate intracellular recordings in cardiac muscle tissue constructs and reveal the signal conduction paths. This platform could provide new capabilities in probing the electrical behaviours of single cells and cellular networks, which carries broad implications for understanding cellular physiology, pathology and cell–cell interactions. A three-dimensional field-effect transistor array produced via compressive buckling enables accurate and minimally invasive intra- and intercellular recordings in cells and cellular networks.
科研通智能强力驱动
Strongly Powered by AbleSci AI