Gao Hongyan, Yang Feiyu, Sattari Kianoosh, Du Xian, Fu Tianda, Fu Shuai, Liu Xiaomeng, Lin Jian, Sun Yubing, Yao Jun
Department of Electrical and Computer Engineering, University of Massachusetts, Amherst, Amherst, MA 01003, USA.
Department of Mechanical and Industrial Engineering, University of Massachusetts, Amherst, Amherst, MA 01003, USA.
Sci Adv. 2022 Aug 26;8(34):eabn2485. doi: 10.1126/sciadv.abn2485. Epub 2022 Aug 24.
The excitation-contraction dynamics in cardiac tissue are the most important physiological parameters for assessing developmental state. We demonstrate integrated nanoelectronic sensors capable of simultaneously probing electrical and mechanical cellular responses. The sensor is configured from a three-dimensional nanotransistor with its conduction channel protruding out of the plane. The structure promotes not only a tight seal with the cell for detecting action potential via field effect but also a close mechanical coupling for detecting cellular force via piezoresistive effect. Arrays of nanotransistors are integrated to realize label-free, submillisecond, and scalable interrogation of correlated cell dynamics, showing advantages in tracking and differentiating cell states in drug studies. The sensor can further decode vector information in cellular motion beyond typical scalar information acquired at the tissue level, hence offering an improved tool for cell mechanics studies. The sensor enables not only improved bioelectronic detections but also reduced invasiveness through the two-in-one converging integration.
心脏组织中的兴奋-收缩动力学是评估发育状态的最重要生理参数。我们展示了能够同时探测细胞电反应和机械反应的集成纳米电子传感器。该传感器由一个三维纳米晶体管构成,其导电通道突出于平面之外。这种结构不仅促进了与细胞的紧密密封,以便通过场效应检测动作电位,还实现了紧密的机械耦合,以便通过压阻效应检测细胞力。集成纳米晶体管阵列可实现对相关细胞动力学的无标记、亚毫秒级和可扩展检测,在药物研究中跟踪和区分细胞状态方面显示出优势。该传感器不仅可以解码细胞运动中的矢量信息,而不仅仅是在组织水平获取的典型标量信息,从而为细胞力学研究提供了一种改进的工具。该传感器不仅能够实现更好的生物电子检测,还通过二合一的融合集成降低了侵入性。