Department of Biomedical Engineering, Biosensor National Special Laboratory, Key Laboratory for Biomedical Engineering of Education Ministry, Zhejiang University, Hangzhou, 310027, China.
State Key Laboratory of Transducer Technology, Chinese Academy of Sciences, Shanghai, 200050, China.
Small. 2020 Dec;16(50):e2005828. doi: 10.1002/smll.202005828. Epub 2020 Nov 23.
Cardiovascular disease is currently a leading killer to human, while drug-induced cardiotoxicity remains the main cause of the withdrawal and attrition of drugs. Taking clinical correlation and throughput into account, cardiomyocyte is perfect as in vitro cardiac model for heart disease modeling, drug discovery, and cardiotoxicity assessment by accurately measuring the physiological multiparameters of cardiomyocytes. Remarkably, cardiomyocytes present both electrophysiological and biomechanical characteristics due to the unique excitation-contraction coupling, which plays a significant role in studying the cardiomyocytes. This review mainly focuses on the recent advances of biosensing technologies for the 2D and 3D cardiac models with three special properties: electrophysiology, mechanical motion, and contractile force. These high-performance multidimensional cardiac models are popular and effective to rebuild and mimic the heart in vitro. To help understand the high-quality and accurate physiologies, related detection techniques are highly demanded, from microtechnology to nanotechnology, from extracellular to intracellular recording, from multiple cells to single cell, and from planar to 3D models. Furthermore, the characteristics, advantages, limitations, and applications of these cardiac biosensing technologies, as well as the future development prospects should contribute to the systematization and expansion of knowledge.
心血管疾病是目前人类的主要杀手,而药物诱导的心脏毒性仍然是药物撤市和淘汰的主要原因。考虑到临床相关性和通量,心肌细胞是体外心脏模型的理想选择,可用于心脏病建模、药物发现和心脏毒性评估,能够准确测量心肌细胞的生理多参数。值得注意的是,由于独特的兴奋-收缩耦联,心肌细胞具有电生理和生物力学特性,在研究心肌细胞方面发挥着重要作用。本综述主要关注 2D 和 3D 心脏模型的生物传感技术的最新进展,这些技术具有三个特殊特性:电生理学、机械运动和收缩力。这些高性能多维心脏模型在体外重建和模拟心脏方面非常流行且有效。为了帮助理解高质量和准确的生理学,需要从微技术到纳米技术、从细胞外到细胞内记录、从多个细胞到单细胞、从平面到 3D 模型等相关检测技术。此外,这些心脏生物传感技术的特点、优点、局限性和应用以及未来的发展前景有助于知识的系统化和扩展。