Callaghan Neal I, Hadipour-Lakmehsari Sina, Lee Shin-Haw, Gramolini Anthony O, Simmons Craig A
APL Bioeng. 2019 Feb 5;3(1):011501. doi: 10.1063/1.5055873. eCollection 2019 Mar.
Cardiomyopathies, heart failure, and arrhythmias or conduction blockages impact millions of patients worldwide and are associated with marked increases in sudden cardiac death, decline in the quality of life, and the induction of secondary pathologies. These pathologies stem from dysfunction in the contractile or conductive properties of the cardiomyocyte, which as a result is a focus of fundamental investigation, drug discovery and therapeutic development, and tissue engineering. All of these foci require myocardial models and experimental techniques to probe the physiological functions of the cardiomyocyte. In this review, we provide a detailed exploration of different cell models, disease modeling strategies, and tissue constructs used from basic to translational research. Furthermore, we highlight recent advancements in imaging, electrophysiology, metabolic measurements, and mechanical and contractile characterization modalities that are advancing our understanding of cardiomyocyte physiology. With this review, we aim to both provide a biological framework for engineers contributing to the field and demonstrate the technical basis and limitations underlying physiological measurement modalities for biologists attempting to take advantage of these state-of-the-art techniques.
心肌病、心力衰竭以及心律失常或传导阻滞影响着全球数百万患者,与心源性猝死显著增加、生活质量下降以及继发性病变的诱发有关。这些病变源于心肌细胞收缩或传导特性的功能障碍,因此成为基础研究、药物研发和治疗开发以及组织工程的重点。所有这些重点领域都需要心肌模型和实验技术来探究心肌细胞的生理功能。在本综述中,我们详细探讨了从基础研究到转化研究中使用的不同细胞模型、疾病建模策略和组织构建体。此外,我们强调了成像、电生理学、代谢测量以及机械和收缩特性表征方法方面的最新进展,这些进展正在加深我们对心肌细胞生理学的理解。通过本综述,我们旨在为该领域的工程师提供一个生物学框架,并向试图利用这些先进技术的生物学家展示生理测量方法的技术基础和局限性。