Pesl Martin, Pribyl Jan, Caluori Guido, Cmiel Vratislav, Acimovic Ivana, Jelinkova Sarka, Dvorak Petr, Starek Zdenek, Skladal Petr, Rotrekl Vladimir
Department of Biology, Faculty of Medicine, Masaryk University, Brno, Czech Republic.
ICRC, St. Anne's University Hospital, Brno, Czech Republic.
J Mol Recognit. 2017 Jun;30(6). doi: 10.1002/jmr.2602. Epub 2016 Dec 20.
Stem cell-derived cardiomyocytes (CMs) hold great hopes for myocardium regeneration because of their ability to produce functional cardiac cells in large quantities. They also hold promise in dissecting the molecular principles involved in heart diseases and also in drug development, owing to their ability to model the diseases using patient-specific human pluripotent stem cell (hPSC)-derived CMs. The CM properties essential for the desired applications are frequently evaluated through morphologic and genotypic screenings. Even though these characterizations are necessary, they cannot in principle guarantee the CM functionality and their drug response. The CM functional characteristics can be quantified by phenotype assays, including electrophysiological, optical, and/or mechanical approaches implemented in the past decades, especially when used to investigate responses of the CMs to known stimuli (eg, adrenergic stimulation). Such methods can be used to indirectly determine the electrochemomechanics of the cardiac excitation-contraction coupling, which determines important functional properties of the hPSC-derived CMs, such as their differentiation efficacy, their maturation level, and their functionality. In this work, we aim to systematically review the techniques and methodologies implemented in the phenotype characterization of hPSC-derived CMs. Further, we introduce a novel approach combining atomic force microscopy, fluorescent microscopy, and external electrophysiology through microelectrode arrays. We demonstrate that this novel method can be used to gain unique information on the complex excitation-contraction coupling dynamics of the hPSC-derived CMs.
干细胞衍生的心肌细胞(CMs)因其能够大量产生功能性心脏细胞而给心肌再生带来了巨大希望。由于它们能够使用患者特异性人类多能干细胞(hPSC)衍生的CMs对疾病进行建模,因此在剖析心脏病相关分子原理以及药物开发方面也具有前景。所需应用所必需的CM特性通常通过形态学和基因型筛选来评估。尽管这些表征是必要的,但原则上它们无法保证CM的功能及其药物反应。CM的功能特性可以通过表型分析来量化,包括过去几十年实施的电生理、光学和/或机械方法,特别是在用于研究CM对已知刺激(如肾上腺素能刺激)的反应时。这些方法可用于间接确定心脏兴奋 - 收缩偶联的电化学力学,这决定了hPSC衍生CM的重要功能特性,如它们的分化效率、成熟水平和功能。在这项工作中,我们旨在系统地综述hPSC衍生CM表型表征中实施的技术和方法。此外,我们介绍了一种通过微电极阵列结合原子力显微镜、荧光显微镜和外部电生理学的新方法。我们证明,这种新方法可用于获取有关hPSC衍生CM复杂兴奋 - 收缩偶联动力学的独特信息。