Institute of Pharmacology and Toxicology, University Medical Center Göttingen, Georg-August University Göttingen, Universitätsmedizin Göttingen, Robert-Koch-Straße 40, 37075, Göttingen, Germany.
DZHK (German Center for Cardiovascular Research), Partner Site Göttingen, Göttingen, Germany.
Basic Res Cardiol. 2023 Apr 5;118(1):14. doi: 10.1007/s00395-022-00973-0.
Human-induced pluripotent stem cell-derived cardiomyocytes (hiPSC-CMs) are increasingly used for personalised medicine and preclinical cardiotoxicity testing. Reports on hiPSC-CM commonly describe heterogenous functional readouts and underdeveloped or immature phenotypical properties. Cost-effective, fully defined monolayer culture is approaching mainstream adoption; however, the optimal age at which to utilise hiPSC-CM is unknown. In this study, we identify, track and model the dynamic developmental behaviour of key ionic currents and Ca-handling properties in hiPSC-CM over long-term culture (30-80 days). hiPSC-CMs > 50 days post differentiation show significantly larger I density along with an increased I-triggered Ca-transient. I and I densities significantly increase in late-stage cells, contributing to increased upstroke velocity and reduced action potential duration, respectively. Importantly, our in silico model of hiPSC-CM electrophysiological age dependence confirmed I as the key ionic determinant of action potential shortening in older cells. We have made this model available through an open source software interface that easily allows users to simulate hiPSC-CM electrophysiology and Ca-handling and select the appropriate age range for their parameter of interest. This tool, together with the insights from our comprehensive experimental characterisation, could be useful in future optimisation of the culture-to-characterisation pipeline in the field of hiPSC-CM research.
人诱导多能干细胞衍生的心肌细胞(hiPSC-CMs)越来越多地用于个性化医学和临床前心脏毒性测试。关于 hiPSC-CM 的报告通常描述了功能异质性读出和发育不良或不成熟的表型特征。具有成本效益的、完全定义的单层培养方法正逐渐被主流采用;然而,利用 hiPSC-CM 的最佳年龄尚不清楚。在这项研究中,我们在长期培养(30-80 天)过程中识别、跟踪和模拟 hiPSC-CM 中关键离子电流和 Ca 处理特性的动态发育行为。分化后超过 50 天的 hiPSC-CMs 显示出 I 密度显著增加,同时 I 触发的 Ca 瞬变增加。晚期细胞中 I 和 I 密度显著增加,分别导致上升速度增加和动作电位持续时间缩短。重要的是,我们对 hiPSC-CM 电生理年龄依赖性的计算模型证实,I 是导致老年细胞动作电位缩短的关键离子决定因素。我们通过开源软件接口提供了这个模型,该接口可以方便地让用户模拟 hiPSC-CM 的电生理和 Ca 处理,并选择其感兴趣的参数的适当年龄范围。这个工具,以及我们对全面实验特征的深入了解,可能有助于未来优化 hiPSC-CM 研究领域的培养至特征化管道。