Electrophysiological and calcium-handling development during long-term culture of human-induced pluripotent stem cell-derived cardiomyocytes

2023-04-05 | journal article. A publication with affiliation to the University of Göttingen.

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​Electrophysiological and calcium-handling development during long-term culture of human-induced pluripotent stem cell-derived cardiomyocytes​
Seibertz, F.; Sutanto, H.; Dülk, R.; Pronto, J. R. D.; Springer, R.; Rapedius, M. & Liutkute, A. et al.​ (2023) 
Basic Research in Cardiology118(1) pp. 14​.​ DOI: https://doi.org/10.1007/s00395-022-00973-0 

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Authors
Seibertz, Fitzwilliam; Sutanto, Henry; Dülk, Rebekka; Pronto, Julius Ryan D.; Springer, Robin; Rapedius, Markus; Liutkute, Aiste; Ritter, Melanie; Jung, Philipp; Stelzer, Lea; Hüsgen, Luisa M.; Klopp, Marie; Rubio, Tony; Fakuade, Funsho E.; Mason, Fleur E.; Hartmann, Nico; Pabel, Steffen; Streckfuss-Bömeke, Katrin; Cyganek, Lukas ; Sossalla, Samuel; Heijman, Jordi; Voigt, Niels 
Abstract
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 Ca2+-handling properties in hiPSC-CM over long-term culture (30-80 days). hiPSC-CMs > 50 days post differentiation show significantly larger ICa,L density along with an increased ICa,L-triggered Ca2+-transient. INa and IK1 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 IK1 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 Ca2+-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.
Issue Date
5-April-2023
Journal
Basic Research in Cardiology 
Project
EXC 2067: Multiscale Bioimaging 
Organization
Institut für Pharmakologie und Toxikologie ; Deutsches Zentrum für Herz-Kreislauf-Forschung e.V. ; Klinik für Kardiologie und Pneumologie 
Working Group
RG Cyganek (Stem Cell Unit) 
RG Voigt (Molecular Pharmacology) 
eISSN
1435-1803
Language
English

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