Leak current, even with gigaohm seals, can cause misinterpretation of stem cell-derived cardiomyocyte action potential recordings

Author:

Clark Alexander P1ORCID,Clerx Michael2ORCID,Wei Siyu3ORCID,Lei Chon Lok45ORCID,de Boer Teun P6ORCID,Mirams Gary R2ORCID,Christini David J13ORCID,Krogh-Madsen Trine78ORCID

Affiliation:

1. Department of Biomedical Engineering, Cornell University , Ithaca, NY , USA

2. Centre for Mathematical Medicine and Biology, School of Mathematical Sciences, University of Nottingham , Nottingham , UK

3. Department of Physiology and Pharmacology, SUNY Downstate Health Sciences University , Brooklyn, NY , USA

4. Institute of Translational Medicine, Faculty of Health Sciences, University of Macau , Macau , China

5. Department of Biomedical Sciences, Faculty of Health Sciences, University of Macau , Macau , China

6. Department of Medical Physiology, Division of Heart and Lungs, University Medical Center Utrecht , Utrecht , The Netherlands

7. Department of Physiology and Biophysics, Weill Cornell Medicine , 1300 York Avenue, Box 75, Room C501D, New York, 10065 NY , USA

8. Institute for Computational Biomedicine, Weill Cornell Medicine , 1300 York Avenue, Box 75, Room C501D, New York, 10065 NY , USA

Abstract

Abstract Aims Human-induced pluripotent stem cell-derived cardiomyocytes (iPSC-CMs) have become an essential tool to study arrhythmia mechanisms. Much of the foundational work on these cells, as well as the computational models built from the resultant data, has overlooked the contribution of seal–leak current on the immature and heterogeneous phenotype that has come to define these cells. The aim of this study is to understand the effect of seal–leak current on recordings of action potential (AP) morphology. Methods and results Action potentials were recorded in human iPSC-CMs using patch clamp and simulated using previously published mathematical models. Our in silico and in vitro studies demonstrate how seal–leak current depolarizes APs, substantially affecting their morphology, even with seal resistances (Rseal) above 1 GΩ. We show that compensation of this leak current is difficult due to challenges with obtaining accurate measures of Rseal during an experiment. Using simulation, we show that Rseal measures (i) change during an experiment, invalidating the use of pre-rupture values, and (ii) are polluted by the presence of transmembrane currents at every voltage. Finally, we posit that the background sodium current in baseline iPSC-CM models imitates the effects of seal–leak current and is increased to a level that masks the effects of seal–leak current on iPSC-CMs. Conclusion Based on these findings, we make recommendations to improve iPSC-CM AP data acquisition, interpretation, and model-building. Taking these recommendations into account will improve our understanding of iPSC-CM physiology and the descriptive ability of models built from such data.

Funder

National Heart, Lung, and Blood Institute

Wellcome Trust

University of Macau via a UM Macao Fellowship

Science and Technology Development Fund

MKMD

Netherlands Organization for Health Research and Development

Publisher

Oxford University Press (OUP)

Subject

Physiology (medical),Cardiology and Cardiovascular Medicine

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