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Updated: Apr 17, 2026

Technical Applications of Microelectrode Array and Patch Clamp Recordings on Human Induced Pluripotent Stem Cell-Derived Cardiomyocytes
Published on: August 4, 2022
Ion channelopathies in human induced pluripotent stem cell derived cardiomyocytes: a dynamic clamp study with virtual
Rosalie M E Meijer van Putten1, Isabella Mengarelli2, Kaomei Guan3
1Department of Anatomy, Embryology and Physiology, Academic Medical Center, University of Amsterdam Amsterdam, Netherlands.
Insights
Human induced pluripotent stem cell derived cardiomyocytes (hiPSC-CMs) were modified with an in silico inward rectifier potassium current (IK1) to better model cardiac arrhythmias. This approach successfully normalized their action potential profile, improving their utility for arrhythmia research.
Area of Science:
- Cardiovascular Research
- Stem Cell Biology
- Computational Biology
Background:
- Human induced pluripotent stem cell derived cardiomyocytes (hiPSC-CMs) are crucial for studying cardiac arrhythmias.
- hiPSC-CMs lack significant inward rectifier potassium current (IK1), leading to action potential profiles that differ from native cardiomyocytes.
Purpose of the Study:
- To normalize the action potential profile of hiPSC-CMs by incorporating an in silico IK1.
- To create a more accurate model for studying ion channelopathies and cardiac arrhythmias.
Main Methods:
- Utilized the dynamic clamp technique with perforated patch clamp at physiological temperature.
- Inserted three distinct in silico IK1 models into hiPSC-CMs with negligible endogenous IK1.
- Modified IK1 to simulate loss- and gain-of-function mutations in the KCNJ2 gene.
Main Results:
- In silico IK1 injection (4-6 pA/pF) resulted in ventricular-like action potentials (RMP ~ -80 mV, Vmax >150 V/s).
- Simulated loss- and gain-of-function IK1 mutations induced proarrhythmic changes, mimicking Andersen-Tawil syndrome and short QT syndrome.
Conclusions:
- In silico IK1 effectively normalizes hiPSC-CM action potential morphology.
- This enhanced hiPSC-CM model provides a more reliable platform for investigating cardiac arrhythmia mechanisms.
Abstract:
Human induced pluripotent stem cell derived cardiomyocytes (hiPSC-CMs) are widely used in studying basic mechanisms of cardiac arrhythmias that are caused by ion channelopathies. Unfortunately, the action potential profile of hiPSC-CMs-and consequently the profile of individual membrane currents active during that action potential-differs substantially from that of native human cardiomyocytes, largely due to almost negligible expression of the inward rectifier potassium current (IK1). In the present study, we attempted to "normalize" the action potential profile of our hiPSC-CMs by inserting a voltage dependent in silico IK1 into our hiPSC-CMs, using the dynamic clamp configuration of the patch clamp technique. Recordings were made from single hiPSC-CMs, using the perforated patch clamp technique at physiological temperature. We assessed three different models of IK1, with different degrees of inward rectification, and systematically varied the magnitude of the inserted IK1. Also, we modified the inserted IK1 in order to assess the effects of loss- and gain-of-function mutations in the KCNJ2 gene, which encodes the Kir2.1 protein that is primarily responsible for the IK1 channel in human ventricle. For our experiments, we selected spontaneously beating hiPSC-CMs, with negligible IK1 as demonstrated in separate voltage clamp experiments, which were paced at 1 Hz. Upon addition of in silico IK1 with a peak outward density of 4-6 pA/pF, these hiPSC-CMs showed a ventricular-like action potential morphology with a stable resting membrane potential near -80 mV and a maximum upstroke velocity >150 V/s (n = 9). Proarrhythmic action potential changes were observed upon injection of both loss-of-function and gain-of-function IK1, as associated with Andersen-Tawil syndrome type 1 and short QT syndrome type 3, respectively (n = 6). We conclude that injection of in silico IK1 makes the hiPSC-CM a more reliable model for investigating mechanisms underlying cardiac arrhythmias.
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