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Updated: Jul 7, 2025

Voltage-Dependent Potassium Current Recording on H9c2 Cardiomyocytes via the Whole-Cell Patch-Clamp Technique
Published on: November 11, 2022
Injection of IK1 through dynamic clamp can make all the difference in patch-clamp studies on hiPSC-derived
Arie O Verkerk1,2, Ronald Wilders1
1Department of Medical Biology, Amsterdam Cardiovascular Sciences, Amsterdam UMC, University of Amsterdam, Amsterdam, Netherlands.
Insights
The dynamic clamp technique improves human-induced stem cell-derived cardiomyocytes (hiPSC-CMs) by mimicking the inward rectifier potassium current (IK1). This method yields quiescent hiPSC-CMs with physiological resting potentials, crucial for accurate ion channel studies.
Area of Science:
- Cardiology
- Biomedical Engineering
- Stem Cell Biology
Background:
- Human-induced stem cell-derived cardiomyocytes (hiPSC-CMs) are vital research tools but exhibit immature, spontaneously active properties.
- Achieving quiescent hiPSC-CMs with physiological resting membrane potentials remains a significant challenge in cardiac research.
Purpose of the Study:
- To evaluate the utility of the dynamic clamp technique in improving hiPSC-CM electrophysiology for research applications.
- To assess the dynamic clamp's effectiveness in studying cardiac ion channel function and genetic mutations.
Main Methods:
- Utilized the dynamic clamp technique to inject a simulated inward rectifier potassium current (IK1) into patch-clamped hiPSC-CMs.
- Performed in vitro and in silico experiments to analyze action potentials and ion channel availability.
- Investigated the effects of dynamic clamp on hiPSC-CMs with mutations in SCN5A, ACADVL, and GNB5.
Main Results:
- The dynamic clamp technique successfully induced quiescent hiPSC-CMs with near-physiological resting membrane potentials.
- This technique enabled accurate measurements of ion channel function, including the cardiac SCN5A-encoded fast sodium current (INa).
- Dynamic clamp proved valuable in detecting afterdepolarizations and analyzing factors affecting resting membrane potential in mutated hiPSC-CMs.
Conclusions:
- The dynamic clamp technique offers significant advantages for patch-clamp studies using hiPSC-CMs.
- It is a valuable tool for dissecting the functional consequences of cardiac mutations and improving the physiological relevance of hiPSC-CM models.
- Widespread adoption of dynamic clamp is recommended while pursuing fully mature hiPSC-CMs.
Abstract:
Human-induced stem cell-derived cardiomyocytes (hiPSC-CMs) are a valuable tool for studying development, pharmacology, and (inherited) arrhythmias. Unfortunately, hiPSC-CMs are depolarized and spontaneously active, even the working cardiomyocyte subtypes such as atrial- and ventricular-like hiPSC-CMs, in contrast to the situation in the atria and ventricles of adult human hearts. Great efforts have been made, using many different strategies, to generate more mature, quiescent hiPSC-CMs with more close-to-physiological resting membrane potentials, but despite promising results, it is still difficult to obtain hiPSC-CMs with such properties. The dynamic clamp technique allows to inject a current with characteristics of the inward rectifier potassium current (IK1), computed in real time according to the actual membrane potential, into patch-clamped hiPSC-CMs during action potential measurements. This results in quiescent hiPSC-CMs with a close-to-physiological resting membrane potential. As a result, action potential measurements can be performed with normal ion channel availability, which is particularly important for the physiological functioning of the cardiac SCN5A-encoded fast sodium current (INa). We performed in vitro and in silico experiments to assess the beneficial effects of the dynamic clamp technique in dissecting the functional consequences of the SCN5A-1795insD+/- mutation. In two separate sets of patch-clamp experiments on control hiPSC-CMs and on hiPSC-CMs with mutations in ACADVL and GNB5, we assessed the value of dynamic clamp in detecting delayed afterdepolarizations and in investigating factors that modulate the resting membrane potential. We conclude that the dynamic clamp technique has highly beneficial effects in all of the aforementioned settings and should be widely used in patch-clamp studies on hiPSC-CMs while waiting for the ultimate fully mature hiPSC-CMs.
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