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.

Frontiers in Physiology
|December 28, 2023
PubMed

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.