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April 24, 2026European Heart Journal389 citationsOpen Access

Drug evaluation in cardiomyocytes derived from human induced pluripotent stem cells carrying a long QT syndrome type 2 mutation

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EMElena MatsaDRDivya RajamohanEDEmily Dick

Key Result

Patient LQT2-hiPSC cardiomyocytes respond appropriately to clinically relevant pharmacology, serving as a valuable human in vitro model for testing experimental drug combinations.

Key Points

  • To develop a novel in vitro drug-evaluation system for long QT syndrome type 2 using human induced pluripotent stem cells.
  • Skin fibroblasts were reprogrammed to human induced pluripotent stem cells (hiPSCs) carrying KCNH2 G1681A mutation.
  • hiPSCs were differentiated into functional cardiomyocytes and evaluated using multi-electrode array and patch-clamp techniques.
  • Cardiomyocytes were exposed to various pharmacological agents including E4031, isoprenaline, propranolol, and nicorandil.
  • LQT2-hiPSC cardiomyocytes showed prolonged action potential duration compared to controls (p<0.05).
  • E4031 exposure caused early after depolarizations in LQT2-hiPSC cardiomyocytes (p<0.01).
  • Combination treatment with isoprenaline and potassium channel enhancers also resulted in early after depolarizations, reversible by nadolol (p<0.01).

Structured PICO

P
Population
Cardiomyocytes derived from human induced pluripotent stem cells carrying a long QT syndrome type 2 mutation (LQT2-hiPSC)
I
Intervention
Clinically relevant pharmacology and experimental drug combinations
O
Outcome
Pharmacological responsesurrogate

Patient-derived LQT2-hiPSC cardiomyocytes can serve as a valuable in vitro model for testing experimental drug combinations.

Abstract

AIMS: Congenital long QT syndromes (LQTSs) are associated with prolonged ventricular repolarization and sudden cardiac death. Limitations to existing clinical therapeutic management strategies prompted us to develop a novel human in vitro drug-evaluation system for LQTS type 2 (LQT2) that will complement the existing in vitro and in vivo models. METHODS AND RESULTS: Skin fibroblasts from a patient with a KCNH2 G1681A mutation (encodes I(Kr) potassium ion channel) were reprogrammed to human induced pluripotent stem cells (hiPSCs), which were subsequently differentiated to functional cardiomyocytes. Relative to controls (including the patient's mother), multi-electrode array and patch-clamp electrophysiology of LQT2-hiPSC cardiomyocytes showed prolonged field/action potential duration. When LQT2-hiPSC cardiomyocytes were exposed to E4031 (an I(Kr) blocker), arrhythmias developed and these presented as early after depolarizations (EADs) in the action potentials. In contrast to control cardiomyocytes, LQT2-hiPSC cardiomyocytes also developed EADs when challenged with the clinically used stressor, isoprenaline. This effect was reversed by β-blockers, propranolol, and nadolol, the latter being used for the patient's therapy. Treatment of cardiomyocytes with experimental potassium channel enhancers, nicorandil and PD118057, caused action potential shortening and in some cases could abolish EADs. Notably, combined treatment with isoprenaline (enhancers/isoprenaline) caused EADs, but this effect was reversed by nadolol. CONCLUSIONS: Findings from this paper demonstrate that patient LQT2-hiPSC cardiomyocytes respond appropriately to clinically relevant pharmacology and will be a valuable human in vitro model for testing experimental drug combinations.

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Cite This Study

Matsa et al. (2011) studied this question. Patient LQT2-hiPSC cardiomyocytes respond appropriately to clinically relevant pharmacology, serving as a valuable human in vitro model for testing experimental drug combinations.

synapsesocial.com/papers/69eb89e439a85df273859a13https://doi.org/10.1093/eurheartj/ehr073
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