Translational investigation of electrophysiology in hypertrophic cardiomyopathy

Frederik Flenner1, Christiane Jungen2, Nadine Küpker3

  • 1Institute of Experimental Pharmacology and Toxicology, Cardiovascular Research Center, University Medical Center Hamburg-Eppendorf, Hamburg, Germany; DZHK (German Centre for Cardiovascular Research), partner site Hamburg/Kiel/Lübeck, Germany.

Insights

Hypertrophic cardiomyopathy (HCM) arrhythmias are linked to Mybpc3 mutations. Reduced K+ currents in mice promote arrhythmias, but this is not observed in human models, highlighting species differences.

Area of Science:

  • Cardiovascular Research
  • Molecular Cardiology
  • Arrhythmogenesis

Background:

  • Hypertrophic cardiomyopathy (HCM) increases risk of ventricular arrhythmias and sudden cardiac death.
  • Myofilament mutations in HCM models affect Ca2+ homeostasis and cardiac electrophysiology, potentially causing arrhythmias.
  • Myosin Binding Protein C (Mybpc3) mutations are a common cause of HCM.

Purpose of the Study:

  • To investigate arrhythmia mechanisms in a Mybpc3-related HCM mouse model (Mybpc3-KI).
  • To assess the translatability of findings to human engineered heart tissues (EHTs) and patient samples.
  • To explore the role of Ca2+ homeostasis and K+ currents in HCM-induced arrhythmias.

Main Methods:

  • Electrophysiological and contractility assessments in Mybpc3-KI mice (wild-type, heterozygous, homozygous).
  • Generation and analysis of human iPSC-derived EHTs with MYBPC3 mutations (MYBPC3hom).
  • Electrophysiological recordings from human HCM patient septal myectomy samples.

Main Results:

  • Homozygous Mybpc3-KI mice exhibited higher arrhythmia susceptibility, prolonged action potentials, and longer refractory periods, linked to reduced K+ currents.
  • Human MYBPC3hom EHTs showed increased spontaneous arrhythmic behavior but no significant changes in action potential duration or Ca2+ handling.
  • Human HCM patient samples, including one with a MYBPC3 mutation, did not show reduced K+ currents or altered action potentials compared to controls.

Conclusions:

  • Increased myofilament Ca2+ sensitivity alone is insufficient to induce arrhythmias in this Mybpc3-KI mouse model.
  • Reduced K+ currents may act as a pro-arrhythmic trigger in homozygous Mybpc3-KI mice, potentially early in disease stages.
  • Significant species differences exist between mouse and human HCM, emphasizing the need for human-based models and samples.