Correlation between human ether-a-go-go-related gene channel inhibition and action potential prolongation

P Saxena1,2, M P Hortigon-Vinagre2,3, S Beyl1

  • 1Institute of Pharmacology and Toxicology, University of Vienna, Vienna, Austria.

Insights

hERG channel inhibition predicts cardiac arrhythmia risk, but other ion channel effects can alter this. This study found hERG current block correlates with action potential duration changes in heart cells, but additional CaV1.2 and NaV1.5 channel block can modify outcomes.

Area of Science:

  • Cardiovascular Pharmacology
  • Cardiac Electrophysiology
  • Drug Safety Assessment

Background:

  • hERG channel inhibition is a key predictor of cardiac arrhythmia risk.
  • hERG inhibition alone is often insufficient to predict pro-arrhythmic drug effects.
  • Investigating drug effects on cardiac ion channels is crucial for drug safety.

Purpose of the Study:

  • To investigate the relationship between hERG current block and action potential duration (APD) changes in human-induced pluripotent stem cell-derived cardiomyocytes (hiPSC-CMs).
  • To assess the impact of concomitant block of Cav 1.2 and Nav 1.5 channels on APD.
  • To validate findings using an in silico action potential model.

Main Methods:

  • Assessed drug-induced APD changes in hiPSC-CMs using voltage-sensitive dyes.
  • Estimated IC50 values for dofetilide derivatives on hERG current in an HEK293 expression system.
  • Calculated the dose (D150) required to prolong APD90 by 50% to estimate relative potency.

Main Results:

  • A linear correlation was observed between D150 in hiPSC-CMs and hERG current IC50 values.
  • Three derivatives that inhibited hERG did not prolong APD, showing additional Cav 1.2 and/or Nav 1.5 channel inhibition.
  • In silico simulations supported the correlation and demonstrated the principle of multiple ion channel effects.

Conclusions:

  • hERG current inhibition potency correlates linearly with APD changes in hiPSC-CMs.
  • Compounds with additional Cav 1.2 and/or Nav 1.5 channel block deviate from this correlation.
  • In silico models confirm the influence of multiple ion channel interactions on cardiac action potentials.
Abstract

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