Effects of pinacidil on reentrant arrhythmias generated during acute regional ischemia: a simulation study

Beatriz Trénor1, José M Ferrero, Blanca Rodríguez

  • 1Centro de Investigación e Innovación en Bioingeniería, Departamento de Ingeniería Electrónica, Universidad Politècnica de Valencia, Camino de Vera s/n, 46022 Valencia, Spain.

Insights

Potassium channel openers (KCOs) like pinacidil show dose-dependent effects on heart arrhythmia during ischemia. Low pinacidil doses increase arrhythmia risk, while high doses act as an antiarrhythmic agent.

Area of Science:

  • Cardiovascular Physiology
  • Computational Biology
  • Pharmacology

Background:

  • Potassium channel openers (KCOs) activate ATP-sensitive potassium current (IK(ATP)), shortening action potential duration (APD).
  • Myocardial ischemia causes electrophysiological inhomogeneities, creating substrate for malignant arrhythmias.
  • The arrhythmogenic effects of KCOs during ischemia remain controversial.

Purpose of the Study:

  • To analyze the effect of the KCO pinacidil on reentry vulnerability during acute regional ischemia.
  • To investigate the dose-dependent impact of pinacidil on arrhythmogenesis using computer simulations.

Main Methods:

  • Utilized a two-dimensional virtual heart tissue model.
  • Implemented acute regional ischemia conditions.
  • Employed a modified Luo-Rudy (phase II) action potential model incorporating pinacidil's effect on IK(ATP).
  • Quantified the vulnerable window (VW) for reentry at various pinacidil concentrations.

Main Results:

  • Pinacidil's effect on VW is dose-dependent.
  • For pinacidil doses < 3 micromol/l, the VW widens with increasing concentration.
  • For pinacidil doses > 10 micromol/l, the VW decreases, becoming zero.
  • Explored ionic mechanisms underlying these dose-dependent effects.

Conclusions:

  • Pinacidil's effect on arrhythmogenesis during ischemia is strongly dose-dependent.
  • High doses of pinacidil (> 10 micromol/l) demonstrate a significant antiarrhythmic effect.
  • Computer simulations provide insights into KCOs' complex role in cardiac electrophysiology during ischemia.

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