Determinants of reperfusion arrhythmias: action potential duration versus dispersion of repolarization

O G Bernikova1, A V Durkina2, K A Sedova3

  • 1Department of Cardiac Physiology, Institute of Physiology, Komi Science Center, Ural Branch, Russian Academy of Sciences, Syktyvkar, Russia. bernikovaog@gmail.com.

Insights

Action potential duration in the perfused zone, not repolarization dispersion, significantly contributes to ventricular arrhythmias during ischemia-reperfusion. This finding advances understanding of cardiac electrical instability.

Area of Science:

  • Cardiovascular Physiology
  • Cardiac Electrophysiology
  • Arrhythmogenesis Research

Background:

  • The precise role of the border zone in arrhythmogenesis remains unclear.
  • Understanding factors contributing to ventricular tachycardia/fibrillation (VT/VF) is critical for managing cardiac ischemia.

Purpose of the Study:

  • To investigate the independent contributions of action potential duration (APD) and dispersion of repolarization (DOR) across the normal/ischemic border to VT/VF.
  • To elucidate the arrhythmogenic potential of APD versus DOR in an ischemia-reperfusion model.

Main Methods:

  • Induction of ischemia-reperfusion in rats via transient coronary occlusion.
  • Recording unipolar electrograms from ischemic and perfused zones using a 64-lead array.
  • Pharmacological manipulation of APD and DOR using pinacidil and glibenclamide.

Main Results:

  • APD shortened in the ischemic zone, DOR increased, and VT/VF occurred in control animals.
  • Glibenclamide (prolonged APD, reduced DOR) and pinacidil (shortened APD, reduced DOR) modulated electrophysiological parameters.
  • Pinacidil treatment significantly reduced VT/VF incidence, with extrasystolic burden correlating with VT/VF.

Conclusions:

  • Action potential duration in the perfused zone emerged as a more significant arrhythmogenic factor than DOR in this ischemia-reperfusion model.
  • These findings highlight the critical role of APD in the non-ischemic border zone in promoting cardiac arrhythmias.

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