Complex repolarization dynamics in ex vivo human ventricles are independent of the restitution properties

Shahriar Iravanian1, Ilija Uzelac2, Anand D Shah1

  • 1Department of Medicine, Division of Cardiology, Emory University School of Medicine, 1364 Clifton Road, Atlanta, GA 30322, USA.

Insights

Complex repolarization dynamics, identified as higher-order periodicities, were found in human hearts. These unstable regions may guide ablation strategies to prevent ventricular fibrillation (VF).

Area of Science:

  • Cardiovascular Electrophysiology
  • Cardiac Arrhythmia Mechanisms
  • Computational Biology

Background:

  • Ventricular fibrillation (VF) mechanisms remain unclear, limiting effective ablation strategies.
  • Current models like repolarization alternans do not fully explain VF initiation.
  • A need exists for identifying and targeting electrically unstable substrates in the heart.

Purpose of the Study:

  • To investigate complex repolarization dynamics beyond classic alternans in human hearts.
  • To determine if higher-order periodicities are markers of electrical instability.
  • To assess the potential of targeting these regions for VF ablation.

Main Methods:

  • Optical mapping of explanted human hearts during rapid pacing.
  • Analysis of endocardial repolarization dynamics from the right ventricle.
  • Detection of global and local repolarization periodicities using pixel-wise analysis.

Main Results:

  • Higher-order periodicities (Periods 4, 6, 8) were observed in human hearts.
  • Spatially heterogeneous distribution of these complex dynamics was evident.
  • No significant correlation was found between restitution properties and detected periodicities.

Conclusions:

  • Evidence of complex higher-order periodicities co-existing with stable regions in human hearts.
  • Oscillations in calcium cycling machinery are inferred as the mechanism for higher-order dynamics.
  • These regions represent potential targets for substrate-based ablation to reduce VF risk.
Abstract

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