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Updated: Jul 10, 2025

Isolation and Functional Characterization of Human Ventricular Cardiomyocytes from Fresh Surgical Samples
Published on: April 21, 2014
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.
Aims:
The mechanisms of transition from regular rhythms to ventricular fibrillation (VF) are poorly understood. The concordant to discordant repolarization alternans pathway is extensively studied; however, despite its theoretical centrality, cannot guide ablation. We hypothesize that complex repolarization dynamics, i.e. oscillations in the repolarization phase of action potentials with periods over two of classic alternans, is a marker of electrically unstable substrate, and ablation of these areas has a stabilizing effect and may reduce the risk of VF. To prove the existence of higher-order periodicities in human hearts.
Methods And Results:
We performed optical mapping of explanted human hearts obtained from recipients of heart transplantation at the time of surgery. Signals recorded from the right ventricle endocardial surface were processed to detect global and local repolarization dynamics during rapid pacing. A statistically significant global 1:4 peak was seen in three of six hearts. Local (pixel-wise) analysis revealed the spatially heterogeneous distribution of Periods 4, 6, and 8, with the regional presence of periods greater than two in all the hearts. There was no significant correlation between the underlying restitution properties and the period of each pixel.
Conclusion:
We present evidence of complex higher-order periodicities and the co-existence of such regions with stable non-chaotic areas in ex vivo human hearts. We infer that the oscillation of the calcium cycling machinery is the primary mechanism of higher-order dynamics. These higher-order regions may act as niduses of instability and may provide targets for substrate-based ablation of VF.
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