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Published on: May 26, 2015
Critical phase transitions during ablation of atrial fibrillation
Shahriar Iravanian1, Jonathan J Langberg1
1Emory University Hospital, 1364 Clifton Road, NE, Ste F-414, Atlanta, Georgia 30322, USA.
Insights
Atrial fibrillation (AF) ablation can trigger sudden rhythm organization, transitioning from chaotic activity to organized flutter. This phase transition phenomenon offers a new perspective for developing more effective ablation strategies.
Area of Science:
- Cardiology
- Computational Biology
- Complex Systems Physics
Background:
- Atrial fibrillation (AF) is a common arrhythmia with high morbidity and mortality.
- Current pharmacological treatments for AF are often ineffective.
- Ablation procedures are the primary treatment for AF, targeting the underlying chaotic electrical activity.
Purpose of the Study:
- To investigate the hypothesis that rhythm organization during AF ablation represents a critical phase transition.
- To explore the dynamics of AF to flutter transitions using computational modeling.
Main Methods:
- Simulated ablation in an anatomically-correct 3D model of atrial fibrillation.
- Analysis of rhythm organization, cycle length entropy, wavelet number, and correlation length scale during simulated ablations.
Main Results:
- Sudden transitions from AF to organized flutter were observed in 33% of simulated ablations.
- These transitions were characterized by decreased cycle length entropy and increased mean cycle length.
- The number of reentrant wavelets decreased significantly, while the correlation length scale increased, consistent with phase transition dynamics.
Conclusions:
- Transitions from AF to flutter during ablation exhibit characteristics of phase transitions in complex dynamical systems.
- Flutter acts as an absorbing state in these transitions.
- Facilitating these phase transitions may represent a novel mechanism for improving AF ablation strategies.
Abstract:
Atrial fibrillation (AF) is the most common sustained cardiac arrhythmia with significant morbidity and mortality. Pharmacological agents are not very effective in the management of AF. Therefore, ablation procedures have become the mainstay of AF management. The irregular and seemingly chaotic atrial activity in AF is caused by one or more meandering spiral waves. Previously, we have shown the presence of sudden rhythm organization during ablation of persistent AF. We hypothesize that the observed transitions from a disorganized to an organized rhythm is a critical phase transition. Here, we explore this hypothesis by simulating ablation in an anatomically-correct 3D AF model. In 722 out of 2160 simulated ablation, at least one sudden transition from AF to an organized rhythm (flutter) was noted (33%). They were marked by a sudden decrease in the cycle length entropy and increase in the mean cycle length. At the same time, the number of reentrant wavelets decreased from 2.99 ± 0.06 in AF to 1.76 ± 0.05 during flutter, and the correlation length scale increased from 13.3 ± 1.0 mm to 196.5 ± 86.6 mm (both P < 0.0001). These findings are consistent with the hypothesis that transitions from AF to an anatomical flutter behave as phase transitions in complex non-equilibrium dynamical systems with flutter acting as an absorbing state. Clinically, the facilitation of phase transition should be considered a novel mechanism of ablation and may help to design effective ablation strategies.
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