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Multifractal Desynchronization of the Cardiac Excitable Cell Network During Atrial Fibrillation. I. Multifractal
Guillaume Attuel1, Evgeniya Gerasimova-Chechkina2, Francoise Argoul3
1Geometry and Statistics in Acquisition Data, Centre de Recherche INRIA, Talence, France.
Insights
This study analyzes atrial fibrillation (AF) using wavelet-based multifractal analysis. Findings reveal "multifractal white noise" in cardiac electrical activity, challenging current AF theories and suggesting ANS involvement.
Area of Science:
- Cardiac Electrophysiology
- Nonlinear Dynamics
- Signal Processing
Background:
- Atrial fibrillation (AF) is a common arrhythmia with significant stroke risk.
- Current treatments for AF have limitations, with frequent long-term relapses.
- Understanding AF mechanisms, including onset and perpetuation, remains crucial.
Purpose of the Study:
- To investigate the underlying mechanisms of AF using advanced signal analysis.
- To analyze the electrical activity of the human heart during AF episodes.
- To explore the role of different cardiac regions and the autonomic nervous system (ANS) in AF.
Main Methods:
- Development of a wavelet-based multi-scale strategy for analyzing heart electrical activity.
- Computation of multifractal spectra using wavelet transform modulus maxima methods (moment and magnitude cumulant).
- Two-point magnitude correlation analysis to assess time-scale structures.
Main Results:
- Quantitative evidence of multifractal intermittent nature in cardiac impulse electric energy at low frequencies (times > 0.5s).
- Electric energy dynamics characterized as 'multifractal white noise' with quadratic (log-normal) multifractal spectra.
- Observed transitions in multifractal spectra correlating with anatomical substrates (left atrial posterior wall, ligament of Marshall) and ANS innervation.
Conclusions:
- The findings challenge traditional concepts of functional reentrant circuits in AF.
- The results suggest a potential role for the autonomic nervous system in AF perpetuation.
- A companion modeling paper proposes gap junction conductance kinetics as a mechanism for desynchronization in denervated hearts.
Abstract:
Atrial fibrillation (AF) is a cardiac arrhythmia characterized by rapid and irregular atrial electrical activity with a high clinical impact on stroke incidence. Best available therapeutic strategies combine pharmacological and surgical means. But when successful, they do not always prevent long-term relapses. Initial success becomes all the more tricky to achieve as the arrhythmia maintains itself and the pathology evolves into sustained or chronic AF. This raises the open crucial issue of deciphering the mechanisms that govern the onset of AF as well as its perpetuation. In this study, we develop a wavelet-based multi-scale strategy to analyze the electrical activity of human hearts recorded by catheter electrodes, positioned in the coronary sinus (CS), during episodes of AF. We compute the so-called multifractal spectra using two variants of the wavelet transform modulus maxima method, the moment (partition function) method and the magnitude cumulant method. Application of these methods to long time series recorded in a patient with chronic AF provides quantitative evidence of the multifractal intermittent nature of the electric energy of passing cardiac impulses at low frequencies, i.e., for times (≳0.5 s) longer than the mean interbeat (≃ 10-1 s). We also report the results of a two-point magnitude correlation analysis which infers the absence of a multiplicative time-scale structure underlying multifractal scaling. The electric energy dynamics looks like a "multifractal white noise" with quadratic (log-normal) multifractal spectra. These observations challenge concepts of functional reentrant circuits in mechanistic theories of AF, still leaving open the role of the autonomic nervous system (ANS). A transition is indeed observed in the computed multifractal spectra which group according to two distinct areas, consistently with the anatomical substrate binding to the CS, namely the left atrial posterior wall, and the ligament of Marshall which is innervated by the ANS. In a companion paper (II. Modeling), we propose a mathematical model of a denervated heart where the kinetics of gap junction conductance alone induces a desynchronization of the myocardial excitable cells, accounting for the multifractal spectra found experimentally in the left atrial posterior wall area.
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