Title :
Ionic modulation of atrial fibrillation dynamics in a human 3D atrial model
Author :
Sanchez, Cesar ; Krueger, M.W. ; Seemann, G. ; Dossel, O. ; Pueyo, Esther ; Rodriguez, B.
Author_Institution :
Commun. Technol. Group, Univ. of Zaragoza, Zaragoza, Spain
Abstract :
Atrial fibrillation (AF) is the most common cardiac arrhythmia, and is mainly sustained by reentrant circuits and rapid ectopic activity. In the present study, we performed computer simulations using a 3D human atrial model including fibre orientation, electrophysiological heterogeneities and tissue anisotropy. Membrane kinetics were described as in the human atrial action potential model by Maleckar et al., including AF-induced ionic remodeling. The impact of ionic changes on reentrant activity was investigated by characterizing arrhythmia stability, rotor dynamics and dominant frequency (DF). Our simulations show that reentrant circuits tend to organize around the pulmonary veins and the right atrial appendage. Simulated IK1 and INa blocks lead to slower DF in the whole atria, expanded wave meandering and reduction of secondary wavelets. INaK block slightly reduces DF and does not notably change the propagation pattern. Regularity and coupling indices of electrograms are usually higher in the right atrium than in the left atrium, entailing a higher likelihood of arrhythmia generation in the latter, as occurs in AF patients.
Keywords :
bioelectric potentials; biomembranes; blood vessels; cardiology; finite element analysis; wavelet transforms; 3D human atrial model; AF-induced ionic remodeling; arrhythmia generation; arrhythmia stability; atrial fibrillation dynamics; cardiac arrhythmia; computer simulations; dominant frequency; electrophysiological heterogeneity; fibre orientation; finite element analysis; human atrial action potential model; ionic modulation; membrane kinetics; propagation pattern; pulmonary veins; rapid ectopic activity; reentrant activity; reentrant circuits; right atrial appendage; rotor dynamics; secondary wavelets; simulated IK1 blocks; simulated INa blocks; tissue anisotropy; Computational modeling; Couplings; Humans; Integrated circuit modeling; Organizations; Rotors; Solid modeling;
Conference_Titel :
Computing in Cardiology (CinC), 2012
Conference_Location :
Krakow
Print_ISBN :
978-1-4673-2076-4