Andreu M. ClimentGuillem Sánchez, María SaludZhang, Y.Millet Roig, JoséMazgalev, T. N.2013-06-2420110363-6135https://riunet.upv.es/handle/10251/30031[EN] Dual atrioventricular (AV) nodal pathway physiology is described as two different wave fronts that propagate from the atria to the His bundle: one with a longer effective refractory period [fast pathway (FP)] and a second with a shorter effective refractory period [slow pathway (SP)]. By using His electrogram alternance, we have developed a mathematical model of AV conduction that incorporates dual AV nodal pathway physiology. Experiments were performed on ¿ve rabbit atrial-AV nodal preparations to develop and test the presented model. His electrogram alternances from the inferior margin of the His bundle were used to identify fast and slow wave front propagations. The ability to predict AV conduction time and the interaction between FP and SP wave fronts have been analyzed during regular and irregular atrial rhythms (e.g., atrial ¿brillation). In addition, the role of dual AV nodal pathway wave fronts in the generation of Wenckebach periodicities has been illustrated. Finally, AV node ablative modi¿cations have been evaluated. The model accurately reproduced interactions between FP and SP during regular and irregular atrial pacing protocols. In all experiments, speci¿city and sensitivity higher than 85% were obtained in the prediction of the pathway responsible for conduction. It has been shown that, during atrial ¿brillation, the SP ablation signi¿cantly increased the mean HH interval (204 39 vs. 274 50 ms, P 0.05), whereas FP ablation did not produce signi¿cant slowing of ventricular rate. The presented mathematical model can help in understanding some of the intriguing AV node mechanisms and should be considered as a step forward in the studies of AV nodal conduction.Reserva de todos los derechosAtrial arrhythmiasWenckebachAtrial fibrillationVentricular rate controlParoxysmal supraventicular tachycardiaRadiofrequency catheter modificationTECNOLOGIA ELECTRONICAFunctional Mathematical Model of Dual Pathway AV nodal ConductionArtículo10.1152/ajpheart.01175.2010Cerrado