Title :
Interaction of Specialized Cardiac Conduction System With Antiarrhythmic Drugs: A Simulation Study
Author :
Dux-Santoy, Lydia ; Sebastian, Rafael ; Felix-Rodriguez, Jose ; Ferrero, Jose Maria ; Saiz, Javier
Author_Institution :
Dept. of Electron. Eng., Univ. Politec. de Valencia, Valencia, Spain
Abstract :
The use of antiarrhythmic drugs is common to treat heart rhythm disorders. Computational modeling and simulation are promising tools that could be used to investigate the effects of specific drugs on cardiac electrophysiology. In this paper, we study the multiscale effects of dofetilide, a drug that blocks IKr, from cellular to organ level paying special attention to its effect on heart structures, in particular the specialized cardiac conduction system (CCS). We include a model of the CCS in a patient-specific anatomical ventricular model and study the drug effects in simulations with and without a CCS. Results confirmed the expected effects of dofetilide at cellular level, increasing the action potential duration, and at organ level, prolonging the QT segment. Notable differences are shown between models with and without the CCS on action potential duration distributions. These techniques show the importance of heart heterogeneity and the global effects of the interaction of drugs with cardiac structures.
Keywords :
bioelectric phenomena; biological organs; cardiology; cellular biophysics; drugs; medical disorders; physiological models; QT segment; action potential duration distributions; antiarrhythmic drugs; cardiac electrophysiology; cardiac structures; cellular level; computational modeling; dofetilide; drug effects; heart heterogeneity; heart rhythm disorders; heart structures; organ level; patient-specific anatomical ventricular model; specialized cardiac conduction system; Biological systems; Biomedical engineering; Computational modeling; Dispersion; Drugs; Materials; Physiology; Action potential duration (APD); cardiac conduction system (CCS); cardiac electrophysiology; drug modeling; Action Potentials; Anti-Arrhythmia Agents; Computer Simulation; Diffusion Tensor Imaging; Drug Design; Electrocardiography; Heart Conduction System; Heart Ventricles; Humans; Models, Cardiovascular; Phenethylamines; Sulfonamides;
Journal_Title :
Biomedical Engineering, IEEE Transactions on
DOI :
10.1109/TBME.2011.2165213