DocumentCode :
1137943
Title :
Contributions of Purkinje-myocardial coupling to suppression and facilitation of early afterdepolarization-induced triggered activity
Author :
Schafferhofer-Steltzer, Ingrid ; Hofer, Ernst ; Huelsing, Delilah J. ; Bishop, Sanford P. ; Pollard, Andrew E.
Author_Institution :
Inst. fur Biophys., Medizinische Univ. Graz, Austria
Volume :
52
Issue :
9
fYear :
2005
Firstpage :
1522
Lastpage :
1531
Abstract :
Electrical loading by ventricular myocardium modulates conduction system repolarization near Purkinje-ventricular junctions (PVJs). We investigated how that loading suppresses and facilitates early afterdepolarizations (EADs) under conditions where there is a high degree of functional coupling between tissue types, which is consistent with the anatomic arrangement at the peripheral conduction system-myocardial interface. Experiments were completed in eight rabbit right ventricular (RV) free wall preparations. Free-running Purkinje strands were locally superfused, and action potentials were recorded from strands. RV free walls were bathed in normal solution. Surface electrograms were recorded near strand insertions into downstream free wall myocardium. Detailed histology was performed to assemble a computer model with interspersed Purkinje and ventricular myocytes weakly coupled throughout the region. Delays from Purkinje upstrokes to downstream peripheral conduction system and myocardial activation were comparable between experiments and simulations, supporting model node-to-node electrical coupling, i.e., the functional coupling. Purkinje action potential duration (APD) prolongation with localized isoproterenol in experiments and calcium current enhancement in simulations failed to establish EADs. With myocardial APD prolongation by delayed rectifier potassium current inhibition or L-type calcium current enhancement accompanying Purkinje APD prolongation in simulations, however, EAD-induced triggered activity developed. Collectively, our findings suggest competing contributions of the myocardial sink when there is a high degree of functional coupling between tissue types, with the transition from suppression to facilitation of EAD-induced triggered activity depending critically upon myocardial APD prolongation.
Keywords :
bioelectric potentials; calcium; electrocardiography; muscle; potassium; Purkinje action potential duration prolongation; Purkinje-myocardial coupling; action potentials; calcium current enhancement; conduction system repolarization; delayed rectifier potassium current inhibition; early afterdepolarization-induced triggered activity; electrical loading; functional coupling; histology; myocardial sink; peripheral conduction system-myocardial interface; rabbit right ventricular free wall; surface electrograms; ventricular myocardium; ventricular myocytes; Assembly; Calcium; Computational modeling; Couplings; Delay; Electric resistance; Immune system; Myocardium; Rabbits; Rectifiers; Extracellular mapping; functional coupling; isoproterenol; source-sink interactions; specialized conduction system; Action Potentials; Animals; Computer Simulation; Heart Ventricles; Long-Term Potentiation; Models, Cardiovascular; Myocardial Contraction; Purkinje Fibers; Rabbits;
fLanguage :
English
Journal_Title :
Biomedical Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9294
Type :
jour
DOI :
10.1109/TBME.2005.851528
Filename :
1495696
Link To Document :
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