Interaction between spiral and paced waves in cardiac tissue
- 1 July 2007
- journal article
- research article
- Published by American Physiological Society in American Journal of Physiology-Heart and Circulatory Physiology
- Vol. 293 (1) , H503-H513
- https://doi.org/10.1152/ajpheart.01060.2006
Abstract
For prevention of lethal arrhythmias, patients at risk receive implantable cardioverter-defibrillators, which use high-frequency antitachycardia pacing (ATP) to convert tachycardias to a normal rhythm. One of the suggested ATP mechanisms involves paced-induced drift of rotating waves followed by their collision with the boundary of excitable tissue. This study provides direct experimental evidence of this mechanism. In monolayers of neonatal rat cardiomyocytes in which rotating waves of activity were initiated by premature stimuli, we used the Ca2+-sensitive indicator fluo 4 to observe propagating wave patterns. The interaction of the spiral tip with a paced wave was then monitored at a high spatial resolution. In the course of the experiments, we observed spiral wave pinning to local heterogeneities within the myocyte layer. High-frequency pacing led, in a majority of cases, to successful termination of spiral activity. Our data show that 1) stable spiral waves in cardiac monolayers tend to be pinned to local heterogeneities or areas of altered conduction, 2) overdrive pacing can shift a rotating wave from its original site, and 3) the wave break, formed as a result of interaction between the spiral tip and a paced wave front, moves by a paced-induced drift mechanism to an area where it may become unstable or collide with a boundary. The data were complemented by numerical simulations, which was used to further analyze experimentally observed behavior.Keywords
This publication has 41 references indexed in Scilit:
- Interactions Between Paced Wavefronts and Monomorphic Ventricular Tachycardia: Implications for Antitachycardia PacingJournal of Cardiovascular Electrophysiology, 2006
- Acceleration of functional reentry by rapid pacing in anisotropic cardiac monolayers: Formation of multi-wave functional reentriesCardiovascular Research, 2006
- Removal of a pinned spiral by generating target waves with a localized stimulusPhysical Review E, 2005
- Measuring Curvature and Velocity Vector Fields for Waves of Cardiac Excitation in 2-D MediaIEEE Transactions on Biomedical Engineering, 2004
- Optical Imaging of the HeartCirculation Research, 2004
- Coexistence of multiple spiral waves with independent frequencies in a heterogeneous excitable mediumPhysical Review E, 2001
- Waves and Vortices of Rust on the Surface of Corroding SteelThe Journal of Physical Chemistry A, 2000
- Interactions between stable spiral waves with different frequencies in cardiac tissuePhysical Review E, 1999
- Revised formulation of the Hodgkin-Huxley representation of the sodium current in cardiac cellsComputers and Biomedical Research, 1987
- Multi-armed vortices in an active chemical mediumNature, 1982