DocumentCode :
1457046
Title :
Propagation in cardiac tissue adjacent to connective tissue: two-dimensional modeling studies
Author :
Street, Anne M. ; Plonsey, Robert
Author_Institution :
St. Jude Med. CRMD, Sunnyvale, CA, USA
Volume :
46
Issue :
1
fYear :
1999
Firstpage :
19
Lastpage :
25
Abstract :
The conditions for activation transmission across a region of extracellular space was demonstrated in two-dimensional preparations with results consistent with those previously seen in the one-dimensional fiber studies. In addition, one sees changes in action potential morphology which occur in the tissue nearest the connective-tissue border as well as changes in conduction velocity along the border. These results hinge on an adequate representation of the connective-tissue region achieved by careful implementation of the boundary conditions in the intracellular and interstitial spaces and the expansion of the connective-tissue discretization to a "double-tier network" description. Through a series of simulations, a clear dependence on fiber orientation is illustrated in the efficacy to transmit activation. The collision of a front with an embedded connective-tissue region was also examined. The results revealed that fibers aligned normal to a planar stimulus would more greatly disrupt the advancement of a planar front. Such pronounced disruptions have been shown to be proarrhythmic in the literature. The increasing evidence of the ability of connective tissue to transmit activation has implications in understanding spread of activation through infarcted tissues and through the healthy ventricular wall in the presence of connective-tissue sheets.
Keywords :
bioelectric phenomena; biological tissues; cardiology; physiological models; action potential morphology; activation transmission; boundary conditions; cardiac electrophysiology; cardiac tissue; connective tissue; double-tier network description; fiber orientation; healthy ventricular wall; interstitial spaces; intracellular spaces; one-dimensional fiber studies; planar front; planar stimulus; two-dimensional modeling studies; Biomembranes; Cardiac tissue; Conductivity; Connective tissue; Extracellular; Fasteners; Geometry; Heart; Morphology; Myocardium; Action Potentials; Computer Simulation; Connective Tissue; Electrophysiology; Extracellular Space; Heart; Humans; Mathematics; Membrane Potentials; Models, Cardiovascular;
fLanguage :
English
Journal_Title :
Biomedical Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9294
Type :
jour
DOI :
10.1109/10.736748
Filename :
736748
Link To Document :
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