DocumentCode :
1478578
Title :
Patterns of and mechanisms for shock-induced polarization in the heart: a bidomain analysis
Author :
Entcheva, Emilia ; Trayanov, N.A. ; Claydon, Fritz J.
Author_Institution :
Dept. of Biomed. Eng., Univ. of Memphis, TN, USA
Volume :
46
Issue :
3
fYear :
1999
fDate :
3/1/1999 12:00:00 AM
Firstpage :
260
Lastpage :
270
Abstract :
This paper examines the combined action of cardiac fiber curvature and transmural fiber rotation in polarizing the myocardium under the conditions of a strong electrical shock. The study utilizes a three-dimensional finite element model and the continuous bidomain representation of cardiac tissue to model steady-state polarization resulting from a defibrillation-strength uniform applied field. Fiber architecture is incorporated in the model via the shape of the heart, an ellipsoid of variable ellipticity index, and via an analytical function, linear or nonlinear, describing the transmural fiber rotation. Analytical estimates and numerical results are provided for the location and shape of the "bulk" polarization (polarization away from the tissue boundaries) as a function of the fiber field, or more specifically, of the conductivity changes in axial and radial direction with respect to the applied electrical field lines. Polarization in the tissue "bulk" is shown to exist only under the condition of unequal anisotropy ratios in the extraand intracellular spaces. Variations in heart geometry and, thus, fiber curvature, are found to lead to change in location of the zones of significant membrane polarization. The transmural fiber rotation function modulates the transmembrane potential profile in the radial direction. A higher gradient of the transmural transmembrane potential is observed in the presence of fiber rotation as compared to the no rotation case. The analysis presented here is a step forward in understanding the interaction between tissue structure and applied electric field in establishing the pattern of membrane polarization during the initial phase of the defibrillation shock.
Keywords :
bioelectric phenomena; biological effects of fields; biomembranes; cardiology; defibrillators; finite element analysis; muscle; patient treatment; physiological models; axial direction; bidomain analysis; bulk polarization; cardiac fiber curvature; cardiac tissue; combined action; conductivity changes; continuous bidomain representation; defibrillation-strength uniform applied field; ellipsoid of variable ellipticity index; extracellular space; heart; intracellular space; myocardium; radial direction; shock-induced polarization; steady-state polarization; strong electrical shock; three-dimensional finite element model; transmembrane potential profile; transmural fiber rotation; unequal anisotropy ratios; virtual cathode; Biomembranes; Cardiac tissue; Electric shock; Finite element methods; Heart; Myocardium; Optical fiber polarization; Pattern analysis; Shape; Steady-state; Anisotropy; Computer Simulation; Electric Conductivity; Electric Countershock; Electromagnetic Fields; Membrane Potentials; Models, Cardiovascular; Myocardium; Nonlinear Dynamics; Surface Properties;
fLanguage :
English
Journal_Title :
Biomedical Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9294
Type :
jour
DOI :
10.1109/10.748979
Filename :
748979
Link To Document :
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