Anisotropy, fiber curvature, and bath loading effects on activation in thin and thick cardiac tissue preparations: Simulations in a three-dimensional bidomain model

被引:115
作者
Henriquez, CS
Muzikant, AL
Smoak, CK
机构
[1] Department of Biomedical Engineering, Duke University, Durham, NC
[2] 136 Hudson Hall, Department of Biomedical Engineering, Duke University, Durham, NC 27708-0281
关键词
anisotropy; cardiac modeling; bidomain; propagation; action potential; mapping;
D O I
10.1111/j.1540-8167.1996.tb00548.x
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Introduction: A modeling study is presented to explore the effects of tissue conductivity, fiber orientation, and presence of an adjoining extracellular volume conductor on electrical conduction in cardiac muscle. Simulated results are compared with those of classical in vitro experiments on superfused thin layer preparations acid on whole hearts. Methods and Results: The tissue is modeled as a three-dimensional bidomain block adjoining an isotropic bath. In the thin layer model, the fibers are assumed parallel. In the thick block model, fiber rotation, curvature, and tipping are incorporated. Results from the thin layer model explain experimental observations that the rate of rise of the entire action potential up-stroke is faster and the magnitude of the extracellular potential is smaller across fibers than along fibers in a uniformly propagating front. The simulation identified that this behavior only arises in tissue with unequal anisotropy in the two spaces and adjoining an extracellular bath. Simulated conduction and potential distributions in the thick block model are shown to well approximate experimental maps. The potentials are sensitive to changes in the fiber orientations. A slight 5 degrees tipping of intramural fibers out of the planes parallel to the epicardium and endocardium will lead to an asymmetry of the magnitudes of the positive regions. In addition, the introduction of fiber curvature leads to more realistic isochrone and extracellular potential distributions. The orientation of the central negative region of the extracellular potential is shown to be determined by the average of the fiber direction at the plane of pacing and the plane of recording. Conclusions: The simulations demonstrate the sensitivity of spread of activation and potential time courses and distributions to the underlying electrical properties in both thick and thin slabs. The bidomain model is shown to be a useful representation of cardiac tissue for interpreting experimental data of activation.
引用
收藏
页码:424 / 444
页数:21
相关论文
共 38 条
[1]   GAP JUNCTION UNCOUPLING AND DISCONTINUOUS PROPAGATION IN THE HEART - A COMPARISON OF EXPERIMENTAL-DATA WITH COMPUTER-SIMULATIONS [J].
COLE, WC ;
PICONE, JB ;
SPERELAKIS, N .
BIOPHYSICAL JOURNAL, 1988, 53 (05) :809-818
[2]  
COLLI-FRANZONE P, 1992, CRIT REV BIOMED ENG, V20, P211
[3]   SPREAD OF EXCITATION IN A MYOCARDIAL VOLUME - SIMULATION STUDIES IN A MODEL OF ANISOTROPIC VENTRICULAR MUSCLE ACTIVATED BY POINT STIMULATION [J].
COLLI-FRANZONE, P ;
GUERRI, L ;
TACCARDI, B .
JOURNAL OF CARDIOVASCULAR ELECTROPHYSIOLOGY, 1993, 4 (02) :144-160
[4]   MATHEMATICAL-MODELING OF THE EXCITATION PROCESS IN MYOCARDIAL TISSUE - INFLUENCE OF FIBER ROTATION ON WAVE-FRONT PROPAGATION AND POTENTIAL-FIELD [J].
COLLI-FRANZONE, P ;
GUERRI, L ;
TENTONI, S .
MATHEMATICAL BIOSCIENCES, 1990, 101 (02) :155-235
[5]  
COLLI-FRANZONE P, 1993, J CARDIOVASC ELECTR, V4, P438
[6]   FAST SODIUM CURRENT IN CARDIAC-MUSCLE - A QUANTITATIVE DESCRIPTION [J].
EBIHARA, L ;
JOHNSON, EA .
BIOPHYSICAL JOURNAL, 1980, 32 (02) :779-790
[7]   MICROSCOPIC CONDUCTION IN CULTURED STRANDS OF NEONATAL RAT-HEART CELLS MEASURED WITH VOLTAGE-SENSITIVE DYES [J].
FAST, VG ;
KLEBER, AG .
CIRCULATION RESEARCH, 1993, 73 (05) :914-925
[8]  
Henriquez C. S., 1988, COMMENTS THEOR BIOL, V1, P47
[9]   EFFECT OF RESISTIVE DISCONTINUITIES ON WAVESHAPE AND VELOCITY IN A SINGLE CARDIAC FIBER [J].
HENRIQUEZ, CS ;
PLONSEY, R .
MEDICAL & BIOLOGICAL ENGINEERING & COMPUTING, 1987, 25 (04) :428-438
[10]  
HENRIQUEZ CS, 1993, CRIT REV BIOMED ENG, V21, P1