Anisotropic mechanisms for multiphasic unipolar electrograms: Simulation studies and experimental recordings

被引:22
作者
Colli-Franzone, P
Guerri, L
Pennacchio, M
Taccardi, B
机构
[1] Univ Pavia, Dipartimento Matemat, CNR, Ist Anal Numer, I-27100 Pavia, Italy
[2] Univ Piemonte Orientale, Dipartimento Sci & Tecnol Avanzate, Alessandria, Italy
[3] CNR, Ist Anal Numer, I-27100 Pavia, Italy
[4] Univ Utah, Nora Eccles Harrison Cardiovasc Res, Salt Lake City, UT USA
[5] Univ Utah, Training Inst, Salt Lake City, UT USA
关键词
electrograms; bidomain model; reference potential; cardiac potential maps; anisotropic propagation; source splitting;
D O I
10.1114/1.1327595
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
The origin of the multiple, complex morphologies observed in unipolar epicardial electrograms, and their relationships with myocardial architecture, have not been their elucidated. To clarify this problem we simulated electrograms (EGs) with a model representing the heart as an anisotropic bidomain with unequal anisotropy ratio, ellipsoidal ventricular geometry, transmural fiber rotation, epi-endocardial obliqueness of fiber direction and a simplified Purkinje network. The EGs were compared with those directly recorded from isolated dog hearts immersed in a conducting medium during ventricular excitation initiated by epicardial stimulation. The simulated EGs share the same multiphasic character of the recorded EGs. The origin of the multiple waves, Especially those appearing in the EGs for sites reached by excitation wave fronts spreading across fibers, can be better understood after splitting the current sources, the potential distributions and the EGs into an axial and a conormal component and after taking also into account the effect of the reference or drift component. The split model provides an explanation of humps and spikes that appear in the QRS (the initial part of the ventricular EG) wave forms, in terms of the interaction between the geometry and direction of propagation of the wave front and the architecture of the fibers through which excitation is spreading. (C) 2000 Biomedical Engineering Society. [S0090-6964(00)00511-7].
引用
收藏
页码:1326 / 1342
页数:17
相关论文
共 28 条
[1]   Spread of excitation in 3-D models of the anisotropic cardiac tissue. III. Effects of ventricular geometry and fiber structure on the potential distribution [J].
Colli-Franzone, P ;
Guerri, L ;
Pennacchio, M ;
Taccardi, B .
MATHEMATICAL BIOSCIENCES, 1998, 151 (01) :51-98
[2]  
COLLI-FRANZONE P, 1993, MATH BIOSCI, V113, P145
[3]   Accurate computation of electrograms in the left ventricular wall [J].
Colli-Franzone, P ;
Pennacchio, M ;
Guerri, L .
MATHEMATICAL MODELS & METHODS IN APPLIED SCIENCES, 2000, 10 (04) :507-538
[4]   Spread of excitation in 3-D models of the anisotropic cardiac tissue. II. Effects of fiber architecture and ventricular geometry [J].
Colli-Franzone, P ;
Guerri, L ;
Pennacchio, M ;
Taccardi, B .
MATHEMATICAL BIOSCIENCES, 1998, 147 (02) :131-171
[5]   Role of wavefront curvature in propagation of cardiac impulse [J].
Fast, VG ;
Kleber, AG .
CARDIOVASCULAR RESEARCH, 1997, 33 (02) :258-271
[6]   THE IMPACT OF ADJACENT ISOTROPIC FLUIDS ON ELECTROGRAMS FROM ANISOTROPIC CARDIAC-MUSCLE - A MODELING STUDY [J].
GESELOWITZ, DB ;
BARR, RC ;
SPACH, MS ;
MILLER, WT .
CIRCULATION RESEARCH, 1982, 51 (05) :602-613
[7]   ON THE THEORY OF THE ELECTROCARDIOGRAM [J].
GESELOWITZ, DB .
PROCEEDINGS OF THE IEEE, 1989, 77 (06) :857-876
[8]   EPICARDIAL POTENTIAL MAPPING - EFFECTS OF CONDUCTING MEDIA ON ISOPOTENTIAL AND ISOCHRONE DISTRIBUTIONS [J].
GREEN, LS ;
TACCARDI, B ;
ERSHLER, PR ;
LUX, RL .
CIRCULATION, 1991, 84 (06) :2513-2521
[9]  
GULRAJANI RM, 1988, CRIT REV BIOMED ENG, V16, P1
[10]  
HENRIQUEZ CS, 1993, CRIT REV BIOMED ENG, V21, P1