Self-organization and the dynamical nature of ventricular fibrillation

被引:114
作者
Jalife, J [1 ]
Gray, RA
Morley, GE
Davidenko, JM
机构
[1] SUNY Hlth Sci Ctr, Dept Pharmacol, Syracuse, NY 13210 USA
[2] Univ Alabama Birmingham, Birmingham, AL 35294 USA
关键词
D O I
10.1063/1.166289
中图分类号
O29 [应用数学];
学科分类号
070104 ;
摘要
This article reviews recent data supporting the conjecture that, in the structurally and electrophysiologically normal heart, cardiac fibrillation is not a totally random phenomenon. Experimental and numerical studies based on the theory of excitable media suggest that fibrillation in the mammalian ventricles is the result of self-organized three-dimensional (3-D) electrical rotors giving rise to scroll waves that move continuously (i.e., drift) throughout the heart at varying speeds. A brief review of studies on the dynamics of rotors in two-dimensional (2-D) and 3-D excitable media is presented with emphasis on the experimental demonstration of such dynamics in cardiac muscle of various species. The discussion is centered on rotor dynamics in the presence and the absence of structural heterogeneities, and in the phenomena of drifting and anchoring, which in the electrocardiogram (EGG) may manifest as life-threatening cardiac rhythm disturbances. For instance, in the rabbit heart, a single electrical rotor that drifts rapidly throughout the ventricles gives rise to complex patterns of excitation. In the ECG such patterns an indistinguishable from ventricular fibrillation. On the other hand, a rotor that anchors to a discontinuity or defect in the muscle (e.g., a scar, a large artery or a bundle of connective tissue) may result in stationary rotating activity, which in the ECG is manifested as a form of so-called "monomorphic" ventricular tachycardia. More recent data show that ventricular fibrillation occurs in mammals irrespective of size or species. While in small hearts, such as those of mice and rabbits, a single drifting or meandering rotor can result in fibrillation, in larger hearts, such as the sheep and possibly the human, fibrillation occurs in the form of a relatively small number of coexisting but short-lived rotors. Overall, the work discussed here has paved the way for a better understanding of the mechanisms of fibrillation in the normal, as well as diseased human heart. (C) 1998 American Institute of Physics.
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页码:79 / 93
页数:15
相关论文
共 93 条
[41]   COMPUTERIZED METHOD FOR THE RAPID DISPLAY OF VENTRICULAR ACTIVATION DURING THE INTRAOPERATIVE STUDY OF ARRHYTHMIAS [J].
IDEKER, RE ;
SMITH, WM ;
WALLACE, AG ;
KASELL, J ;
HARRISON, LA ;
KLEIN, GJ ;
KINICKI, RE ;
GALLAGHER, JJ .
CIRCULATION, 1979, 59 (03) :449-458
[42]  
IKEDA T, IN PRESS CIRCULATION
[43]   SPIRAL BREAKUP IN A NEW MODEL OF DISCRETE EXCITABLE MEDIA [J].
ITO, H ;
GLASS, L .
PHYSICAL REVIEW LETTERS, 1991, 66 (05) :671-674
[44]   Drifting vortices of electrical waves underlie ventricular fibrillation in the rabbit heart [J].
Jalife, J ;
Gray, R .
ACTA PHYSIOLOGICA SCANDINAVICA, 1996, 157 (02) :123-131
[45]   HIGH-CURRENT STIMULI TO THE SPARED EPICARDIUM OF A LARGE INFARCT INDUCE VENTRICULAR-TACHYCARDIA [J].
KAVANAGH, KM ;
KABAS, JS ;
ROLLINS, DL ;
MELNICK, SB ;
SMITH, WM ;
IDEKER, RE .
CIRCULATION, 1992, 85 (02) :680-698
[46]  
KRINSKY VI, 1990, ANN NY ACAD SCI, V591, P232
[47]   MATHEMATICAL-MODELS OF CARDIAC-ARRHYTHMIAS (SPIRAL WAVES) [J].
KRINSKY, VI .
PHARMACOLOGY & THERAPEUTICS PART B-GENERAL & SYSTEMATIC PHARMACOLOGY, 1978, 3 (04) :539-555
[48]  
Krinsky VI, 1984, SELF ORG AUTOWAVES S, DOI DOI 10.1007/978-3-642-70210-5
[49]   SPIRAL CALCIUM WAVE-PROPAGATION AND ANNIHILATION IN XENOPUS-LAEVIS OOCYTES [J].
LECHLEITER, J ;
GIRARD, S ;
PERALTA, E ;
CLAPHAM, D .
SCIENCE, 1991, 252 (5002) :123-126
[50]   Reentrant wave fronts in Wiggers' stage II ventricular fibrillation - Characteristics and mechanisms of termination and spontaneous regeneration [J].
Lee, JJ ;
Kamjoo, K ;
Hough, D ;
Hwang, C ;
Fan, W ;
Fishbein, MC ;
Bonometti, C ;
Ikeda, T ;
Karagueuzian, HS ;
Chen, PS .
CIRCULATION RESEARCH, 1996, 78 (04) :660-675