Distribution of excitation frequencies on the epicardial and endocardial surfaces of fibrillating ventricular wall of the sheep heart.
暂无分享,去创建一个
J Jalife | S. F. Mironov | O. Berenfeld | J. Jalife | A. M. Pertsov | A. Pertsov | S. Mironov | A. Zaitsev | A M Pertsov | O Berenfeld | S F Mironov | A V Zaitsev
[1] R. Gray,et al. Spatial and temporal organization during cardiac fibrillation , 1998, Nature.
[2] W. Baxter,et al. Spiral waves of excitation underlie reentrant activity in isolated cardiac muscle. , 1993, Circulation research.
[3] A. Panfilov,et al. Nonstationary vortexlike reentrant activity as a mechanism of polymorphic ventricular tachycardia in the isolated rabbit heart. , 1995, Circulation.
[4] D. Chialvo,et al. Directional differences in excitability and margin of safety for propagation in sheep ventricular epicardial muscle. , 1990, Circulation research.
[5] Capelle,et al. Dispersion of refractoriness in canine ventricular myocardium. Effects of sympathetic stimulation. , 1991, Circulation research.
[6] I R Efimov,et al. Virtual electrode-induced phase singularity: a basic mechanism of defibrillation failure. , 1998, Circulation research.
[7] A. Winfree,et al. Electrical turbulence in three-dimensional heart muscle. , 1994, Science.
[8] M. Spach,et al. Relating Extracellular Potentials and Their Derivatives to Anisotropic Propagation at a Microscopic Level in Human Cardiac Muscle: Evidence for Electrical Uncoupling of Side‐to‐Side Fiber Connections with Increasing Age , 1986, Circulation research.
[9] A Garfinkel,et al. Spatiotemporal complexity of ventricular fibrillation revealed by tissue mass reduction in isolated swine right ventricle. Further evidence for the quasiperiodic route to chaos hypothesis. , 1997, The Journal of clinical investigation.
[10] L. J. Leon,et al. Spatiotemporal evolution of ventricular fibrillation , 1998, Nature.
[11] J. Toyama,et al. Effects of verapamil on canine Purkinje fibres and ventricular muscle fibres with particular reference to the alternation of action potential duration after a sudden increase in driving rate. , 1979, Cardiovascular research.
[12] W. T. Mason,et al. Fluorescent and luminescent probes for biological activity : a practical guide to technology for quantitative real-time analysis , 1993 .
[13] N. Saoudi,et al. Cellular electrophysiologic changes and "arrhythmias" during experimental ischemia and reperfusion in isolated cat ventricular myocardium. , 1986, Journal of the American College of Cardiology.
[14] J. Jalife,et al. A Fungal Metabolite That Eliminates Motion Artifacts , 1998, Journal of cardiovascular electrophysiology.
[15] W. Baxter,et al. Stationary and drifting spiral waves of excitation in isolated cardiac muscle , 1992, Nature.
[16] L. Widman,et al. Development and Validation of an ECG Algorithm for Identifying Accessory Pathway Ablation Site in Wolff‐Parkinson‐White Syndrome , 1998, Journal of cardiovascular electrophysiology.
[17] R. Gilmour,et al. Electrical restitution and spatiotemporal organization during ventricular fibrillation. , 1999, Circulation research.
[18] A. Panfilov,et al. Spiral breakup as a model of ventricular fibrillation. , 1998, Chaos.
[19] C Antzelevitch,et al. Cellular basis for the electrocardiographic J wave. , 1996, Circulation.
[20] J. Davidenko,et al. Effects of diacetyl monoxime on the electrical properties of sheep and guinea pig ventricular muscle. , 1993, Cardiovascular research.
[21] O. Berenfeld,et al. Dynamics of intramural scroll waves in three-dimensional continuous myocardium with rotational anisotropy. , 1999, Journal of theoretical biology.
[22] N. El-Sherif,et al. Reentrant ventricular arrhythmias in the late myocardial infarction period in the dog. 13. Correlation of activation and refractory maps. , 1985, Circulation research.
[23] José Jalife,et al. Cardiac electrophysiology and arrhythmias , 1985 .
[24] J Jalife,et al. Spiral waves in two-dimensional models of ventricular muscle: formation of a stationary core. , 1998, Biophysical journal.
[25] M. Allessie,et al. Experimental evaluation of Moe's multiple wavelet hypothesis of atrial fibrillation , 1985 .
[26] Gan-XinYan,et al. Cellular Basis for the Electrocardiographic J Wave , 1996 .
[27] M. Janse. Vulnerability to ventricular fibrillation. , 1998, Chaos.
[28] R. Gray,et al. Spatial and temporal organization during cardiac fibrillation (Nature (1998) 392 (75-78)) , 1998 .
[29] J Jalife,et al. Mechanisms of atrial fibrillation: mother rotors or multiple daughter wavelets, or both? , 1998, Journal of cardiovascular electrophysiology.
[30] S. Dillon. Synchronized Repolarization After Defibrillation Shocks: A Possible Component of the Defibrillation Process Demonstrated by Optical Recordings in Rabbit Heart , 1992, Circulation.
[31] P B Corr,et al. Electrophysiologic mechanisms underlying arrhythmias due to reperfusion of ischemic myocardium. , 1987, Circulation.
[32] Pierre L. Page,et al. Anisotropic conduction and functional dissociation of ischemic tissue during reentrant ventricular tachycardia in canine myocardial infarction. , 1988, Circulation.
[33] D. Zipes,et al. Differential Effects of Cytochalasin D and 2, 3 Butanedione Monoxime on Isometric Twitch Force and Transmembrane Action Potential in Isolated Ventricular Muscle: Implications for Optical Measurements of Cardiac Repolarization , 1998, Journal of cardiovascular electrophysiology.
[34] R. Ideker,et al. High‐Current Stimuli to the Spared Epicardium of a Large Infarct Induce Ventricular Tachycardia , 1992, Circulation.
[35] A. Skanes,et al. Spatiotemporal periodicity during atrial fibrillation in the isolated sheep heart. , 1998, Circulation.
[36] J L Cox,et al. Cholinergically mediated tachyarrhythmias induced by a single extrastimulus in the isolated canine right atrium. , 1992, Circulation research.
[37] R. Guyton,et al. Coronary sinus pressure and arterial venting do not affect retrograde cardioplegia distribution. , 1994, The Annals of thoracic surgery.
[38] W. Rheinboldt,et al. A COMPUTER MODEL OF ATRIAL FIBRILLATION. , 1964, American heart journal.