Electrical pacing counteracts intrinsic shortening of action potential duration of neonatal rat ventricular cells in culture.
暂无分享,去创建一个
Leslie Tung | Nenad Bursac | N. Bursac | S. Sheehy | L. Tung | Alok Sathaye | Sean Sheehy | A. Sathaye
[1] Coexistence of Two Types of Ventricular Fibrillation During Acute Regional Ischemia in Rabbit Ventricle , 2004, Journal of cardiovascular electrophysiology.
[2] A. Coulombe,et al. Effect of 2,3-butanedione 2-monoxime on slow inward and transient outward currents in rat ventricular myocytes. , 1990, Journal of molecular and cellular cardiology.
[3] N. Ziv,et al. Evolution of Action Potential Propagation and Repolarization in Cultured Neonatal Rat Ventricular Myocytes , 2001, Journal of cardiovascular electrophysiology.
[4] J. Strait,et al. Isoenzyme-specific protein kinase C and c-Jun N-terminal kinase activation by electrically stimulated contraction of neonatal rat ventricular myocytes. , 2000, Journal of molecular and cellular cardiology.
[5] R. Winslow,et al. Mechanisms of altered excitation-contraction coupling in canine tachycardia-induced heart failure, II: model studies. , 1999, Circulation research.
[6] A. Moorman,et al. Expressional analysis of the cardiac Na-Ca exchanger in rat development and senescence. , 1998, Cardiovascular research.
[7] C. Henrikson,et al. Antiarrhythmic Engineering of Skeletal Myoblasts for Cardiac Transplantation , 2005, Circulation research.
[8] A. Gerdes,et al. Rapid transition of cardiac myocytes from hyperplasia to hypertrophy during postnatal development. , 1996, Journal of molecular and cellular cardiology.
[9] M. Heuschkel,et al. Power-law behavior of beat-rate variability in monolayer cultures of neonatal rat ventricular myocytes. , 2000, Circulation research.
[10] Henry M Colecraft,et al. Engineered calmodulins reveal the unexpected eminence of Ca2+ channel inactivation in controlling heart excitation , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[11] R. Kent,et al. Electrical stimulation of contractile activity accelerates growth of cultured neonatal cardiocytes. , 1994, Circulation research.
[12] J. Jalife,et al. Cardiac Electrophysiology: From Cell to Bedside , 1990 .
[13] N. Bursac,et al. Rotors and Spiral Waves in Two Dimensions , 2004 .
[14] J E Saffitz,et al. Pulsatile Stretch Remodels Cell-to-Cell Communication in Cultured Myocytes , 2000, Circulation research.
[15] R. Hines,et al. Developmental regulation of the L-type calcium channel α1C subunit expression in heart , 2000, Molecular and Cellular Biochemistry.
[16] Leslie Tung,et al. Multiarm spirals in a two-dimensional cardiac substrate. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[17] Leslie Tung,et al. Structure-Related Initiation of Reentry by Rapid Pacing in Monolayers of Cardiac Cells , 2006, Circulation research.
[18] Kenneth R. Laurita,et al. Transmural Heterogeneity of Calcium Handling in Canine , 2003, Circulation research.
[19] N. Bursac,et al. Cardiomyocyte Cultures With Controlled Macroscopic Anisotropy: A Model for Functional Electrophysiological Studies of Cardiac Muscle , 2002, Circulation research.
[20] G Bub,et al. Bursting calcium rotors in cultured cardiac myocyte monolayers. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[21] K. Kamiya,et al. Changes in action potentials and ion currents in long-term cultured neonatal rat ventricular cells. , 1996, The American journal of physiology.
[22] K. Kamiya,et al. Cell cycle-related changes in the voltage-gated Ca2+ currents in cultured newborn rat ventricular myocytes. , 1998, Journal of molecular and cellular cardiology.
[23] J. McArdle,et al. Effects of 2,3-butanedione monoxime on blood pressure, myocardial Ca2+ currents, and action potentials of rats. , 1995, American journal of hypertension.
[24] A Garfinkel,et al. Effects of diacetyl monoxime and cytochalasin D on ventricular fibrillation in swine right ventricles. , 2001, American journal of physiology. Heart and circulatory physiology.
[25] Jochen Rose,et al. Molecular correlates of altered expression of potassium currents in failing rabbit myocardium. , 2005, American journal of physiology. Heart and circulatory physiology.
[26] D. Sheridan,et al. Recovery of coronary function and morphology during regression of left ventricular hypertrophy. , 2002, Cardiovascular research.
[27] Zhilin Qu,et al. Effects of Na(+) and K(+) channel blockade on vulnerability to and termination of fibrillation in simulated normal cardiac tissue. , 2005, American journal of physiology. Heart and circulatory physiology.
[28] N. Sarvazyan,et al. Initiation and propagation of ectopic waves: insights from an in vitro model of ischemia-reperfusion injury. , 2002, American journal of physiology. Heart and circulatory physiology.
[29] Shien-Fong Lin,et al. Two Types of Ventricular Fibrillation in Isolated Rabbit Hearts: Importance of Excitability and Action Potential Duration Restitution , 2002, Circulation.
[30] M. Miragoli,et al. Coupling of Cardiac Electrical Activity Over Extended Distances by Fibroblasts of Cardiac Origin , 2003, Circulation research.
[31] P. Armstrong,et al. Recovery from heart failure: structural and functional analysis in a canine model. , 1988, Canadian journal of physiology and pharmacology.
[32] A Mugelli,et al. Influence of postnatal-development on I(f) occurrence and properties in neonatal rat ventricular myocytes. , 1999, Cardiovascular research.
[33] U. K. Laemmli,et al. Cleavage of Structural Proteins during the Assembly of the Head of Bacteriophage T4 , 1970, Nature.
[34] R. Kelly,et al. Continual electric field stimulation preserves contractile function of adult ventricular myocytes in primary culture. , 1994, The American journal of physiology.
[35] A. Thorburn,et al. Cell density and contraction regulate p38 MAP kinasedependent responses in neonatal rat cardiac myocytes. , 1999, American journal of physiology. Heart and circulatory physiology.
[36] P. Backx,et al. Prevention of Hypertrophy by Overexpression of Kv4.2 in Cultured Neonatal Cardiomyocytes , 2002, Circulation.
[37] R. Cohen. Enhancing specificity without sacrificing sensitivity: potential benefits of using microvolt T-wave alternans testing to risk stratify the MADIT-II population. , 2003, Cardiac electrophysiology review.
[38] Richard A Gray,et al. Effect of Action Potential Duration and Conduction Velocity Restitution and Their Spatial Dispersion on Alternans and the Stability of Arrhythmias , 2002, Journal of cardiovascular electrophysiology.
[39] A. Kleber,et al. Optical recording of impulse propagation in designer cultures. Cardiac tissue architectures inducing ultra-slow conduction. , 1999, Trends in cardiovascular medicine.
[40] Jeffrey E. Saffitz,et al. Electrical Propagation in Synthetic Ventricular Myocyte Strands From Germline Connexin43 Knockout Mice , 2004, Circulation research.
[41] Rona Shofti,et al. Electromechanical integration of cardiomyocytes derived from human embryonic stem cells , 2004, Nature Biotechnology.
[42] H. Masuda,et al. Inwardly rectifying potassium current in rat fetal and neonatal ventricular cardiomyocytes. , 1993, The American journal of physiology.
[43] J. Kimura,et al. Inhibitory effect of 2,3‐butanedione monoxime (BDM) on Na+/Ca2+ exchange current in guinea‐pig cardiac ventricular myocytes , 2001, British journal of pharmacology.
[44] E Entcheva,et al. Contact Fluorescence Imaging of Reentry in Monolayers of Cultured Neonatal Rat Ventricular Myocytes , 2000, Journal of cardiovascular electrophysiology.
[45] S. Houser,et al. Electrophysiological properties of neonatal rat ventricular myocytes with α1-adrenergic-induced hypertrophy. , 1998, American journal of physiology. Heart and circulatory physiology.
[46] J E Saffitz,et al. Dephosphorylation and Intracellular Redistribution of Ventricular Connexin43 During Electrical Uncoupling Induced by Ischemia , 2000, Circulation research.