The Purkinje cell; 2008 style.
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[1] F. Klocke,et al. Acceleration of Ventricular Pacemakers by Transient Increases in Heart Rate in Dogs during Ouabain Administration , 1970, Circulation research.
[2] J Jalife,et al. Action Potential Characteristics and Arrhythmogenic Properties of the Cardiac Conduction System of the Murine Heart , 2001, Circulation research.
[3] Dong-Mei Wu,et al. KCNE2 is colocalized with KCNQ1 and KCNE1 in cardiac myocytes and may function as a negative modulator of I(Ks) current amplitude in the heart. , 2006, Heart rhythm.
[4] P. Boyden,et al. Electrophysiology and infrastructure of Canine Subendocardial Purkinje Cells Isolated From Control and 24-Hour Infarcted Hearts , 1989, Circulation research.
[5] D. Attwell,et al. The steady state TTX-sensitive (“window”) sodium current in cardiac Purkinje fibres , 1979, Pflügers Archiv.
[6] M. Hocini,et al. Catheter Ablation of Ventricular Fibrillation in Structurally Normal Hearts Targeting the RVOT and Purkinje Ectopy , 2003, Herz.
[7] G. Tseng,et al. Multiple Types of Ca2+ Currents in Single Canine Purkinje Cells , 1989, Circulation research.
[8] K. Rhodes,et al. Modulation of A-type potassium channels by a family of calcium sensors , 2000, Nature.
[9] Y. Rudy,et al. Basic mechanisms of cardiac impulse propagation and associated arrhythmias. , 2004, Physiological reviews.
[10] S. Nattel,et al. Canine Ventricular KCNE2 Expression Resides Predominantly in Purkinje Fibers , 2003, Circulation research.
[11] A. Varró,et al. Analysis of the electrophysiological effects of ambasilide, a new antiarrhythmic agent, in canine isolated ventricular muscle and purkinje fibers. , 2000, General pharmacology.
[12] László Virág,et al. The role of the delayed rectifier component IKs in dog ventricular muscle and Purkinje fibre repolarization , 2000, The Journal of physiology.
[13] D DiFrancesco,et al. A new interpretation of the pace‐maker current in calf Purkinje fibres. , 1981, The Journal of physiology.
[14] G. Hart,et al. An analysis of the rate-dependent action of lidoflazine in mammalian sino-atrial node and Purkinje fibres. , 1984, Journal of molecular and cellular cardiology.
[15] D. Snyders,et al. Effects of 4-aminopyridine on inward rectifying and pacemaker currents of cardiac purkinje fibres , 1982, Pflügers Archiv.
[16] C. January,et al. Characteristics of L- and T-type Ca2+ currents in canine cardiac Purkinje cells. , 1989, The American journal of physiology.
[17] 萩原 誠久,et al. Contribution of two types of calcium currents to the pacemaker potentials of rabbit sino-atrial node cells , 1989 .
[18] G. Gintant. Characterization and functional consequences of delayed rectifier current transient in ventricular repolarization. , 2000, American journal of physiology. Heart and circulatory physiology.
[19] R. Dumaine,et al. The promiscuous nature of the cardiac sodium current. , 2007, Journal of molecular and cellular cardiology.
[20] S. Nattel,et al. Properties of potassium currents in Purkinje cells of failing human hearts. , 2002, American journal of physiology. Heart and circulatory physiology.
[21] Jonathan M Cordeiro,et al. Comparison of K+ currents in cardiac Purkinje cells isolated from rabbit and dog. , 2007, Journal of molecular and cellular cardiology.
[22] W. Stevenson,et al. Identification and Ablation of Three Types of Ventricular Tachycardia Involving the His‐Purkinje System in Patients with Heart Disease , 2004, Journal of cardiovascular electrophysiology.
[23] P. Boyden,et al. Transient outward currents in subendocardial Purkinje myocytes surviving in the infarcted heart. , 1995, Circulation.
[24] M. Rosen,et al. Electrophysiologic effects of ketanserin on canine Purkinje fibers, ventricular myocardium and the intact heart. , 1989, The Journal of pharmacology and experimental therapeutics.
[25] R B Robinson,et al. Electrical restitution process in dispersed canine cardiac Purkinje and ventricular cells. , 1987, The American journal of physiology.
[26] C. Franzini-armstrong,et al. T-tubule profiles in Purkinje fibres of mammalian myocardium , 2007, Journal of Muscle Research and Cell Motility.
[27] H. E. Keurs,et al. Ca(2+) transients and Ca(2+) waves in purkinje cells : role in action potential initiation. , 2000, Circulation research.
[28] D. Noble,et al. The kinetics and rectifier properties of the slow potassium current in cardiac Purkinje fibres , 1968, The Journal of physiology.
[29] H. T. ter Keurs,et al. Wide long lasting perinuclear Ca2+ release events generated by an interaction between ryanodine and IP3 receptors in canine Purkinje cells. , 2008, Journal of molecular and cellular cardiology.
[30] D. Gadsby,et al. Two levels of resting potential in cardiac purkinje fibers , 1977, The Journal of general physiology.
[31] Emmanuel Dupont,et al. Gap Junction Channels and Cardiac Impulse Propagation , 2007, Journal of Membrane Biology.
[32] Carlos G Vanoye,et al. Expression of multiple KCNE genes in human heart may enable variable modulation of I(Ks). , 2005, Journal of molecular and cellular cardiology.
[33] D. Mckinnon,et al. Distribution and prevalence of hyperpolarization-activated cation channel (HCN) mRNA expression in cardiac tissues. , 1999, Circulation research.
[34] M. Boutjdir,et al. Localization and modulation of α1D (Cav1.3) L-type Ca channel by protein kinase A , 2005 .
[35] W. Giles,et al. Repolarizing K+ currents in rabbit heart Purkinje cells , 1998, The Journal of physiology.
[36] H. Glitsch,et al. Electrophysiology of the sodium-potassium-ATPase in cardiac cells. , 2001, Physiological reviews.
[37] H. T. ter Keurs,et al. Nonuniform Ca2+ transients in arrhythmogenic Purkinje cells that survive in the infarcted canine heart. , 2003, Cardiovascular research.
[38] H. T. ter Keurs,et al. Calcium and arrhythmogenesis. , 2007, Physiological reviews.
[39] Functional effects of the late sodium current inhibition by AZD7009 and lidocaine in rabbit isolated atrial and ventricular tissue and Purkinje fibre. , 2007, European journal of pharmacology.
[40] P. Boyden,et al. Electrogenic Na(+)-K+ pump in Purkinje myocytes isolated from control noninfarcted and infarcted hearts. , 1990, The American journal of physiology.
[41] G. Callewaert,et al. Single cardiac Purkinje cells: general electrophysiology and voltage‐clamp analysis of the pace‐maker current. , 1984, The Journal of physiology.
[42] G. Gintant,et al. The Canine Purkinje Fiber: An In Vitro Model System for Acquired Long QT Syndrome and Drug-Induced Arrhythmogenesis , 2001, Journal of cardiovascular pharmacology.
[43] M. Boyett,et al. Regional differences in the negative inotropic effect of acetylcholine within the canine ventricle. , 1996, The Journal of physiology.
[44] H. Wellens,et al. Progress in the understanding of cardiac early afterdepolarizations and torsades de pointes: time to revise current concepts. , 2000, Cardiovascular research.
[45] C Antzelevitch,et al. Differences in the electrophysiological response of canine ventricular subendocardium and subepicardium to acetylcholine and isoproterenol. A direct effect of acetylcholine in ventricular myocardium. , 1990, Circulation research.
[46] Comparison of Ion-Channel Subunit Expression in Canine Cardiac Purkinje Fibers and Ventricular Muscle , 2002 .
[47] M. Boyett. A study of the effect of the rate of stimulation on the transient outward current in sheep cardiac Purkinje fibres. , 1981, The Journal of physiology.
[48] D. Mckinnon,et al. Molecular basis of the T‐ and L‐type Ca2+ currents in canine Purkinje fibres , 2007, The Journal of physiology.
[49] W H Lamers,et al. Immunohistochemical delineation of the conduction system. II: The atrioventricular node and Purkinje fibers. , 1993, Circulation research.
[50] Diane Lipscombe,et al. Neuronal L-Type Calcium Channels Open Quickly and Are Inhibited Slowly , 2005, The Journal of Neuroscience.
[51] I. Cohen,et al. The pacemaker current in cardiac Purkinje myocytes , 1995, The Journal of general physiology.
[52] E. Lakatta,et al. Cyclic Variation of Intracellular Calcium: A Critical Factor for Cardiac Pacemaker Cell Dominance , 2003, Circulation research.
[53] I. Cohen,et al. Pacemaker current i(f) in adult canine cardiac ventricular myocytes. , 1995, The Journal of physiology.
[54] J. Jalife,et al. Cardiac Electrophysiology: From Cell to Bedside , 1990 .
[55] S Nattel,et al. Ionic Remodeling of Cardiac Purkinje Cells by Congestive Heart Failure , 2001, Circulation.
[56] R. P. Thompson,et al. The spatial distribution and relative abundance of gap-junctional connexin40 and connexin43 correlate to functional properties of components of the cardiac atrioventricular conduction system. , 1993, Journal of cell science.
[57] P. Light,et al. Regulation of adenosine triphosphate-sensitive potassium channels from rabbit ventricular myocytes by protein kinase C and type 2A protein phosphatase. , 1995, Biochemistry.
[58] Hee-Sup Shin,et al. Bradycardia and Slowing of the Atrioventricular Conduction in Mice Lacking CaV3.1/&agr;1G T-Type Calcium Channels , 2006, Circulation research.
[59] A. V. van Ginneken,et al. Calcium-activated Cl(-) current contributes to delayed afterdepolarizations in single Purkinje and ventricular myocytes. , 2000, Circulation.
[60] S. Nattel,et al. A comparison of transient outward currents in canine cardiac Purkinje cells and ventricular myocytes. , 2000, American journal of physiology. Heart and circulatory physiology.
[61] P. Light,et al. Identification and properties of ATP-sensitive potassium channels in myocytes from rabbit Purkinje fibres. , 1999, Cardiovascular research.
[62] S. Nattel,et al. Slow delayed rectifier current and repolarization in canine cardiac Purkinje cells. , 2001, American journal of physiology. Heart and circulatory physiology.
[63] H. T. ter Keurs,et al. 2APB- and JTV519(K201)-sensitive micro Ca2+ waves in arrhythmogenic Purkinje cells that survive in infarcted canine heart. , 2004, Heart rhythm.
[64] G. Gintant,et al. Slow inactivation of a tetrodotoxin-sensitive current in canine cardiac Purkinje fibers. , 1984, Biophysical journal.
[65] F. Persson. Mechanism of Action of the Antiarrhythmic Agent AZD7009 , 2007 .
[66] Jörg Hüser,et al. Intracellular Ca2+ release contributes to automaticity in cat atrial pacemaker cells , 2000, The Journal of physiology.
[67] B. Small,et al. Gender differences in the slow delayed (IKs) but not in inward (IK1) rectifier K+ currents of canine Purkinje fibre cardiac action potential: key roles for IKs, β‐adrenoceptor stimulation, pacing rate and gender , 2006, British journal of pharmacology.
[68] I. Cohen,et al. Background K+ current in isolated canine cardiac Purkinje myocytes. , 1987, Biophysical journal.
[69] L. Bocchi,et al. Characterization of the slowly inactivating sodium current INa2 in canine cardiac single Purkinje cells , 2008, Experimental physiology.
[70] J. Tamargo,et al. Pharmacology of Cardiac Potassium Channels , 2003 .
[71] G. Tseng,et al. Passive properties and membrane currents of canine ventricular myocytes , 1987, The Journal of general physiology.
[72] J. Kupersmith,et al. Effects of extracellular potassium accumulation and sodium pump activation on automatic canine Purkinje fibres , 1982, The Journal of physiology.
[73] B. Rudy,et al. Cloning of ShIII (Shaw-like) cDNAs encoding a novel high-voltage-activating, TEA-sensitive, type-A K+ channel , 1992, Proceedings of the Royal Society of London. Series B: Biological Sciences.
[74] J. Cordeiro,et al. Contribution of neuronal sodium channels to the cardiac fast sodium current INa is greater in dog heart Purkinje fibers than in ventricles. , 2005, Cardiovascular research.
[75] P. Schwartz,et al. Muscarinic Effects on Action Potential Duration and its Rate Dependence in Canine Purkinje Fibers , 1996, Pacing and clinical electrophysiology : PACE.
[76] K. Willecke,et al. Impaired Conduction in the Bundle Branches of Mouse Hearts Lacking the Gap Junction Protein Connexin40 , 2001, Circulation.
[77] A. L. Wit,et al. The Effects of Acetylcholine on the Electrical Activity of Canine Cardiac Purkinje Fibers , 1978, Circulation research.
[78] Stanley Nattel,et al. Differential Distribution of Cardiac Ion Channel Expression as a Basis for Regional Specialization in Electrical Function , 2002, Circulation research.
[79] S. Bendahhou,et al. In vitro molecular interactions and distribution of KCNE family with KCNQ1 in the human heart. , 2005, Cardiovascular research.
[80] Stanley Nattel,et al. Regional and tissue specific transcript signatures of ion channel genes in the non‐diseased human heart , 2007, The Journal of physiology.
[81] Paul J. Wang,et al. Atrioventricular nodal reverse facilitation in connexin40-deficient mice. , 2005, Heart Rhythm.