Role of potassium currents in cardiac arrhythmias.
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[1] J Jalife,et al. Ventricular fibrillation: mechanisms of initiation and maintenance. , 2000, Annual review of physiology.
[2] U. Ravens,et al. Transient outward current in human ventricular myocytes of subepicardial and subendocardial origin. , 1994, Circulation research.
[3] D. Zipes,et al. Cesium‐Induced Atrial Tachycardia Degenerating into Atrial Fibrillation in Dogs: Atrial Torsades de Pointes? , 1998, Journal of cardiovascular electrophysiology.
[4] D. Roden. Taking the “Idio” out of “Idiosyncratic”: Predicting Torsades de Pointes , 1998, Pacing and clinical electrophysiology : PACE.
[5] R. Roberts. Mechanisms of Disease: genetic mechanisms of atrial fibrillation , 2006, Nature Clinical Practice Cardiovascular Medicine.
[6] D M Roden,et al. A common polymorphism associated with antibiotic-induced cardiac arrhythmia. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[7] S. Bendahhou,et al. Identification of a KCNE2 gain-of-function mutation in patients with familial atrial fibrillation. , 2004, American journal of human genetics.
[8] José Jalife,et al. Ionic determinants of functional reentry in a 2-D model of human atrial cells during simulated chronic atrial fibrillation. , 2005, Biophysical journal.
[9] A. Mugelli,et al. I(f) in non-pacemaker cells: role and pharmacological implications. , 2006, Pharmacological research.
[10] H. Crijns,et al. Alterations in potassium channel gene expression in atria of patients with persistent and paroxysmal atrial fibrillation: differential regulation of protein and mRNA levels for K+ channels. , 2001, Journal of the American College of Cardiology.
[11] P. D. Henry,et al. Class I or Class III Agents for Atrial Fibrillation: , 2003, Pacing and clinical electrophysiology : PACE.
[12] G. Tomaselli,et al. Mechanisms of Disease: ion channel remodeling in the failing ventricle , 2008, Nature Clinical Practice Cardiovascular Medicine.
[13] Ying Wang,et al. KCNQ1 gain-of-function mutation in familial atrial fibrillation. , 2003, Science.
[14] D. Bers,et al. Cellular basis of triggered arrhythmias in heart failure. , 2004, Trends in cardiovascular medicine.
[15] J. Saenen,et al. Molecular aspects of the congenital and acquired Long QT Syndrome: clinical implications. , 2008, Journal of molecular and cellular cardiology.
[16] Frank Sachse,et al. De novo KCNQ1 mutation responsible for atrial fibrillation and short QT syndrome in utero. , 2005, Cardiovascular research.
[17] M. Näbauer,et al. Potassium channel down-regulation in heart failure. , 1998, Cardiovascular research.
[18] M. Sanguinetti,et al. hERG potassium channels and cardiac arrhythmia , 2006, Nature.
[19] Martin Bienengraeber,et al. Kv1.5 channelopathy due to KCNA5 loss-of-function mutation causes human atrial fibrillation. , 2006, Human molecular genetics.
[20] A. Varghese,et al. Stretch-sensitive KCNQ1 mutation A link between genetic and environmental factors in the pathogenesis of atrial fibrillation? , 2007, Journal of the American College of Cardiology.
[21] U Ravens,et al. Task Force on Sudden Cardiac Death of the European Society of Cardiology. , 2001, European heart journal.
[22] Lippincott Williams Wilkins,et al. The Sicilian gambit. A new approach to the classification of antiarrhythmic drugs based on their actions on arrhythmogenic mechanisms. Task Force of the Working Group on Arrhythmias of the European Society of Cardiology. , 1991, Circulation.
[23] S. Nattel. New ideas about atrial fibrillation 50 years on , 2002, Nature.
[24] U Ravens,et al. Molecular Basis of Downregulation of G-Protein–Coupled Inward Rectifying K+ Current (IK,ACh) in Chronic Human Atrial Fibrillation: Decrease in GIRK4 mRNA Correlates With Reduced IK,ACh and Muscarinic Receptor–Mediated Shortening of Action Potentials , 2001, Circulation.
[25] U Ravens,et al. L-Type Ca 2 Current Downregulation in Chronic Human Atrial Fibrillation Is Associated With Increased Activity of Protein Phosphatases , 2004 .
[26] A. Goette,et al. Signal transduction systems and atrial fibrillation. , 2002, Cardiovascular research.
[27] Ursula Ravens,et al. Remodeling of cardiomyocyte ion channels in human atrial fibrillation , 2003, Basic Research in Cardiology.
[28] G. Breithardt,et al. Prolonged Atrial Action Potential Durations and Polymorphic Atrial Tachyarrhythmias in Patients with Long QT Syndrome , 2003, Journal of cardiovascular electrophysiology.
[29] D M Roden,et al. Rapid inactivation determines the rectification and [K+]o dependence of the rapid component of the delayed rectifier K+ current in cardiac cells. , 1997, Circulation research.
[30] D. Dobrev,et al. The G Protein–Gated Potassium Current IK,ACh Is Constitutively Active in Patients With Chronic Atrial Fibrillation , 2005, Circulation.
[31] Eric E. Smith,et al. Variants conferring risk of atrial fibrillation on chromosome 4q25 , 2007, Nature.
[32] Ramon Brugada,et al. Short QT Syndrome and Atrial Fibrillation Caused by Mutation in KCNH2 , 2005, Journal of cardiovascular electrophysiology.
[33] Yusong He,et al. A Kir2.1 gain-of-function mutation underlies familial atrial fibrillation. , 2005, Biochemical and biophysical research communications.
[34] T. Meitinger,et al. The non-synonymous coding IKr-channel variant KCNH2-K897T is associated with atrial fibrillation: results from a systematic candidate gene-based analysis of KCNH2 (HERG). , 2008, European heart journal.