Background
Objective
Methods
Results
Conclusion
Keywords
Abbreviations:
AF (atrial fibrillation), APD (action potential duration), cSNRT (corrected sinoatrial node recovery time), LDCAE (late diastolic Cai elevation), RA (right atrium), RyR2 (type 2 ryanodine receptor), SACT (sinoatrial node conduction time), SAN (sinoatrial node), SERCA2a (sarcoplasmic reticulum Ca2+-ATPase 2a), SNRT (sinoatrial node recovery time), SR (sarcoplasmic reticulum)Introduction
Methods

Results
Evidence of atrial arrhythmia in vivo

Evidence of atrial arrhythmia in vitro
Impaired heart rate response to beta-adrenergic stimulation in AF dogs

Impaired LDCAE of SAN after beta-adrenergic stimulation in AF dogs



Impaired LDCAE after caffeine injection in AF dogs
Leading pacemaker sites during heart rate acceleration

Impaired LDCAE, Cai upstroke, and Cai relaxation in AF dogs

RyR2, SERCA2a, and phospholamban in SAN of normal and AF dogs
Discussion
Major findings
Impaired SAN function in AF
RyR2 and SAN function
Impaired response to caffeine
Study limitations
Conclusion
Acknowledgement
Supplementary data
- Online Data Supplement and Figures 1 and 2
References
- Electrical, contractile and structural remodeling during atrial fibrillation.Cardiovasc Res. 2002; 54: 230-246
- Coexistence of sick sinus rhythm and atrial flutter-fibrillation.Circulation. 1981; 63: 80-86
- Reverse remodeling of sinus node function after catheter ablation of atrial fibrillation in patients with prolonged sinus pauses.Circulation. 2003; 108: 1172-1175
- Pacing-induced chronic atrial fibrillation impairs sinus node function in dogs: electrophysiological remodeling.Circulation. 1996; 94: 2953-2960
- Electrical remodeling of the atria associated with paroxysmal and chronic atrial flutter.Circulation. 2000; 102: 1807-1813
- I. Atrial fibrillation and sinus node dysfunction.J Am Coll Cardiol. 2001; 38: 1585-1586
- Pacemaker mechanisms in cardiac tissue.Annu Rev Physiol. 1993; 55: 455-472
- The pacemaker current (I(f)) plays an important role in regulating SA node pacemaker activity.Cardiovasc Res. 1995; 30: 307-308
- The role of Ca2+ release from sarcoplasmic reticulum in the regulation of sinoatrial node automaticity.Heart Vessels. 1996; 11: 234-241
- Intracellular calcium and Na+-Ca2+ exchange current in isolated toad pacemaker cells.J Physiol. 1998; 508: 153-166
- Sinoatrial nodal cell ryanodine receptor and Na(+)-Ca(2+) exchanger: molecular partners in pacemaker regulation.Circ Res. 2001; 88: 1254-1258
- beta-Adrenergic stimulation modulates ryanodine receptor Ca(2+) release during diastolic depolarization to accelerate pacemaker activity in rabbit sinoatrial nodal cells.Circ Res. 2002; 90: 73-79
- Rhythmic ryanodine receptor Ca2+ releases during diastolic depolarization of sinoatrial pacemaker cells do not require membrane depolarization.Circ Res. 2004; 94: 802-809
- High basal protein kinase A-dependent phosphorylation drives rhythmic internal Ca2+ store oscillations and spontaneous beating of cardiac pacemaker cells.Circ Res. 2006; 98: 505-514
- Intracellular calcium dynamics and the acceleration of sinus rhythm by beta-adrenergic stimulation.Circulation. 2009; 119: 788-796
- A new method for measurement of sinoatrial conduction time.Circulation. 1978; 58: 706-714
- Ionic remodeling of sinoatrial node cells by heart failure.Circulation. 2003; 108: 760-766
- Arrhythmogenic ion-channel remodeling in the heart: heart failure, myocardial infarction, and atrial fibrillation.Physiol Rev. 2007; 87: 425-456
- Atrial L-type Ca2+ currents and human atrial fibrillation.Circ Res. 1999; 85: 428-436
- The contribution of ionic currents to changes in refractoriness of human atrial myocytes associated with chronic atrial fibrillation.Cardiovasc Res. 2001; 52: 226-235
- Outward K+ current densities and Kv1.5 expression are reduced in chronic human atrial fibrillation.Circ Res. 1997; 80: 772-781
- Funny current downregulation and sinus node dysfunction associated with atrial tachyarrhythmia: a molecular basis for tachycardia-bradycardia syndrome.Circulation. 2009; 119: 1576-1585
- Expanding spectrum of human RYR2-related disease: new electrocardiographic, structural, and genetic features.Circulation. 2007; 116: 1569-1576
- Alterations in cardiac sarcoplasmic reticulum Ca2+ regulatory proteins in the atrial tissue of patients with chronic atrial fibrillation.J Am Coll Cardiol. 1999; 34: 255-263
- Defective cardiac ryanodine receptor regulation during atrial fibrillation.Circulation. 2005; 111: 2025-2032
- Changes in ultrastructural calcium distribution in goat atria during atrial fibrillation.J Mol Cell Cardiol. 2000; 32: 355-364
- Application of blebbistatin as an excitation-contraction uncoupler for electrophysiologic study of rat and rabbit hearts.Heart Rhythm. 2007; 4: 619-626
- Structural and functional evidence for discrete exit pathways that connect the canine sinoatrial node and atria.Circ Res. 2009; 104: 915-923
- Spontaneous action potentials of cells in the canine sinus node.Circ Res. 1976; 39: 76-82
- Structure and function of the sinus node, AV node and his bundle of the human heart: part II—function.Prog Cardiovasc Dis. 2003; 45: 327-360
Article info
Publication history
Footnotes
This manuscript was processed by a guest editor. This study was supported in part by National Institutes of Health Grants P01 HL78931, R01 HL78932, and 71140; a Korean Ministry of Information and Communication and Institute for Information Technology Advancement through research and develop support project to Dr. Joung; an AHA Established Investigator Award to Dr. Lin; a Nihon Kohden/St. Jude Medical Electrophysiology fellowship to Dr. Maruyama; Medtronic-Zipes Endowments to Dr. Chen; and a VA Young Investigator Grant and St. Jude Medical, Inc., research grant to Dr. Das. Dr. Zipes and Chen are consultants to Medtronic, Inc. Dr. Das receives research grants from St. Jude Medical. Medtronic provided equipment used in this study.