Donate Help Contact The AHA Sign In Home
American Heart Association
Circulation Research
Search: search_blue_button Advanced Search
Circulation Research. 1997;81:1045-1052

This Article
Right arrow Full Text
Right arrow Alert me when this article is cited
Right arrow Alert me if a correction is posted
Right arrow Citation Map
Services
Right arrow Email this article to a friend
Right arrow Similar articles in this journal
Right arrow Similar articles in PubMed
Right arrow Alert me to new issues of the journal
Right arrow Download to citation manager
Right arrowRequest Permissions
Citing Articles
Right arrow Citing Articles via HighWire
Right arrow Citing Articles via Google Scholar
Google Scholar
Right arrow Articles by Gaspo, R.
Right arrow Articles by Nattel, S.
Right arrow Search for Related Content
PubMed
Right arrow PubMed Citation
Right arrow Articles by Gaspo, R.
Right arrow Articles by Nattel, S.
(Circulation Research. 1997;81:1045-1052.)
© 1997 American Heart Association, Inc.


Articles

Tachycardia-Induced Changes in Na+ Current in a Chronic Dog Model of Atrial Fibrillation

Rania Gaspo, Ralph F. Bosch, Elias Bou-Abboud, , Stanley Nattel

From the Department of Medicine and Research Center, Montreal Heart Institute (R.G., R.F.B., E.B.-A., S.N.); the University of Montreal (S.N.); and the Department of Pharmacology and Therapeutics, McGill University (S.N.), Montreal, Quebec, Canada.

Correspondence to Stanley Nattel, MD, Montreal Heart Institute, 5000 Bélanger St East, Montreal, Quebec, Canada H1T 1C8. E-mail nattel{at}icm.umontreal.ca

Abstract We have previously shown that chronic rapid atrial activation (400 bpm) reduces atrial conduction velocity in dogs, contributing to the development of a substrate supporting sustained atrial fibrillation (AF). However, the cellular and ionic mechanisms underlying these functional changes have not been defined. We applied whole-cell patch-clamp techniques to atrial myocytes from dogs subjected to atrial pacing at 400 bpm for 7 days (P7, n=6) and 42 days (P42, n=5) and compared the results with those from sham-operated dogs similarly instrumented but without pacemaker activation (P0, n=6). Rapid atrial pacing allowed for the induction of sustained AF in 67% and 100% of dogs paced for 7 and 42 days, respectively, and significantly decreased conduction velocity under P7 and P42 conditions. In dogs paced for 7 days, Na+ current (INa) density was reduced by 28% at -40 mV (P<.0001, n=59 cells). INa changes were even more decreased under P42 conditions, by {approx}52% at -40 mV (P<.0001): from -78.7±4.6 pA/pF (P0, n=28 cells) to -37.7±3.0 pA/pF (P42, n=43 cells). INa was significantly reduced at all voltages ranging from -65 to -10 mV. Voltage-dependent activation and inactivation properties, activation kinetics, and recovery from inactivation were not altered by rapid atrial pacing; however, inactivation kinetics were slowed. AF duration was related to mean INa in each dog (r2=.573, P<.001). We conclude that rapid atrial activation significantly reduces both conduction velocity and INa density. Since INa is a major determinant of conduction velocity, our data point to INa reduction as a potentially important mechanism contributing to the substrate for AF in this model.


Key Words: atrial fibrillation • rapid atrial pacing • Na+ current • conduction velocity




This article has been cited by other articles:


Home page
EuropaceHome page
K. Nishida, G. Michael, D. Dobrev, and S. Nattel
Animal models for atrial fibrillation: clinical insights and scientific opportunities
Europace, October 29, 2009; (2009) eup328v1.
[Abstract] [Full Text] [PDF]


Home page
Cardiovasc ResHome page
G. Michael, L. Xiao, X.-Y. Qi, D. Dobrev, and S. Nattel
Remodelling of cardiac repolarization: how homeostatic responses can lead to arrhythmogenesis
Cardiovasc Res, February 15, 2009; 81(3): 491 - 499.
[Abstract] [Full Text] [PDF]


Home page
Circ Arrhythm ElectrophysiolHome page
S. Nattel, B. Burstein, and D. Dobrev
Atrial Remodeling and Atrial Fibrillation: Mechanisms and Implications
Circ Arrhythm Electrophysiol, April 1, 2008; 1(1): 62 - 73.
[Full Text] [PDF]


Home page
Physiol. Rev.Home page
S. Nattel, A. Maguy, S. Le Bouter, and Y.-H. Yeh
Arrhythmogenic Ion-Channel Remodeling in the Heart: Heart Failure, Myocardial Infarction, and Atrial Fibrillation
Physiol Rev, April 1, 2007; 87(2): 425 - 456.
[Abstract] [Full Text] [PDF]


Home page
CirculationHome page
T.-J. Cha, J. R. Ehrlich, D. Chartier, X.-Y. Qi, L. Xiao, and S. Nattel
Kir3-Based Inward Rectifier Potassium Current: Potential Role in Atrial Tachycardia Remodeling Effects on Atrial Repolarization and Arrhythmias
Circulation, April 11, 2006; 113(14): 1730 - 1737.
[Abstract] [Full Text] [PDF]


Home page
Cardiovasc ResHome page
M. Duytschaever, Y. Blaauw, and M. Allessie
Consequences of atrial electrical remodeling for the anti-arrhythmic action of class IC and class III drugs
Cardiovasc Res, July 1, 2005; 67(1): 69 - 76.
[Abstract] [Full Text] [PDF]


Home page
J. Physiol.Home page
Y. Xu, Z. Zhang, V. Timofeyev, D. Sharma, D. Xu, D. Tuteja, P. H. Dong, G. U. Ahmmed, Y. Ji, G. E Shull, et al.
The effects of intracellular Ca2+ on cardiac K+ channel expression and activity: novel insights from genetically altered mice
J. Physiol., February 1, 2005; 562(3): 745 - 758.
[Abstract] [Full Text] [PDF]


Home page
J. Biol. Chem.Home page
L. L. Shang and S. C. Dudley Jr.
Tandem Promoters and Developmentally Regulated 5'- and 3'-mRNA Untranslated Regions of the Mouse Scn5a Cardiac Sodium Channel
J. Biol. Chem., January 14, 2005; 280(2): 933 - 940.
[Abstract] [Full Text] [PDF]


Home page
Physiol. Rev.Home page
A. G. KLEBER and Y. RUDY
Basic Mechanisms of Cardiac Impulse Propagation and Associated Arrhythmias
Physiol Rev, April 1, 2004; 84(2): 431 - 488.
[Abstract] [Full Text] [PDF]


Home page
Am. J. Physiol. Heart Circ. Physiol.Home page
R. Cardinal, G. Rousseau, C. Bouchard, M. Vermeulen, J.-G. Latour, and P. L. Page
Myocardial electrical alteration in canine preparations with combined chronic rapid pacing and progressive coronary artery occlusion
Am J Physiol Heart Circ Physiol, April 1, 2004; 286(4): H1496 - H1506.
[Abstract] [Full Text] [PDF]


Home page
CirculationHome page
D. M. Todd, S. P. Fynn, A. P. Walden, W. J. Hobbs, S. Arya, and C. J. Garratt
Repetitive 4-Week Periods of Atrial Electrical Remodeling Promote Stability of Atrial Fibrillation: Time Course of a Second Factor Involved in the Self-Perpetuation of Atrial Fibrillation
Circulation, March 23, 2004; 109(11): 1434 - 1439.
[Abstract] [Full Text] [PDF]


Home page
Am. J. Physiol. Heart Circ. Physiol.Home page
W. Dun, P. Chandra, P. Danilo Jr., M. R. Rosen, and P. A. Boyden
Chronic atrial fibrillation does not further decrease outward currents. It increases them.
Am J Physiol Heart Circ Physiol, October 1, 2003; 285(4): H1378 - H1384.
[Abstract] [Full Text] [PDF]


Home page
Cardiovasc ResHome page
E. Carmeliet
Does the Na+,K+ pump current undergo remodeling in atrial fibrillation?
Cardiovasc Res, September 1, 2003; 59(3): 536 - 537.
[Full Text] [PDF]


Home page
Cardiovasc ResHome page
W. Dun, T. Yagi, M. R Rosen, and P. A Boyden
Calcium and potassium currents in cells from adult and aged canine right atria
Cardiovasc Res, June 1, 2003; 58(3): 526 - 534.
[Abstract] [Full Text] [PDF]


Home page
CirculationHome page
J. G. Akar, T. H. Everett, R. Ho, J. Craft, D. E. Haines, A. P. Somlyo, and A. V. Somlyo
Intracellular Chloride Accumulation and Subcellular Elemental Distribution During Atrial Fibrillation
Circulation, April 8, 2003; 107(13): 1810 - 1815.
[Abstract] [Full Text] [PDF]


Home page
J CARDIOVASC PHARMACOL THERHome page
S. Nattel
Atrial Electrophysiology and Mechanisms of Atrial Fibrillation
Journal of Cardiovascular Pharmacology and Therapeutics, March 1, 2003; 8(1_suppl): S5 - S11.
[Abstract] [PDF]


Home page
Cardiovasc ResHome page
S. Nattel, M. Allessie, and M. Haissaguerre
Spotlight on atrial fibrillation--the 'complete arrhythmia'
Cardiovasc Res, May 1, 2002; 54(2): 197 - 203.
[Full Text] [PDF]


Home page
Cardiovasc ResHome page
M. Allessie, J. Ausma, and U. Schotten
Electrical, contractile and structural remodeling during atrial fibrillation
Cardiovasc Res, May 1, 2002; 54(2): 230 - 246.
[Abstract] [Full Text] [PDF]


Home page
Cardiovasc ResHome page
R. F Bosch and S. Nattel
Cellular electrophysiology of atrial fibrillation
Cardiovasc Res, May 1, 2002; 54(2): 259 - 269.
[Full Text] [PDF]


Home page
Cardiovasc ResHome page
B. J.J.M. Brundel, R. H. Henning, H. H. Kampinga, I. C. Van Gelder, and H. J.G.M. Crijns
Molecular mechanisms of remodeling in human atrial fibrillation
Cardiovasc Res, May 1, 2002; 54(2): 315 - 324.
[Abstract] [Full Text] [PDF]


Home page
Cardiovasc ResHome page
S. Nattel
Therapeutic implications of atrial fibrillation mechanisms: can mechanistic insights be used to improve AF management?
Cardiovasc Res, May 1, 2002; 54(2): 347 - 360.
[Abstract] [Full Text] [PDF]


Home page
Cardiovasc ResHome page
T. Yagi, J. Pu, P. Chandra, M. Hara, P. Danilo Jr., M. R Rosen, and P. A Boyden
Density and function of inward currents in right atrial cells from chronically fibrillating canine atria
Cardiovasc Res, May 1, 2002; 54(2): 405 - 415.
[Abstract] [Full Text] [PDF]


Home page
CirculationHome page
K. Shinagawa, D. Li, T. K. Leung, and S. Nattel
Consequences of Atrial Tachycardia-Induced Remodeling Depend on the Preexisting Atrial Substrate
Circulation, January 15, 2002; 105(2): 251 - 257.
[Abstract] [Full Text] [PDF]


Home page
CirculationHome page
J. B. Morton, M. J. Byrne, J. M. Power, J. Raman, and J. M. Kalman
Electrical Remodeling of the Atrium in an Anatomic Model of Atrial Flutter: Relationship Between Substrate and Triggers for Conversion to Atrial Fibrillation
Circulation, January 15, 2002; 105(2): 258 - 264.
[Abstract] [Full Text] [PDF]


Home page
Cardiovasc ResHome page
K. Shivkumar and J. N Weiss
Atrial fibrillation: from cells to computers
Cardiovasc Res, November 1, 2001; 52(2): 171 - 173.
[Full Text] [PDF]


Home page
Cardiovasc ResHome page
V. L.J.L. Thijssen, J. Ausma, and M. Borgers
Structural remodelling during chronic atrial fibrillation: act of programmed cell survival
Cardiovasc Res, October 1, 2001; 52(1): 14 - 24.
[Abstract] [Full Text] [PDF]


Home page
J Am Coll CardiolHome page
B. J. J. M. Brundel, I. C. Van Gelder, R. H. Henning, A. E. Tuinenburg, M. Wietses, J. G. Grandjean, A. A. M. Wilde, W. H. Van Gilst, and H. J. G. M. Crijns
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
J. Am. Coll. Cardiol., March 1, 2001; 37(3): 926 - 932.
[Abstract] [Full Text] [PDF]


Home page
Am. J. Physiol. Heart Circ. Physiol.Home page
T. J. Hund, N. F. Otani, and Y. Rudy
Dynamics of action potential head-tail interaction during reentry in cardiac tissue: ionic mechanisms
Am J Physiol Heart Circ Physiol, October 1, 2000; 279(4): H1869 - H1879.
[Abstract] [Full Text] [PDF]


Home page
Circ. Res.Home page
S. Nattel and D. Li
Ionic Remodeling in the Heart : Pathophysiological Significance and New Therapeutic Opportunities for Atrial Fibrillation
Circ. Res., September 15, 2000; 87(6): 440 - 447.
[Abstract] [Full Text] [PDF]


Home page
CirculationHome page
H. Nakashima, K. Kumagai, H. Urata, N. Gondo, M. Ideishi, and K. Arakawa
Angiotensin II Antagonist Prevents Electrical Remodeling in Atrial Fibrillation
Circulation, June 6, 2000; 101(22): 2612 - 2617.
[Abstract] [Full Text] [PDF]


Home page
Cardiovasc ResHome page
R. G. Tieleman and H. J.G.M. Crijns
The 'Second Factor' of tachycardia-induced atrial remodeling
Cardiovasc Res, June 1, 2000; 46(3): 364 - 366.
[Full Text] [PDF]


Home page
CirculationHome page
T. Yamashita, Y. Murakawa, N. Hayami, E.-i. Fukui, Y. Kasaoka, M. Inoue, and M. Omata
Short-Term Effects of Rapid Pacing on mRNA Level of Voltage-Dependent K+ Channels in Rat Atrium : Electrical Remodeling in Paroxysmal Atrial Tachycardia
Circulation, April 25, 2000; 101(16): 2007 - 2014.
[Abstract] [Full Text] [PDF]


Home page
Am. J. Physiol. Heart Circ. Physiol.Home page
Y. Wang and Y. Rudy
Action potential propagation in inhomogeneous cardiac tissue: safety factor considerations and ionic mechanism
Am J Physiol Heart Circ Physiol, April 1, 2000; 278(4): H1019 - H1029.
[Abstract] [Full Text] [PDF]


Home page
CirculationHome page
W. J. C. Hobbs, S. Fynn, D. M. Todd, P. Wolfson, M. Galloway, and C. J. Garratt
Reversal of Atrial Electrical Remodeling After Cardioversion of Persistent Atrial Fibrillation in Humans
Circulation, March 14, 2000; 101(10): 1145 - 1151.
[Abstract] [Full Text] [PDF]


Home page
Cardiovasc ResHome page
M. A Allessie
Atrial fibrillation-induced electrical remodeling in humans: What is the next step?
Cardiovasc Res, October 1, 1999; 44(1): 10 - 12.
[Full Text] [PDF]


Home page
Cardiovasc ResHome page
R. F. Bosch, X. Zeng, J. B. Grammer, K. Popovic, C. Mewis, and V. Kuhlkamp
Ionic mechanisms of electrical remodeling in human atrial fibrillation
Cardiovasc Res, October 1, 1999; 44(1): 121 - 131.
[Abstract] [Full Text] [PDF]


Home page
Circ. Res.Home page
S. Nattel
Ionic Determinants of Atrial Fibrillation and Ca2+ Channel Abnormalities : Cause, Consequence, or Innocent Bystander?
Circ. Res., September 3, 1999; 85(5): 473 - 476.
[Full Text] [PDF]


Home page
Cardiovasc ResHome page
W.-C. Yu, S.-H. Lee, C.-T. Tai, C.-F. Tsai, M.-H. Hsieh, C.-C. Chen, Y.-A. Ding, M.-S. Chang, and S.-A. Chen
Reversal of atrial electrical remodeling following cardioversion of long-standing atrial fibrillation in man
Cardiovasc Res, May 1, 1999; 42(2): 470 - 476.
[Abstract] [Full Text] [PDF]


Home page
Circ. Res.Home page
L. Yue, P. Melnyk, R. Gaspo, Z. Wang, and S. Nattel
Molecular Mechanisms Underlying Ionic Remodeling in a Dog Model of Atrial Fibrillation
Circ. Res., April 16, 1999; 84(7): 776 - 784.
[Abstract] [Full Text] [PDF]