Cardiac alternans: diverse mechanisms and clinical manifestations
B Surawicz
and
C Fisch
Krannert Institute of Cardiology, Department of Medicine, Indiana University School of Medicine, Indianapolis 46202-4800.
OBJECTIVES. The purpose of this review is to assemble the widely dispersed information about cardiac alternans and to categorize the types and mechanisms of alternans, their clinical manifestations and possible therapeutic implications. BACKGROUND. The phenomena of mechanical and electrical alternans have been of continuing interest to both physiologists and clinicians. Recent studies have enhanced this interest because of the reported association of alternans with experimental myocardial ischemia and cardiac arrhythmias. METHODS. The review formulates concepts based on extensive review of published studies and personal observations. RESULTS. Cardiac alternans has been subdivided into the following four categories: 1) mechanical, 2) electrical, 3) in association with myocardial ischemia, and 4) in association with cardiac motion. Mechanical alternans can be explained by hemodynamic or inotropic alterations, or both. Mechanical alternans in the ventricular muscle is accompanied by alternans of action potential shape. In the Purkinje fibers, action potential duration alternates without change in shape and is determined by the duration of the preceding diastolic interval. However, in ventricular muscle fiber, alternans can occur in the presence of constant diastolic intervals. T wave alternans reflects changes in action potential duration and is frequently associated with a long QT interval. Electrocardiographic manifestations of conduction alternans occur at many different sites within the conducting system and myocardium. During myocardial ischemia, additional mechanisms of repolarization alternans have been proposed. Alternans occurring in the presence of a large pericardial effusion is attributed to swinging motion of the heart maintaining two-beat periodicity. CONCLUSIONS. Since its origin as "pulsus alternans" described by Traube in 1872, the definition of alternans has evolved into a term encompassing multiple physiologic and pathologic phenomena that, although united by the term cardiac alternans, diverge widely with respect to etiology, mechanism and clinical significance.
This article has been cited by other articles:

|
 |

|
 |
 
X. Zhao, D. Yamazaki, K. H. Park, S. Komazaki, A. Tjondrokoesoemo, M. Nishi, P. Lin, Y. Hirata, M. Brotto, H. Takeshima, et al.
Ca2+ Overload and Sarcoplasmic Reticulum Instability in tric-a Null Skeletal Muscle
J. Biol. Chem.,
November 26, 2010;
285(48):
37370 - 37376.
[Abstract]
[Full Text]
[PDF]
|
 |
|

|
 |

|
 |
 
M. J. Cutler, X. Wan, K. R. Laurita, R. J. Hajjar, and D. S. Rosenbaum
Targeted SERCA2a Gene Expression Identifies Molecular Mechanism and Therapeutic Target for Arrhythmogenic Cardiac Alternans
Circ Arrhythm Electrophysiol,
December 1, 2009;
2(6):
686 - 694.
[Abstract]
[Full Text]
[PDF]
|
 |
|

|
 |

|
 |
 
K. Chatterjee, D. McGlothlin, and A. Michaels
Analytic Reviews: Cardiogenic Shock with Preserved Systolic Function: A Reminder
J Intensive Care Med,
November 1, 2008;
23(6):
355 - 366.
[Abstract]
[PDF]
|
 |
|

|
 |

|
 |
 
A. Hirashiki, H. Izawa, F. Somura, K. Obata, T. Kato, T. Nishizawa, A. Yamada, H. Asano, S. Ohshima, A. Noda, et al.
Prognostic Value of Pacing-Induced Mechanical Alternans in Patients With Mild-to-Moderate Idiopathic Dilated Cardiomyopathy in Sinus Rhythm
J. Am. Coll. Cardiol.,
April 4, 2006;
47(7):
1382 - 1389.
[Abstract]
[Full Text]
[PDF]
|
 |
|

|
 |

|
 |
 
B. Amasyali, S. Kose, and T. Celik
Atrioventricular nodal re-entrant tachycardia with QRS voltage and cycle length alternation and aberrant conduction due to two distinct antegrade slow pathways.
Europace,
February 1, 2006;
8(2):
134 - 137.
[Abstract]
[Full Text]
[PDF]
|
 |
|

|
 |

|
 |
 
K. R. Sipido
Understanding Cardiac Alternans: The Answer Lies in the Ca2+ Store
Circ. Res.,
March 19, 2004;
94(5):
570 - 572.
[Full Text]
[PDF]
|
 |
|

|
 |

|
 |
 
B. D. Nearing and R. L. Verrier
Tracking cardiac electrical instability by computing interlead heterogeneity of T-wave morphology
J Appl Physiol,
December 1, 2003;
95(6):
2265 - 2272.
[Abstract]
[Full Text]
|
 |
|

|
 |

|
 |
 
K. Kumar, K. Nguyen, S. Waxman, B. D. Nearing, G. A. Wellenius, S. X. Zhao, and R. L. Verrier
Potent antifibrillatory effects of intrapericardial nitroglycerin in the ischemic porcine heart
J. Am. Coll. Cardiol.,
May 21, 2003;
41(10):
1831 - 1837.
[Abstract]
[Full Text]
[PDF]
|
 |
|

|
 |

|
 |
 
L. A Blatter, J. Kockskamper, K. A Sheehan, A. V Zima, J. Huser, and S. L Lipsius
Local calcium gradients during excitation-contraction coupling and alternans in atrial myocytes
J. Physiol.,
January 1, 2003;
546(1):
19 - 31.
[Abstract]
[Full Text]
[PDF]
|
 |
|

|
 |

|
 |
 
B. D. Nearing and R. L. Verrier
Progressive Increases in Complexity of T-Wave Oscillations Herald Ischemia-Induced Ventricular Fibrillation
Circ. Res.,
October 18, 2002;
91(8):
727 - 732.
[Abstract]
[Full Text]
[PDF]
|
 |
|

|
 |

|
 |
 
A. A. Armoundas, G. F. Tomaselli, and H. D. Esperer
Pathophysiological basis and clinical application of T-wave alternans
J. Am. Coll. Cardiol.,
July 17, 2002;
40(2):
207 - 217.
[Abstract]
[Full Text]
[PDF]
|
 |
|

|
 |

|
 |
 
J. A. Kovach, B. D. Nearing, and R. L. Verrier
Angerlike behavioral state potentiates myocardial ischemia-induced T-wave alternans in canines
J. Am. Coll. Cardiol.,
May 1, 2001;
37(6):
1719 - 1725.
[Abstract]
[Full Text]
[PDF]
|
 |
|

|
 |

|
 |
 
E. J. Ciaccio
Dynamic Relationship of Cycle Length to Reentrant Circuit Geometry and to the Slow Conduction Zone During Ventricular Tachycardia
Circulation,
February 20, 2001;
103(7):
1017 - 1024.
[Abstract]
[Full Text]
[PDF]
|
 |
|

|
 |

|
 |
 
F. E. S. Cruz Filho, I. G. Maia, M.a. L. A. Fagundes, R. C. P. Barbosa, P. A. G. Alves, R. M. S. Sa, S. H. Boghossian, and J. C. Ribeiro
Electrical behavior of T-Wave polarity alternans in patients with congenital long QT syndrome
J. Am. Coll. Cardiol.,
July 1, 2000;
36(1):
167 - 173.
[Abstract]
[Full Text]
[PDF]
|
 |
|

|
 |

|
 |
 
J. Huser, Y. G. Wang, K. A Sheehan, F. Cifuentes, S. L Lipsius, and L. A Blatter
Functional coupling between glycolysis and excitation--contraction coupling underlies alternans in cat heart cells
J. Physiol.,
May 1, 2000;
524(3):
795 - 806.
[Abstract]
[Full Text]
[PDF]
|
 |
|

|
 |

|
 |
 
D. E Euler
Cardiac alternans: mechanisms and pathophysiological significance
Cardiovasc Res,
June 1, 1999;
42(3):
583 - 590.
[Full Text]
[PDF]
|
 |
|

|
 |

|
 |
 
W. Shimizu and C. Antzelevitch
Cellular and Ionic Basis for T-Wave Alternans Under Long-QT Conditions
Circulation,
March 23, 1999;
99(11):
1499 - 1507.
[Abstract]
[Full Text]
[PDF]
|
 |
|

|
 |

|
 |
 
T. Kwan, A. Feit, M. Alam, E. Afflu, L. T. Clark, and T. Kwan
ST-T Alternans and Myocardial Ischemia
Angiology,
March 1, 1999;
50(3):
217 - 222.
[Abstract]
[PDF]
|
 |
|

|
 |

|
 |
 
M. Chinushi, M. Restivo, E. B. Caref, and N. El-Sherif
Electrophysiological Basis of Arrhythmogenicity of QT/T Alternans in the Long-QT Syndrome : Tridimensional Analysis of the Kinetics of Cardiac Repolarization
Circ. Res.,
September 21, 1998;
83(6):
614 - 628.
[Abstract]
[Full Text]
[PDF]
|
 |
|

|
 |

|
 |
 
H. Tachibana, I. Kubota, M. Yamaki, T. Watanabe, and H. Tomoike
Discordant S-T alternans contributes to formation of reentry: a possible mechanism of reperfusion arrhythmia
Am J Physiol Heart Circ Physiol,
July 1, 1998;
275(1):
H116 - H121.
[Abstract]
[Full Text]
[PDF]
|
 |
|

|
 |

|
 |
 
T. Kwan, A. Feit, M. Alam, M. K. Mandawat, L. T. Clark, and T. Kwan
Pulsus Alternans in Diastolic Left Ventricular Dysfunction: A Case Report
Angiology,
December 1, 1997;
48(12):
1079 - 1085.
[Abstract]
[PDF]
|
 |
|

|
 |

|
 |
 
S.-i. Ando, H. R. Dajani, B. L. Senn, G. E. Newton, and J. S. Floras
Sympathetic Alternans: Evidence for Arterial Baroreflex Control of Muscle Sympathetic Nerve Activity in Congestive Heart Failure
Circulation,
January 21, 1997;
95(2):
316 - 319.
[Abstract]
[Full Text]
|
 |
|

|
 |

|
 |
 
S. Sicouri, S. Moro, and M. V. Elizari
d-Sotalol Induces Marked Action Potential Prolongation and Early Afterdepolarizations in M but Not Epicardial or Endocardial Cells of the Canine Ventricle
Journal of Cardiovascular Pharmacology and Therapeutics,
January 1, 1997;
2(1):
27 - 37.
[Abstract]
[PDF]
|
 |
|

|
 |

|
 |
 
T. Kwan and A. Feit
Pseudo-alternans of Left Ventricular End Diastolic Pressure: A Case Report
Angiology,
August 1, 1995;
46(8):
739 - 742.
[Abstract]
[PDF]
|
 |
|

|
 |

|
 |
 
D. S. Rubenstein and S. L. Lipsius
Premature Beats Elicit a Phase Reversal of Mechanoelectrical Alternans in Cat Ventricular Myocytes : A Possible Mechanism for Reentrant Arrhythmias
Circulation,
January 1, 1995;
91(1):
201 - 214.
[Abstract]
[Full Text]
|
 |
|

|
 |

|
 |
 
M. A. Watanabe and M. L. Koller
Mathematical analysis of dynamics of cardiac memory and accommodation: theory and experiment
Am J Physiol Heart Circ Physiol,
April 1, 2002;
282(4):
H1534 - H1547.
[Abstract]
[Full Text]
[PDF]
|
 |
|
|