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Circulation Research. 1988;62:116-126

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Circulation Research, Vol 62, 116-126, Copyright © 1988 by American Heart Association


ARTICLES

Transient outward current prominent in canine ventricular epicardium but not endocardium

SH Litovsky and C Antzelevitch
Masonic Medical Research Laboratory, Utica, NY 13504.

Previous studies have denied the presence of a transient outward current (Ito) in ventricular myocardium of dog, sheep, and calf. Using conventional microelectrode techniques, we provide evidence for a significant contribution of Ito to epicardial, but not endocardial, activity of canine ventricular myocardium. The epicardial action potential when compared with that of endocardium shows a smaller phase 0 amplitude, a much more prominent phase 1, and a phase 2 amplitude that is greater than that of phase 0. Epicardial action potentials, unlike those of endocardium, display a "spike and dome" morphology that becomes progressively more accentuated at slower stimulation rates. Using the restitution of phase 1 amplitude as a marker for the process responsible for the spike and dome phenomenon, we were able to delineate two exponential components: 1) a slow component that recovers with a time constant of 350-570 msec and 2) a fast component with a time constant of 41-85 msec. The slow component was largely abolished by 1-5 mM 4-aminopyridine, an Ito blocker. The fast component was diminished by 4-aminopyridine, but it was also inhibited by ryanodine and by Sr2+ replacement of Ca2+, which are interventions known to inhibit the Ca2+-activated component of Ito. Following 4-aminopyridine and Sr2+ or ryanodine treatment, the epicardial responses more closely resembled those of endocardium. In summary, the data demonstrate a marked heterogeneity of active membrane properties in canine ventricular muscle. These observations may aid in understanding the basis for rate-dependent changes in the T wave of the ECG, supernormal conduction in ventricular muscle, the greater sensitivity of epicardium to ischemia, and the rate dependence of some cardiac arrhythmias.


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S. W. Yeola and D. J. Snyders
Electrophysiological and pharmacological correspondence between Kv4.2 current and rat cardiac transient outward current
Cardiovasc Res, March 1, 1997; 33(3): 540 - 547.
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A. Lukas
Electrophysiology of Myocardial Cells in the Epicardial, Midmyocardial, and Endocardial Layers of the Ventricle
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CirculationHome page
D. M. Roden, R. Lazzara, M. Rosen, P. J. Schwartz, J. Towbin, and G. M. Vincent
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Circulation, October 15, 1996; 94(8): 1996 - 2012.
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N. El-Sherif, E. B. Caref, H. Yin, and M. Restivo
The Electrophysiological Mechanism of Ventricular Arrhythmias in the Long QT Syndrome: Tridimensional Mapping of Activation and Recovery Patterns
Circ. Res., September 1, 1996; 79(3): 474 - 492.
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A. F. James, T. Tominaga, Y. Okada, and M. Tominaga
Distribution of cAMP-Activated Chloride Current and CFTR mRNA in the Guinea Pig Heart
Circ. Res., August 1, 1996; 79(2): 201 - 207.
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G.-X. Yan and C. Antzelevitch
Cellular Basis for the Electrocardiographic J Wave
Circulation, January 15, 1996; 93(2): 372 - 379.
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M. Nabauer, D. J. Beuckelmann, P. Uberfuhr, and G. Steinbeck
Regional Differences in Current Density and Rate-Dependent Properties of the Transient Outward Current in Subepicardial and Subendocardial Myocytes of Human Left Ventricle
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T. Yamashita, T. Nakajima, H. Hazama, E. Hamada, Y. Murakawa, K. Sawada, and M. Omata
Regional Differences in Transient Outward Current Density and Inhomogeneities of Repolarization in Rabbit Right Atrium
Circulation, November 15, 1995; 92(10): 3061 - 3069.
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CirculationHome page
R. B. Hird, T. W. Wakefield, R. Mukherjee, B. U. Jones, F. A. Crawford, P. C. Andrews, J. C. Stanley, and F. G. Spinale
Direct Effects of Protamine Sulfate on Myocyte Contractile Processes : Cellular and Molecular Mechanisms
Circulation, November 1, 1995; 92(9): 433 - 446.
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A. Kanai and G. Salama
Optical Mapping Reveals That Repolarization Spreads Anisotropically and Is Guided by Fiber Orientation in Guinea Pig Hearts
Circ. Res., October 1, 1995; 77(4): 784 - 802.
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H. Konarzewska, G. A. Peeters, and M. C. Sanguinetti
Repolarizing K+ Currents in Nonfailing Human Hearts : Similarities Between Right Septal Subendocardial and Left Subepicardial Ventricular Myocytes
Circulation, September 1, 1995; 92(5): 1179 - 1187.
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CirculationHome page
P. Daleau, E. Lessard, M.-F. Groleau, and J. Turgeon
Erythromycin Blocks the Rapid Component of the Delayed Rectifier Potassium Current and Lengthens Repolarization of Guinea Pig Ventricular Myocytes
Circulation, June 15, 1995; 91(12): 3010 - 3016.
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D.-W. Liu and C. Antzelevitch
Characteristics of the Delayed Rectifier Current (IKr and IKs) in Canine Ventricular Epicardial, Midmyocardial, and Endocardial Myocytes : A Weaker IKs Contributes to the Longer Action Potential of the M Cell
Circ. Res., March 1, 1995; 76(3): 351 - 365.
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R. B. Hird, F. G. Spinale, K. W. Hewett, R. Mukherjee, and F. A. Crawford
The direct effects of protamine sulfate on myocyte contractile processes
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