Electrophysiologic Effects of Acute Myocardial Ischemia
- 1 January 1997
- journal article
- research article
- Published by Wolters Kluwer Health in Circulation Research
- Vol. 80 (1) , 124-138
- https://doi.org/10.1161/01.res.80.1.124
Abstract
A multicellular ventricular fiber model was used to determine mechanisms of slowed conduction and conduction failure during acute ischemia. We simulated the three major pathophysiological component conditions of acute ischemia: elevated [K+]o, acidosis, and anoxia. Elevated [K+]o was the major determinant of conduction, causing supernormal conduction, depressed conduction, and conduction block as [K+]o was gradually increased from 4.5 to 14.4 mmol/L. Only elevated [K+]o caused conduction failure when varied within the range reported for acute ischemia. Before block, depressed upstrokes consisted of two distinct components: the first to the fast Na+ current (INa) and the second to the L-type Ca2+ current (ICa(L)). Even in highly depressed conduction, excitability was maintained by INa, with conduction block occurring at 95% INa inactivation. However, because ICa(L) supported the later phase of the depressed upstroke, ICa(L) enhanced conduction and delayed block by increasing the electrotonic source current. At [K+]o=18 mmol/L, slow action potentials generated by ICa(L) were obtained with 10% ICa(L) augmentation. However, in the presence of acidosis and anoxia, significantly larger (120%) ICa(L) augmentation was required. The depressant effect was due mostly to anoxic activation of outward ATP-sensitive K+ current, which counteracts inward ICa(L) and, by lowering the action potential amplitude, decreases the electrotonic current available to depolarize downstream cells. The simulations highlight the interactive nature of electrophysiological ischemic changes during propagation and demonstrate that both membrane changes and load factors (by downstream fiber) must be considered.Keywords
This publication has 42 references indexed in Scilit:
- The Vulnerable Window for Unidirectional Block in Cardiac Tissue:Journal of Cardiovascular Electrophysiology, 1995
- Oscillations of Membrane Current and Excitability Driven by Metabolic Oscillations in Heart CellsScience, 1994
- Cardiac ATP-sensitive K+ channels. Evidence for preferential regulation by glycolysis.The Journal of general physiology, 1989
- Nonhomogeneous electrophysiological changes and the bimodal distribution of early ventricular arrhythmias during acute coronary artery occlusionBasic Research in Cardiology, 1984
- Effect of extracellular pH on sodium current in isolated, single rat ventricular cellsThe Journal of Membrane Biology, 1984
- Modification of "depressed fast channel dependent slow conduction" by lidocaine and verapamil in the presence or absence of catecholamines. Evidence for alteration of preferential ionic channels for slow conduction.Japanese Circulation Journal, 1983
- A metabolic control mechanism for calcium ion influx that may protect the ventricular myocardial cellThe American Journal of Cardiology, 1976
- Analytical models of propagation in excitable cellsProgress in Biophysics and Molecular Biology, 1976
- Conduction of the Cardiac ImpulseThe Journal of general physiology, 1972
- Über die Erregungsleitung im Froschherzstreifen unter der Wirkung von Kalium-Ionen und anderen herzmuskeleigenen SubstanzenZeitschrift für Die Gesamte Experimentelle Medizin, 1952