Ionic Mechanisms of Propagation in Cardiac Tissue
- 1 November 1997
- journal article
- research article
- Published by Wolters Kluwer Health in Circulation Research
- Vol. 81 (5) , 727-741
- https://doi.org/10.1161/01.res.81.5.727
Abstract
In cardiac tissue, reduced membrane excitability and reduced gap junction coupling both slow conduction velocity of the action potential. However, the ionic mechanisms of slow conduction for the two conditions are very different. We explored, using a multicellular theoretical fiber, the ionic mechanisms and functional role of the fast sodium current, INa, and the L-type calcium current, ICa(L), during conduction slowing for the two fiber conditions. A safety factor for conduction (SF) was formulated and computed for each condition. Reduced excitability caused a lower SF as conduction velocity decreased. In contrast, reduced gap junction coupling caused a paradoxical increase in SF as conduction velocity decreased. The opposite effect of the two conditions on SF was reflected in the minimum attainable conduction velocity before failure: decreased excitability could reduce velocity to only one third of control (from 54 to 17 cm/s) before failure occurred, whereas decreased coupling could reduce velocity to as low as 0.26 cm/s before block. Under normal conditions and conditions of reduced excitability, ICa(L) had a minimal effect on SF and on conduction. However, ICa(L) played a major role in sustaining conduction when intercellular coupling was reduced. This phenomenon demonstrates that structural, nonmembrane factors can cause a switch of intrinsic membrane processes that support conduction. High intracellular calcium concentration, [Ca]i, lowered propagation safety and caused earlier block when intercellular coupling was reduced. [Ca]i affected conduction via calcium-dependent inactivation of ICa(L). The increase of safety factor during reduced coupling suggests a major involvement of uncoupling in stable slow conduction in infarcted myocardium, making microreentry possible. Reliance on ICa(L) for this type of conduction suggests ICa(L) as a possible target for antiarrhythmic drug therapy.Keywords
This publication has 25 references indexed in Scilit:
- Paradoxical Improvement of Impulse Conduction in Cardiac Tissue by Partial Cellular UncouplingScience, 1997
- Modulating L-type calcium current affects discontinuous cardiac action potential conductionBiophysical Journal, 1996
- Influences of anisotropic tissue structure on reentrant circuits in the epicardial border zone of subacute canine infarcts.Circulation Research, 1988
- Inactivation of Ca channelsProgress in Biophysics and Molecular Biology, 1984
- Combined effects of hypoxia, hyperkalemia and acidosis on membrane action potential and excitability of guinea-pig ventricular muscle*Journal of Molecular and Cellular Cardiology, 1984
- Electrophysiologic mapping to determine the mechanism of experimental ventricular tachycardia initiated by premature impulsesThe American Journal of Cardiology, 1982
- The discontinuous nature of propagation in normal canine cardiac muscle. Evidence for recurrent discontinuities of intracellular resistance that affect the membrane currents.Circulation Research, 1981
- Excitatory Factors in Ventricular Tachycardia Resulting from Myocardial Ischemia. Potassium a Major ExcitantScience, 1954
- A practical method for numerical evaluation of solutions of partial differential equations of the heat-conduction typeMathematical Proceedings of the Cambridge Philosophical Society, 1947
- The electrical constants of a crustacean nerve fibreProceedings of the Royal Society of London. B. Biological Sciences, 1946