The role of Na+/K+ ATPase activity during low flow ischemia in preventing myocardial injury: A 31P, 23Na and 87Rb NMR spectroscopic study
- 1 November 1995
- journal article
- other
- Published by Wiley in Magnetic Resonance in Medicine
- Vol. 34 (5), 673-685
- https://doi.org/10.1002/mrm.1910340505
Abstract
An increase in intracellular Na+ during ischaemia has been associated with myocardial injury. In this study, we determined whether inhibition of Na+/K+ ATPase activity contributes to this increase and whether Na+/K+ ATPase activity can be maintained by provision of glucose to perfused rat hearts during low flow, 0.5 ml/min, ischemia. We used 31P NMR spectroscopy to determine changes in myocardial energetics and intracellular and extracellular volumes. 23Na NMR spectroscopy, with DyTTHA3‐ present as a shift reagent, was used to measure changes in intracellular Na+ and 87Rb NMR spectroscopy was used to estimate Na+/K+ ATPase activity from Rb+ influx rates, Rb+ being an NMR‐sensitive congener of K+. In hearts provided with 11 mM glucose throughout ischemia, glycolysis continued and ATP was twofold higher than in hearts without glucose. In the glucose‐hearts, Rb+ influx rate was threefold higher, intracellular Na+ was fivefold lower at the end of ischemia and functional recovery during reperfusion was twofold higher. We propose that continuation of glycolysis throughout low flow ischemia allowed maintenance of sufficient Na+/K+ ATPase activity to prevent the increase in intracellular Na+ that would otherwise have led to myocardial injury.This publication has 44 references indexed in Scilit:
- How high does intracellular sodium rise during acute myocardial ischaemia? A view from NMR spectroscopyCardiovascular Research, 1995
- Relationships Between Cytosolic [ATP], [ATP]/[ADP] and Ionic Fluxes in the Perfused Rat Heart: A 31P, 23Na and 87Rb NMR StudyJournal of Molecular and Cellular Cardiology, 1994
- Ionic basis of ischaemic cardiac injury: insights from cellular studiesCardiovascular Research, 1994
- Mechanism of the diastolic dysfunction induced by glycolytic inhibition. Does adenosine triphosphate derived from glycolysis play a favored role in cellular Ca2+ homeostasis in ferret myocardium?Journal of Clinical Investigation, 1994
- Immunocytochemical and enzyme histochemical localization of Na+,K+-ATPase in normal and ischemic porcine myocardiumJournal of Molecular and Cellular Cardiology, 1990
- 87Rb NMR studies for evaluation of K+ fluxes in human erythrocytesJournal of Magnetic Resonance (1969), 1989
- 87-Rubidium NMR: A novel method of measuring cation flux in intact kidneyKidney International, 1989
- 87Rb NMR studies of the perfused rat heartFEBS Letters, 1989
- Aqueous shift reagents for high-resolution cationic nuclear magnetic resonance. III. Dy(TTHA)3−, Tm(TTHA)3−, and Tm(PPP)27−Journal of Magnetic Resonance (1969), 1984
- Free energy change of ATP-hydrolysis: a causal factor of early hypoxic failure of the myocardium?,Journal of Molecular and Cellular Cardiology, 1982