Enhanced Postischemic ATP Repletion by Pharmacological Inhibition of Nucleoside Washout and Catabolism
- 1 June 1988
- journal article
- research article
- Published by Wolters Kluwer Health in Journal of Cardiovascular Pharmacology
- Vol. 11 (6) , 694-700
- https://doi.org/10.1097/00005344-198806000-00010
Abstract
We tested the hypothesis that inhibition of adenosine transport by dipyridamole and inhibition of adenosine deamination by erythro-9-(2-hydroxy-3-nonyl)adenine (EHNA) prevents nucleoside loss and stimulates postischemic ATP-repletion. In an open chest canine model, dipyridamole (0.5 mg/kg/h) and EHNA (5 mg/kg/h) were infused intra-atrially during a coronary occlusion period of 45 min and a reperfusion period of 180 min. Transmural needle biopsies, obtained during the ischemic period and within the reperfusion period, were analyzed using high performance liquid chromatography for adenine nucleotides and adenosine, inosine, xanthine, and hypoxanthine as well as creatine phosphate. During ischemia and under the influence of dipyridamole plus EHNA, 56% of the catabolized adenine nucleotides were recovered stoichiometrically as adenosine, whereas in the untreated group <10% of the nucleotides were recovered as adenosine because of rapid deamination to inosine. In the control group, ATP levels decreased during ischemia from control values of 5.25 ± 0.28 μm/g to 2.01 ± 0.18 μm/g. In the group treated with dipyridamole and EHNA, ATP levels fell to 2.2 ± 0.22 μm/g but rose to 3.22 ± 0.29 μm/g within 180 min of reperfusion, whereas in the untreated control group tissue levels of ATP did no increase. However, a significant proportion of the adenosine accumulated during ischemia under the influence o?? dipyridamole plus EHNA was not used for the restoration of the ATP level during reperfusion. A significan amount of adenosine was probably trapped in the interstitial space and could not be transported back into the myocytes in the presence of dipyridamole during reperfusion. In both groups, creatine phosphate levels were restored to normal levels during reperfusion.This publication has 14 references indexed in Scilit:
- Accelerated repletion of ATP and GTP pools in postischemic canine myocardium using a precursor of purine de novo synthesis.Circulation Research, 1982
- Recovery from prolonged abnormalities of canine myocardium salvaged from ischemic necrosis by coronary reperfusion.Proceedings of the National Academy of Sciences, 1981
- Adenosine metabolism and myocardial preservation Consequences of adenosine catabolism on myocardial high-energy compounds and tissue blood flowThe Journal of Thoracic and Cardiovascular Surgery, 1980
- Increase in myocardial adenine nucleotides induced by adenosine: Dosage, mode of application and duration, species differencesJournal of Molecular and Cellular Cardiology, 1980
- Erythro-9-(2-hydroxy-3-nonyl)adenine as a specific inhibitor of herpes simplex virus replication in the presence and absence of adenosine analogues.Proceedings of the National Academy of Sciences, 1978
- Activities and some properties of 5′-nucleotidase, adenosine kinase and adenosine deaminase in tissues from vertebrates and invertebrates in relation to the control of the concentration and the physiological role of adenosineBiochemical Journal, 1978
- Regional myocardial energetics during brief periods of coronary occlusion and reperfusion: comparison with S-T segment changesCardiovascular Research, 1978
- Adenosine metabolism in canine myocardial reactive hyperemia.Circulation Research, 1978
- RELATION BETWEEN HIGH-ENERGY PHOSPHATE AND LETHAL INJURY IN MYOCARDIAL ISCHEMIA IN DOG1978
- Effects of ischemia on function and metabolism of the isolated working rat heartAmerican Journal of Physiology-Legacy Content, 1973