N-acetylcysteine potentiates platelet inhibition by endothelium-derived relaxing factor.
Author(s) -
Jonathan S. Stamler,
M E Mendelsohn,
Patricia Amarante,
D Smick,
N. Andon,
Peter F. Davies,
John P. Cooke,
Joseph Loscalzo
Publication year - 1989
Publication title -
circulation research
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 4.899
H-Index - 336
eISSN - 1524-4571
pISSN - 0009-7330
DOI - 10.1161/01.res.65.3.789
Subject(s) - nitric oxide , platelet , intracellular , endothelium , chemistry , endothelium derived relaxing factor , thromboxane a2 , bradykinin , acetylcysteine , prostacyclin , endothelial stem cell , thiol , pharmacology , biochemistry , endocrinology , medicine , biology , in vitro , organic chemistry , antioxidant , receptor
Recent evidence suggests that endothelium-derived relaxing factor exhibits properties of nitric oxide. Like nitric oxide, it inhibits platelet function and mediates its effects by elevating intracellular cyclic GMP. In this study we have investigated the role of reduced thiol in the mechanism of action of endothelium-derived relaxing factor on platelets. Bovine aortic endothelial cells were grown on microcarrier beads and pretreated with aspirin before use. Endothelial cells stimulated with bradykinin or exposed to stirred medium expressed a dose-dependent inhibition of platelet aggregation that was potentiated by the reduced thiol, N-acetylcysteine. Endothelial cell-mediated platelet inhibition was attenuated by methylene blue. Inhibition of platelet aggregation by endothelial cells was associated with a rise in platelet intracellular cyclic GMP, an effect that was enhanced by N-acetylcysteine. These data show that 1) the reduced thiol N-acetylcysteine potentiates platelet inhibition by endothelium-derived relaxing factor and 2) this effect is associated with increasing intracellular platelet cyclic GMP levels.
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