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Current Neurovascular Research

Editor-in-Chief

ISSN (Print): 1567-2026
ISSN (Online): 1875-5739

Activation of Human Platelets by 2-Arachidonoylglycerol: Role of PKC in NO/cGMP Pathway Modulation

Author(s): Maria Grazia Signorello, Enrica Giacobbe, Alessia Segantin, Luciana Avigliano, Fabiola Sinigaglia, Mauro Maccarrone and Giuliana Leoncini

Volume 8, Issue 3, 2011

Page: [200 - 209] Pages: 10

DOI: 10.2174/156720211796558041

Price: $65

Abstract

We demonstrated that the endocannabinoid 2-arachidonoylglycerol (2-AG) activated dose-dependently washed human platelets and increased intracellular calcium levels. Moreover 2-AG activated protein kinase C measured as p47pleckstrin phosphorylation. These parameters were prevented by the tromboxane A2 receptor antagonist SQ29548, by phospholipase C pathway (U73122) and protein kinase C (GF109203X) inhibitors. No effect on 2-AG-induced platelet activation and calcium elevation in the presence of inhibitors of fatty acid amide hydrolase or monoacylglycerol lipase was observed. In addition we have shown that 2-AG dose-dependently increased NO and cGMP levels. These effects were abolished by U73122, GF109203X, EGTA and the intracellular calcium chelator BAPTA/AM. Moreover, 2-AG enhanced eNOS activity through the phosphorylation of its positive regulatory residue ser1177 and by dephosphorylation of the negative one thr495. The eNOS ser1177 phosphorylation was inhibited by U73122 and GF109203X but it was unaffected by the PI3K/AKT pathway inhibitors LY294002 and MK2206. The dephosphorylation of thr495 was reversed by low concentrations of calyculin A. Taken together these data suggest that 2-AG behaves as a true platelet agonist stimulating PKC activation and calcium elevation. Likely 2-AG can modulate platelet activation by increasing NO levels through eNOS activation.

Keywords: 2-Arachidonoylglycerol, human platelets, nitric oxide, eNOS phosphorylation/ dephosphorylation, PKC, PP1, PP2A, Platelets, Arachidonoylglycerol, endocannabinoid, phospholipase, cGMP, hydrolase, monoacylglycerol l, dephosphorylation, G-protein-coupled, receptors


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