Literature DB >> 9163326

Activation of cGMP-stimulated phosphodiesterase by nitroprusside limits cAMP accumulation in human platelets: effects on platelet aggregation.

N T Dickinson1, E K Jang, R J Haslam.   

Abstract

cGMP enhances cAMP accumulation in platelets via cGMP-inhibited phosphodiesterase (PDE3) [Maurice and Haslam (1990) Mol. Pharmacol. 37, 671-681]. However, cGMP might also limit cAMP accumulation by activating cGMP-stimulated phosphodiesterase (PDE2). We therefore evaluated the role of PDE2 in human platelets by using erythro-9-(2-hydroxy-3-nonyl)adenine (EHNA) to inhibit this enzyme selectively. IC50 values for the inhibition of platelet PDE2 by EHNA, with 10 microM cAMP as substrate in the absence and in the presence of 1 microM cGMP, were 15 and 3 microM respectively. Changes in platelet cyclic [3H]nucleotides were measured after prelabelling with [3H]adenine and [3H]guanine. Nitroprusside (NP) caused concentration-dependent increases in [3H]cGMP and a biphasic increase in [3H]cAMP, which was maximal at 10 microM (49+/-6%) and smaller at 100 microM (32+/-6%) (means+/-S.E.). In the presence of EHNA (20 microM), which had no effects alone, NP caused much larger increases in platelet [3H]cAMP (125+/-14% at 100 microM). EHNA also enhanced [3H]cGMP accumulation at high NP concentrations. In accord with these results, EHNA markedly potentiated the inhibition of thrombin-induced platelet aggregation by NP. The roles of cAMP and cGMP in this effect were investigated by using 2', 5'-dideoxyadenosine to inhibit adenylate cyclase. This compound decreased the accumulation of [3H]cAMP but not that of [3H]cGMP, and diminished the inhibition of platelet aggregation by NP with EHNA. We conclude that much of the effect of NP with EHNA is mediated by cAMP. Lixazinone (1 microM), a selective inhibitor of PDE3, increased platelet [3H]cAMP by 177+/-15%. This increase in [3H]cAMP was markedly inhibited by NP; EHNA blocked this effect of NP. Parallel studies showed that NP suppressed the inhibition of platelet aggregation by lixazinone. EHNA enhanced the large increases in [3H]cAMP seen with 20 nM prostacyclin (PGI2), but had no effect with 1 nM PGI2. NP and 1 nM PGI2 acted synergistically to increase [3H]cAMP, an effect attributable to the inhibition of PDE3 by cGMP; EHNA greatly potentiated this synergism. In contrast, NP decreased the [3H]cAMP accumulation seen with 20 nM PGI2, an effect that was blocked by EHNA. The results show that, provided that cGMP is present, PDE2 plays a major role in the hydrolysis of low cAMP concentrations and restricts any increases in cAMP concentration and decreases in platelet aggregation caused by the inhibition of PDE3. At high cAMP, PDE2 plays the major role in cAMP breakdown, whether cGMP is present or not.

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Year:  1997        PMID: 9163326      PMCID: PMC1218329          DOI: 10.1042/bj3230371

Source DB:  PubMed          Journal:  Biochem J        ISSN: 0264-6021            Impact factor:   3.857


  28 in total

1.  Effects of adenosine on levels of adenosine cyclic 3',5'-monophosphate in human blood platelets in relation to adenosine incorporation and platelet aggregation.

Authors:  R J Haslam; G M Rosson
Journal:  Mol Pharmacol       Date:  1975-09       Impact factor: 4.436

Review 2.  Regulation of blood platelet function by cyclic nucleotides.

Authors:  R J Haslam; M M Davidson; T Davies; J A Lynham; M D McClenaghan
Journal:  Adv Cyclic Nucleotide Res       Date:  1978

3.  Inhibition of adenylate cyclase by adenosine analogues in preparations of broken and intact human platelets. Evidence for the unidirectional control of platelet function by cyclic AMP.

Authors:  R J Haslam; M M Davidson; J V Desjardins
Journal:  Biochem J       Date:  1978-10-15       Impact factor: 3.857

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Authors:  J F Mustard; D W Perry; N G Ardlie; M A Packham
Journal:  Br J Haematol       Date:  1972-02       Impact factor: 6.998

5.  Evidence for the inhibitory role of guanosine 3', 5'-monophosphate in ADP-induced human platelet aggregation in the presence of nitric oxide and related vasodilators.

Authors:  B T Mellion; L J Ignarro; E H Ohlstein; E G Pontecorvo; A L Hyman; P J Kadowitz
Journal:  Blood       Date:  1981-05       Impact factor: 22.113

6.  Human blood platelet 3': 5'-cyclic nucleotide phosphodiesterase. Isolation of low-Km and high-Km phosphodiesterase.

Authors:  H Hidaka; T Asano
Journal:  Biochim Biophys Acta       Date:  1976-04-08

7.  A simple direct assay of 3',5'-cyclic nucleotide phosphodiesterase activity based on the use of polyacrylamide-bononate affinity gel chromatography.

Authors:  C W Davis; J W Daly
Journal:  J Cyclic Nucleotide Res       Date:  1979

8.  The interaction of sodium nitroprusside with human endothelial cells and platelets: nitroprusside and prostacyclin synergistically inhibit platelet function.

Authors:  R I Levin; B B Weksler; E A Jaffe
Journal:  Circulation       Date:  1982-12       Impact factor: 29.690

9.  Purification and characterization of a cyclic GMP-stimulated cyclic nucleotide phosphodiesterase from bovine tissues.

Authors:  T J Martins; M C Mumby; J A Beavo
Journal:  J Biol Chem       Date:  1982-02-25       Impact factor: 5.157

10.  Erythro-9-(2-hydroxy-3-nonyl)adenine inhibits cyclic-3',5'-guanosine monophosphate-stimulated phosphodiesterase to reverse hypoxic pulmonary vasoconstriction in the perfused rat lung.

Authors:  J Haynes; D W Killilea; P D Peterson; W J Thompson
Journal:  J Pharmacol Exp Ther       Date:  1996-02       Impact factor: 4.030

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  20 in total

Review 1.  Advances in targeting cyclic nucleotide phosphodiesterases.

Authors:  Donald H Maurice; Hengming Ke; Faiyaz Ahmad; Yousheng Wang; Jay Chung; Vincent C Manganiello
Journal:  Nat Rev Drug Discov       Date:  2014-04       Impact factor: 84.694

Review 2.  Cyclic nucleotide phosphodiesterases as targets for treatment of haematological malignancies.

Authors:  Adam Lerner; Paul M Epstein
Journal:  Biochem J       Date:  2006-01-01       Impact factor: 3.857

3.  The anti-aggregating effect of BAY 41-2272, a stimulator of soluble guanylyl cyclase, requires the presence of nitric oxide.

Authors:  Séverine Roger; Cécile Badier-Commander; Jérôme Paysant; Alex Cordi; Tony J Verbeuren; Michel Félétou
Journal:  Br J Pharmacol       Date:  2010-11       Impact factor: 8.739

4.  Cloning and characterization of a cAMP-specific cyclic nucleotide phosphodiesterase.

Authors:  S H Soderling; S J Bayuga; J A Beavo
Journal:  Proc Natl Acad Sci U S A       Date:  1998-07-21       Impact factor: 11.205

Review 5.  Anti-platelet therapy: phosphodiesterase inhibitors.

Authors:  Paolo Gresele; Stefania Momi; Emanuela Falcinelli
Journal:  Br J Clin Pharmacol       Date:  2011-10       Impact factor: 4.335

6.  Blockade of the purinergic P2Y12 receptor greatly increases the platelet inhibitory actions of nitric oxide.

Authors:  Nicholas S Kirkby; Martina H Lundberg; Melissa V Chan; Ivana Vojnovic; Antonia B Solomon; Michael Emerson; Jane A Mitchell; Timothy D Warner
Journal:  Proc Natl Acad Sci U S A       Date:  2013-09-03       Impact factor: 11.205

Review 7.  Clinical and molecular genetics of the phosphodiesterases (PDEs).

Authors:  Monalisa F Azevedo; Fabio R Faucz; Eirini Bimpaki; Anelia Horvath; Isaac Levy; Rodrigo B de Alexandre; Faiyaz Ahmad; Vincent Manganiello; Constantine A Stratakis
Journal:  Endocr Rev       Date:  2013-12-05       Impact factor: 19.871

8.  The sGC stimulator riociguat inhibits platelet function in washed platelets but not in whole blood.

Authors:  C Reiss; I Mindukshev; V Bischoff; H Subramanian; L Kehrer; A Friebe; J-P Stasch; S Gambaryan; U Walter
Journal:  Br J Pharmacol       Date:  2015-10-18       Impact factor: 8.739

Review 9.  Targeting phosphodiesterases in anti-platelet therapy.

Authors:  Matthew T Rondina; Andrew S Weyrich
Journal:  Handb Exp Pharmacol       Date:  2012

10.  Protein kinase C-mediated phosphorylation and activation of PDE3A regulate cAMP levels in human platelets.

Authors:  Roger W Hunter; Carol Mackintosh; Ingeborg Hers
Journal:  J Biol Chem       Date:  2009-03-04       Impact factor: 5.157

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