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Pharmacological characterization of adenosine receptors in PGT-beta mouse pineal gland tumour cells.
- Source :
-
British journal of pharmacology [Br J Pharmacol] 2001 Sep; Vol. 134 (1), pp. 132-42. - Publication Year :
- 2001
-
Abstract
- 1. The adenosine receptor in mouse pinealocytes was identified and characterized using pharmacological and physiological approaches. 2. Expression of the two adenosine receptor subtypes A2B and A3 was detected in mouse pineal glands and PGT-beta cells by polymerase chain reaction and nucleotide sequencing. 3. Adenosine and 5'-N-ethylcarboxamidoadenosine (NECA) evoked cyclic AMP generation but the A2)-selective agonist 2-(4-(2-carboxyethyl)phenylethylamino)adenosine-5'-N-ethylcarboxamideadenosine (CGS 21680) and the A1-specific agonists R-N(6)-(2-phenylisopropyl)adenosine (R-PIA) and N(6)-cyclopentyladenosine (CPA) had little effect on intracellular cyclic AMP levels. The A2B receptor selective antagonists alloxazine and enprofylline completely blocked NECA-mediated cyclic AMP accumulation. 4. Treatment of cells with the A3-selective agonist N(6)-(3-iodobenzyl)-5'-(N-methylcarbamoyl)adenosine (IB-MECA) inhibited the elevation of the cyclic AMP level induced by NECA or isoproterenol in a concentration-dependent manner with maximal inhibition of 40 - 50%. These responses were blocked by the specific A3 adenosine receptor antagonist MRS 1191. Pretreatment of the cells with pertussis toxin attenuated the IB-MECA-induced responses, suggesting that this effect occurred via the pertussis toxin-sensitive inhibitory G proteins. 5. IB-MECA also caused a concentration-dependent elevation in [Ca(2+)]i and IP3 content. Both the responses induced by IB-MECA were attenuated by treatment with U73122 or phorbol 12-myristate 13-acetate. 6. These data suggest the presence of both A2B and A3 adenosine receptors in mouse pineal tumour cells and that the A2B receptor is positively coupled to adenylyl cyclase whereas the A3 receptor is negatively coupled to adenylyl cyclase and also coupled to phospholipase C.
- Subjects :
- 4-(3-Butoxy-4-methoxybenzyl)-2-imidazolidinone pharmacology
Adenosine pharmacology
Adenosine Triphosphate pharmacology
Adenosine-5'-(N-ethylcarboxamide) pharmacology
Adenylate Cyclase Toxin
Adenylyl Cyclases metabolism
Animals
Calcium metabolism
Colforsin pharmacology
Cyclic AMP metabolism
Dihydropyridines pharmacology
Dose-Response Relationship, Drug
Enzyme Activation drug effects
Estrenes pharmacology
GTP-Binding Proteins drug effects
GTP-Binding Proteins metabolism
Gene Expression Regulation, Neoplastic drug effects
Inositol 1,4,5-Trisphosphate metabolism
Isoproterenol pharmacology
Mice
Mice, Inbred CBA
Pertussis Toxin
Phospholipases metabolism
Pinealoma pathology
Pyrrolidinones pharmacology
RNA, Messenger drug effects
RNA, Messenger genetics
RNA, Messenger metabolism
Receptor, Adenosine A2B
Receptor, Adenosine A3
Receptors, Purinergic P1 genetics
Receptors, Purinergic P1 physiology
Tetradecanoylphorbol Acetate pharmacology
Time Factors
Tumor Cells, Cultured
Virulence Factors, Bordetella pharmacology
Adenosine analogs & derivatives
Pinealoma metabolism
Receptors, Purinergic P1 drug effects
Subjects
Details
- Language :
- English
- ISSN :
- 0007-1188
- Volume :
- 134
- Issue :
- 1
- Database :
- MEDLINE
- Journal :
- British journal of pharmacology
- Publication Type :
- Academic Journal
- Accession number :
- 11522605
- Full Text :
- https://doi.org/10.1038/sj.bjp.0704218