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Enhanced desensitization and phosphorylation of the beta 1-adrenergic receptor in rat adipocytes by peroxovanadate
S W Bahouth1, Y Gokmen-Polar, E C Coronel
1Department of Pharmacology, University of Tennessee, Memphis, 38163, USA.
Abstract:
Peroxovanadate (PVN) is an insulin-like agent that inhibits the dephosphorylation of the insulin receptor kinase. PVN inhibited the lipolytic action of 0.1 microM isoproterenol by 88%, which is a relatively specific beta 1 catecholamine agonist at this concentration, but was largely ineffective against beta 3 agonists or forskolin. To determine whether PVN-mediated desensitization of the beta 1 AR was associated with enhanced phosphorylation, we immunoprecipitated the beta 1 AR from rat adipocytes that were metabolically labeled with 32PO4. Isoproterenol enhanced the net phosphorylation of the beta 1 AR by 8 +/- 2-fold over control. PVN increased the net phosphorylation of the beta 1 AR by 5 +/- 0.5-fold, and together with isoproterenol, they enhanced the phosphorylation of the beta 1 AR by 2-fold over isoproterenol alone. Phosphoamino acid analysis of the phosphorylated receptor revealed phosphate incorporation into serine that was proportional to the radioactivity incorporated into the immunoprecipitated receptor. PVN inhibited the serine/threonine phosphatase calcineurin, suggesting that inhibition of receptor dephosphorylation may play a role in the actions of PVN. Cyanogen bromide cleavage of the phosphorylated beta 1 AR generated a phosphoprotein with a molecular mass consistent with carboxyl-terminal phosphorylation. Furthermore, the magnitude of receptor phosphorylation by isoproterenol was 3-fold larger than that due to forskolin, suggesting that beta 1 AR is a substrate for the beta AR kinase that phosphorylates carboxyl-terminal residues in the beta(2) AR. Our findings suggest that PVN may be a powerful new tool with which to study the phosphorylation of other G protein-coupled receptors.
Insights
Peroxovanadate (PVN) enhances beta 1 adrenergic receptor (AR) phosphorylation, potentially by inhibiting calcineurin phosphatase activity. This suggests PVN is a valuable tool for studying G protein-coupled receptor phosphorylation.
Area of Science:
- Pharmacology
- Cellular Biology
- Biochemistry
Background:
- Peroxovanadate (PVN) exhibits insulin-like properties by inhibiting insulin receptor kinase dephosphorylation.
- PVN modulates catecholamine agonist effects, specifically inhibiting beta 1 adrenergic receptor (AR) lipolytic actions.
Purpose of the Study:
- To investigate the role of receptor phosphorylation in PVN-mediated desensitization of the beta 1 AR.
- To explore PVN's mechanism of action on beta 1 AR phosphorylation and dephosphorylation.
Main Methods:
- Metabolic labeling of rat adipocytes with 32PO4.
- Immunoprecipitation of the beta 1 AR.
- Phosphoamino acid analysis and cyanogen bromide cleavage of the phosphorylated receptor.
- Assay of calcineurin phosphatase activity.
Main Results:
- Isoproterenol significantly enhanced beta 1 AR phosphorylation (8-fold).
- PVN alone increased beta 1 AR phosphorylation (5-fold) and potentiated isoproterenol-induced phosphorylation.
- PVN inhibited serine/threonine phosphatase calcineurin and promoted serine phosphorylation of the beta 1 AR.
- Receptor phosphorylation occurred at carboxyl-terminal residues, similar to beta 2 AR.
Conclusions:
- PVN enhances beta 1 AR phosphorylation, likely through calcineurin inhibition.
- PVN's effects on receptor phosphorylation suggest a role in desensitization.
- PVN represents a novel tool for investigating G protein-coupled receptor phosphorylation.