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Updated: Aug 31, 2026

Quantifying Agonist Activity at G Protein-coupled Receptors
Published on: December 26, 2011
Multiple kinases phosphorylate the pancreatic cholecystokinin receptor in an agonist-dependent manner
L K Gates1, C D Ulrich, L J Miller
1Center for Basic Research in Digestive Diseases, Mayo Clinic and Foundation, Rochester, Minnesota 55905.
Abstract:
The cholecystokinin (CCK) receptor on the rat pancreatic acinar cell is a guanine nucleotide-binding protein (G protein)-coupled receptor, which was recently demonstrated to be phosphorylated in response to agonist stimulation (Klueppelberg et al., J. Biol. Chem. 266: 17744-17746, 1991). In this work, we establish that this receptor is phosphorylated in response to a variety of homologous and heterologous secretagogues and that these phosphorylation events represent action by more than one protein kinase. One subgroup of kinases includes one or more isotype of protein kinase C (PKC), and is capable of playing a role in homologous and heterologous desensitization. A second subgroup of kinases that acts on the CCK receptor was defined by its resistance to 10 microM staurosporine, which was shown to inhibit all PKC in these cells. The activity of the second group of kinases was observed only in response to occupation of the CCK receptor by high concentrations of native hormone, raising the possibility of a "receptor-specific kinase." Similar to the prototypical kinase, beta-adrenergic receptor kinase (beta-ARK), this activity was inhibited in permeabilized cells by heparin. Furthermore, like this enzyme activity, beta-ARK was shown to be resistant to staurosporine. Based on its action on a G protein-coupled receptor, its activation at high concentrations of native agonist, and its pattern of inhibition, we believe that the staurosporine-insensitive CCK receptor kinase activity represents either beta-ARK or a closely related member of the receptor-specific kinase enzyme family.
Insights
The cholecystokinin (CCK) receptor is phosphorylated by multiple protein kinases, including protein kinase C (PKC) and a staurosporine-insensitive kinase. This activity suggests a receptor-specific kinase, potentially beta-adrenergic receptor kinase (beta-ARK), is involved in CCK receptor regulation.
Area of Science:
- Biochemistry
- Cell Biology
- Pharmacology
Background:
- The cholecystokinin (CCK) receptor on rat pancreatic acinar cells is a G protein-coupled receptor.
- CCK receptor phosphorylation occurs upon agonist stimulation, suggesting a role for protein kinases.
Purpose of the Study:
- To investigate the protein kinases involved in CCK receptor phosphorylation.
- To determine if distinct kinases mediate homologous and heterologous desensitization.
- To identify potential receptor-specific kinases acting on the CCK receptor.
Main Methods:
- Stimulation of rat pancreatic acinar cells with various secretagogues.
- Analysis of CCK receptor phosphorylation patterns.
- Use of staurosporine to differentiate kinase activities.
- Investigation of kinase inhibition by heparin in permeabilized cells.
Main Results:
- CCK receptor phosphorylation is mediated by multiple protein kinases, including protein kinase C (PKC) isotypes.
- A staurosporine-insensitive kinase activity was identified, distinct from PKC.
- This staurosporine-insensitive activity was observed at high CCK concentrations and inhibited by heparin.
- The characteristics of this kinase activity resemble beta-adrenergic receptor kinase (beta-ARK).
Conclusions:
- CCK receptor phosphorylation involves at least two distinct kinase subgroups.
- Protein kinase C (PKC) plays a role in CCK receptor desensitization.
- A staurosporine-insensitive kinase, potentially beta-ARK or a related enzyme, acts on the CCK receptor, suggesting a receptor-specific regulatory mechanism.
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