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.

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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