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Kappa opioid receptors expressed on three related thymoma cell lines. Differences in receptor-effector coupling

D M Lawrence1, D B Joseph, J M Bidlack

  • 1Department of Pharmacology, University of Rochester, School of Medicine and Dentistry, NY 14642.

Biochemical Pharmacology
|January 6, 1995
PubMed

Insights

Mouse thymoma cell lines R1.1, R1.G1, and R1EGO express kappa opioid receptors with varying coupling efficiencies to G-proteins and adenylyl cyclase. These cell lines serve as a model for studying opioid receptor signaling regulation.

Area of Science:

  • Pharmacology
  • Cell Biology
  • Neuroscience

Background:

  • The R1.1 mouse thymoma cell line expresses a high-affinity kappa 1 opioid receptor coupled to adenylyl cyclase via a pertussis toxin-sensitive G-protein.
  • Understanding opioid receptor signaling is crucial for developing targeted therapeutics.

Purpose of the Study:

  • To compare opioid receptor binding and adenylyl cyclase inhibition in R1.1 cell line derivatives.
  • To investigate the coupling efficiency of kappa opioid receptors to G-proteins and adenylyl cyclase in distinct cell lines.

Main Methods:

  • Radioreceptor binding assays using [3H]U69,593 and [3H](-)-bremazocine.
  • Measurement of adenylyl cyclase activity, including forskolin-stimulated activity.
  • Assay of low-Km GTPase activity stimulated by a kappa-selective agonist.

Main Results:

  • R1.G1 and R1EGO cell lines exhibited increased opioid receptor density compared to R1.1.
  • Opioid receptor binding was detected in R1.G1 and R1EGO, but not in R1E cell lines.
  • Inhibition of adenylyl cyclase activity by (-)U50,488 correlated with GTPase activity, not receptor number, indicating differential coupling efficiencies.

Conclusions:

  • The R1.1 cell line and its derivatives (R1.G1, R1EGO) express a consistent kappa opioid receptor type.
  • Significant variations in G-protein coupling and adenylyl cyclase inhibition exist among these cell lines.
  • These cell lines represent a valuable model for elucidating the regulation of opioid receptor-adenylyl cyclase coupling.

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