Agonist-specific down regulation of mu-opioid receptors: Different cellular pathways are activated by different

Binyamin Binyaminy1, Mikhal Gafni, Ma'anit Shapira

  • 1The Mauerberger Chair in Neuropharmacology, Department of Physiology and Pharmacology, Sackler Faculty of Medicine, Tel-Aviv University, Tel-Aviv 69978, Israel.

Life Sciences
|March 25, 2008
PubMed

Insights

Opioid agonists like etorphine can reduce opioid receptors via a classical pathway or a novel membrane-based mechanism. This second pathway, specific to certain agonists, impacts long-term opioid drug effects.

Area of Science:

  • Pharmacology
  • Cell Biology
  • Neuroscience

Background:

  • Opioid agonists typically downregulate opioid receptors through endocytosis and degradation.
  • This process involves receptor phosphorylation, clathrin-dependent endocytosis, and lysosomal/endosomal degradation.

Purpose of the Study:

  • To investigate the mechanisms of opioid receptor downregulation induced by different opioid agonists.
  • To identify agonist-specific pathways of opioid receptor regulation.

Main Methods:

  • HEK-293 cells transfected with mu-opioid receptors (MOR) and delta-opioid receptors (DOR) were used.
  • Cells and isolated membranes were treated with agonists (DAMGO, etorphine) and inhibitors (staurosporine, chloroquine, lactacystin, naloxone).
  • Receptor downregulation was assessed in whole cells and isolated membranes.

Main Results:

  • Both DAMGO and etorphine induced classical receptor downregulation, blocked by inhibitors.
  • High etorphine concentrations triggered an additional, inhibitor-resistant downregulation pathway.
  • Etorphine, but not DAMGO, induced membrane-delimited receptor downregulation via proteases, blocked by naloxone.
  • This membrane-based downregulation occurred for MOR and DOR.

Conclusions:

  • Opioid agonists can induce receptor downregulation through distinct classical and membrane-delimited pathways.
  • The membrane-delimited pathway, triggered by specific agonists like etorphine, involves proteases and is naloxone-sensitive.
  • This novel regulatory mechanism is relevant for understanding long-term opioid drug effects.

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