Ligand-induced mu opioid receptor endocytosis and recycling in enteric neurons

J G Minnis1, S Patierno, S E Kohlmeier

  • 1CURE Digestive Diseases Research Center, Building 115, Veterans Administration Greater Los Angeles Healthcare System, Digestive Diseases Division, 11301 Wilshire Boulevard, Los Angeles, CA 90073, USA.

Neuroscience
|May 24, 2003
PubMed

Insights

Native mu opioid receptors (muOR) in enteric neurons undergo clathrin-mediated endocytosis and recycling. This process is ligand-selective, with recycled receptors remaining functional and responsive to agonists like DAMGO.

Area of Science:

  • Neuroscience
  • Gastroenterology
  • Cell Biology

Background:

  • The mu opioid receptor (muOR) plays a crucial role in regulating gastrointestinal function.
  • Understanding the dynamic behavior of muOR in enteric neurons is essential for elucidating opioid signaling in the gut.

Purpose of the Study:

  • To investigate the endocytosis and recycling mechanisms of native mu opioid receptors (muOR) in enteric neurons.
  • To determine the ligand selectivity and functional recovery of recycled muOR.

Main Methods:

  • Immunohistochemistry and confocal microscopy were employed to visualize muOR.
  • Experiments involved exposing guinea-pig ileum segments to various muOR agonists and antagonists.
  • Receptor internalization and recycling were monitored over time using different pharmacological inhibitors.

Main Results:

  • Specific muOR agonists (DAMGO, etorphine, fentanyl) induced rapid, concentration-dependent internalization of muOR in enteric neurons, while morphine did not.
  • muOR internalization was primarily mediated by clathrin-dependent endocytosis and was prevented by antagonists.
  • Recycling of internalized muOR was dependent on endosomal acidification and resulted in functional receptors capable of re-internalization.

Conclusions:

  • Native muOR in enteric neurons exhibit ligand-selective, clathrin-mediated endocytosis.
  • Recycled muOR are functional and can be re-internalized upon subsequent agonist exposure.
  • These findings provide insights into the regulation of opioid signaling in the enteric nervous system.

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