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Updated: Aug 1, 2026

An In-vitro Preparation of Isolated Enteric Neurons and Glia from the Myenteric Plexus of the Adult Mouse
Published on: August 7, 2013
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.
Abstract:
Immunohistochemistry and confocal microscopy were used to investigate endocytosis and recycling of the native mu opioid receptor (muOR) in enteric neurons. Isolated segments of the guinea-pig ileum were exposed to increasing concentrations of muOR agonists at 4 degrees C to allow ligand binding and warming to 37 degrees C for 0 min (baseline) to 6 h in ligand-free medium to allow receptor internalization and recycling. The endogenous ligand, [Met]enkephalin, and [D-Ala(2),MePhe(4),Gly-ol(5)] enkephalin (DAMGO), an opioid analog, and the alkaloids, etorphine and fentanyl, induced rapid internalization of muOR immunoreactivity in enteric neurons, whereas morphine did not. muOR internalization was prevented by muOR antagonists. Basal levels of muOR immunoreactivity in the cytoplasm were 10.52+/-2.05%. DAMGO (1 nM-100 microM) induced a concentration-dependent increase of muOR immunofluorescence density in the cytoplasm to a maximum of 84.37+/-2.26%. Translocation of muOR immunoreactivity in the cytoplasm was detected at 2 min, reached the maximum at 15-30 min, remained at similar levels for 2 h, began decreasing at 4 h, and was at baseline values at 6 h. A second exposure to DAMGO (100 nM) following recovery of internalized muOR immunoreactivity at the cell surface induced a translocation of muOR immunoreactivity in the cytoplasm comparable to the one observed following the first exposure (46.89+/-3.11% versus 43.31+/-3.80%). muOR internalization was prevented by hyperosmolar sucrose, phenylarsine oxide or potassium depletion, which inhibit clathrin-mediated endocytosis. muOR recycling was prevented by pre-treatment with bafilomycin A1, an acidotropic agent that inhibits endosomal acidification, but not by the protein synthesis inhibitor, cycloheximide. This study shows that native muOR in enteric neurons undergoes ligand-selective endocytosis, which is primarily clathrin-mediated, and recycles following endosomal acidification. Following recycling, muOR is activated and internalized by DAMGO indicating that recycled receptors are functional.
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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