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Brain Slice Biotinylation: An Ex Vivo Approach to Measure Region-specific Plasma Membrane Protein Trafficking in Adult Neurons
Published on: April 3, 2014
Differential activation and trafficking of micro-opioid receptors in brain slices
Seksiri Arttamangkul1, Nidia Quillinan, Malcolm J Low
1Vollum Institute, L474, Department of Behavioral Neuroscience, Oregon Health Sciences University, 3181 W Sam Jackson Park Dr., Portland, OR 97239, USA.
Abstract:
The activation of G protein-coupled receptors results in a cascade of events that include acute signaling, desensitization, and internalization, and it is thought that not all agonists affect each process to the same extent. The early steps in opioid receptor signaling, including desensitization, have been characterized electrophysiologically using brain slice preparations, whereas most previous studies of opioid receptor trafficking have been conducted in heterologous cell models. This study used transgenic mice that express an epitope-tagged (FLAG) micro-opioid receptor (FLAGMOR) targeted to catecholamine neurons by regulatory elements from the tyrosine hydroxylase gene. Brain slices from these mice were used to study tagged MOR receptors in neurons of the locus ceruleus. Activation of the FLAGMOR with [Met5]enkephalin (ME) produced a hyperpolarization that desensitized acutely to the same extent as native MOR in slices from wild-type mice. A series of opioid agonists were then used to study desensitization and receptor trafficking in brain slices, which was monitored with a monoclonal antibody against the FLAG epitope (M1) conjugated to Alexa 594. Three patterns of receptor trafficking and desensitization were observed: 1) ME, etorphine, and methadone resulted in both receptor desensitization and internalization; 2) morphine and oxymorphone caused significant desensitization without evidence for internalization; and 3) oxycodone was ineffective in both processes. These results show that two distinct forms of signaling were differentially engaged depending on the agonist used to activate the receptor, and they support the hypothesis that ligand-specific regulation of opioid receptors occurs in neurons maintained in brain slices from adult animals.
Insights
Different opioid agonists cause distinct micro-opioid receptor (MOR) desensitization and internalization patterns in mouse brain slices. This reveals ligand-specific regulation of MOR signaling in neurons.
Area of Science:
- Neuroscience
- Pharmacology
- Molecular Biology
Background:
- G protein-coupled receptor activation involves signaling, desensitization, and internalization.
- Opioid receptor signaling studies have primarily used heterologous cell models.
- Understanding opioid receptor dynamics in native neuronal environments is crucial.
Purpose of the Study:
- To investigate ligand-specific desensitization and trafficking of the micro-opioid receptor (MOR) in native neurons.
- To compare MOR responses to various opioid agonists in mouse brain slices.
- To explore differential signaling patterns based on agonist activation.
Main Methods:
- Utilized transgenic mice expressing epitope-tagged micro-opioid receptors (FLAGMOR) in catecholamine neurons.
- Examined receptor desensitization and internalization in locus ceruleus neurons using brain slice preparations.
- Monitored FLAGMOR trafficking with an anti-FLAG epitope antibody conjugated to Alexa 594.
Main Results:
- Agonists like [Met5]enkephalin (ME), etorphine, and methadone induced both MOR desensitization and internalization.
- Morphine and oxymorphone caused significant desensitization but no observable internalization.
- Oxycodone was ineffective in inducing either desensitization or internalization.
Conclusions:
- Demonstrated distinct patterns of micro-opioid receptor desensitization and trafficking dependent on the activating agonist.
- Supported the hypothesis of ligand-specific regulation of opioid receptors within native neuronal systems.
- Highlighted the utility of brain slice preparations for studying receptor dynamics in a physiological context.

