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Updated: Jun 23, 2026

Tracking Drug-induced Changes in Receptor Post-internalization Trafficking by Colocalizational Analysis
Published on: July 3, 2015
In vivo delta opioid receptor internalization controls behavioral effects of agonists
Amynah A A Pradhan1, Jérôme A J Becker, Grégory Scherrer
1Institut de Génétique et de Biologie Moléculaire et Cellulaire, Centre National de la Recherche Scientifique/Institut National de la Santé et de la Recherche Médicale/Université Louis Pasteur, Illkirch, France.
Background:
GPCRs regulate a remarkable diversity of biological functions, and are thus often targeted for drug therapies. Stimulation of a GPCR by an extracellular ligand triggers receptor signaling via G proteins, and this process is highly regulated. Receptor activation is typically accompanied by desensitization of receptor signaling, a complex feedback regulatory process of which receptor internalization is postulated as a key event. The in vivo significance of GPCR internalization is poorly understood. In fact, the majority of studies have been performed in transfected cell systems, which do not adequately model physiological environments and the complexity of integrated responses observed in the whole animal.
Methods And Findings:
In this study, we used knock-in mice expressing functional fluorescent delta opioid receptors (DOR-eGFP) in place of the native receptor to correlate receptor localization in neurons with behavioral responses. We analyzed the pain-relieving effects of two delta receptor agonists with similar signaling potencies and efficacies, but distinct internalizing properties. An initial treatment with the high (SNC80) or low (AR-M100390) internalizing agonist equally reduced CFA-induced inflammatory pain. However, subsequent drug treatment produced highly distinct responses. Animals initially treated with SNC80 showed no analgesic response to a second dose of either delta receptor agonist. Concomitant receptor internalization and G-protein uncoupling were observed throughout the nervous system. This loss of function was temporary, since full DOR-eGFP receptor responses were restored 24 hours after SNC80 administration. In contrast, treatment with AR-M100390 resulted in retained analgesic response to a subsequent agonist injection, and ex vivo analysis showed that DOR-eGFP receptor remained G protein-coupled on the cell surface. Finally SNC80 but not AR-M100390 produced DOR-eGFP phosphorylation, suggesting that the two agonists produce distinct active receptor conformations in vivo which likely lead to differential receptor trafficking.
Conclusions:
Together our data show that delta agonists retain full analgesic efficacy when receptors remain on the cell surface. In contrast, delta agonist-induced analgesia is abolished following receptor internalization, and complete behavioral desensitization is observed. Overall these results establish that, in the context of pain control, receptor localization fully controls receptor function in vivo. This finding has both fundamental and therapeutic implications for slow-recycling GPCRs.
Insights
Receptor internalization abolishes delta opioid receptor (DOR) analgesic effects, while cell surface receptors retain efficacy. This shows that receptor localization controls in vivo function for pain management.
Area of Science:
- Neuroscience
- Pharmacology
- Cell Biology
Background:
- G protein-coupled receptors (GPCRs) are crucial drug targets involved in diverse biological functions.
- GPCR signaling is tightly regulated, with receptor desensitization and internalization as key feedback mechanisms.
- The in vivo relevance of GPCR internalization remains poorly understood, with most studies using artificial cell systems.
Purpose of the Study:
- To investigate the in vivo significance of delta opioid receptor (DOR) internalization in regulating pain perception and analgesic responses.
- To correlate the cellular localization of DORs with behavioral outcomes in a mouse model.
Main Methods:
- Utilized knock-in mice expressing fluorescent DORs (DOR-eGFP) to track receptor localization in neurons.
- Administered two delta receptor agonists with similar signaling properties but different internalization effects (SNC80 and AR-M100390).
- Assessed analgesic responses to initial and subsequent agonist treatments, alongside ex vivo receptor localization and G-protein coupling.
Main Results:
- Both agonists initially produced comparable analgesia, but subsequent treatments revealed distinct effects.
- High-internalizing agonist SNC80 led to complete loss of analgesic response and receptor internalization/G-protein uncoupling.
- Low-internalizing agonist AR-M100390 maintained analgesic efficacy, with receptors remaining G protein-coupled on the cell surface.
- SNC80, but not AR-M100390, induced DOR-eGFP phosphorylation, indicating distinct active receptor conformations.
Conclusions:
- Delta opioid agonist-induced analgesia is dependent on receptor localization; efficacy is retained when receptors stay on the cell surface.
- Receptor internalization leads to complete behavioral desensitization and abolished analgesic effects in vivo.
- Receptor localization is a critical determinant of GPCR function in the context of pain control, with significant implications for drug development.
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