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Updated: Mar 26, 2026

Tracking Drug-induced Changes in Receptor Post-internalization Trafficking by Colocalizational Analysis
Published on: July 3, 2015
Plasma membrane localization of the μ-opioid receptor controls spatiotemporal signaling
Michelle L Halls1, Holly R Yeatman2, Cameron J Nowell2
1Drug Discovery Biology Theme, Monash Institute of Pharmaceutical Sciences, Monash University, Parkville, Victoria 3052, Australia. michelle.halls@monash.edu meri.canals@monash.edu.
Abstract:
Differential regulation of the μ-opioid receptor (MOR), a G protein (heterotrimeric guanine nucleotide-binding protein)-coupled receptor, contributes to the clinically limiting effects of opioid analgesics, such as morphine. We used biophysical approaches to quantify spatiotemporal MOR signaling in response to different ligands. In human embryonic kidney (HEK) 293 cells overexpressing MOR, morphine caused a Gβγ-dependent increase in plasma membrane-localized protein kinase C (PKC) activity, which resulted in a restricted distribution of MOR within the plasma membrane and induced sustained cytosolic extracellular signal-regulated kinase (ERK) signaling. In contrast, the synthetic opioid peptide DAMGO ([d-Ala(2),N-Me-Phe(4),Gly(5)-ol]-enkephalin) enabled receptor redistribution within the plasma membrane, resulting in transient increases in cytosolic and nuclear ERK activity, and, subsequently, receptor internalization. When Gβγ subunits or PKCα activity was inhibited or when the carboxyl-terminal phosphorylation sites of MOR were mutated, morphine-activated MOR was released from its restricted plasma membrane localization and stimulated a transient increase in cytosolic and nuclear ERK activity in the absence of receptor internalization. Thus, these data suggest that the ligand-induced redistribution of MOR within the plasma membrane, and not its internalization, controls its spatiotemporal signaling.
Insights
Ligand binding to the μ-opioid receptor (MOR) controls its location in the cell membrane, influencing downstream signaling. Receptor redistribution, not internalization, dictates the spatiotemporal signaling patterns of MOR.
Area of Science:
- Pharmacology
- Cell Biology
- Biophysics
Background:
- The μ-opioid receptor (MOR) is a G protein-coupled receptor crucial for opioid analgesic effects.
- Differential regulation of MOR signaling contributes to the dose-limiting side effects of opioids like morphine.
- Understanding MOR spatiotemporal signaling is key to developing safer analgesics.
Purpose of the Study:
- To investigate how different ligands modulate MOR spatiotemporal signaling dynamics.
- To elucidate the mechanisms controlling MOR localization and downstream signaling pathways.
- To determine whether receptor redistribution or internalization dictates signaling outcomes.
Main Methods:
- Utilized biophysical approaches in human embryonic kidney (HEK) 293 cells overexpressing MOR.
- Quantified spatiotemporal MOR signaling in response to morphine and DAMGO.
- Assessed the roles of Gβγ subunits, protein kinase C (PKC), and MOR phosphorylation sites.
Main Results:
- Morphine induced Gβγ-dependent PKC activity, restricting MOR to the plasma membrane and causing sustained extracellular signal-regulated kinase (ERK) signaling.
- DAMGO promoted MOR redistribution, leading to transient ERK activation and subsequent receptor internalization.
- Inhibition of Gβγ/PKC or mutation of MOR phosphorylation sites released morphine-activated MOR, causing transient ERK signaling without internalization.
Conclusions:
- Ligand-induced redistribution of MOR within the plasma membrane is the primary determinant of its spatiotemporal signaling.
- Receptor internalization is not the main driver of transient ERK signaling.
- These findings offer insights into the differential signaling of MOR, potentially guiding the development of novel analgesics.
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