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Updated: Aug 9, 2026

Assessment of Morphine-induced Hyperalgesia and Analgesic Tolerance in Mice Using Thermal and Mechanical Nociceptive Modalities
Published on: July 29, 2014
Post-opioid receptor adaptations to chronic morphine; altered functionality and associations of signaling molecules
Alan R Gintzler1, Sumita Chakrabarti
1Department of Biochemistry, State University of New York, Downstate Medical Center, 450 Clarkson Ave, Brooklyn, NY 11203, USA. alan.Gintzler@downstate.edu
Abstract:
Opioid desensitization/tolerance mechanisms have largely focused on adaptations that occur on the level of the mu-opioid receptor (MOR) itself. These include opioid receptor phosphorylation and ensuing trafficking events. Recent research, however, has revealed additional adaptations that occur downstream from the opioid receptor, which involve covalent modification of signaling molecules and altered associations among them. These include augmented isoform-specific synthesis of adenylyl cyclase (AC) and their phosphorylation as well as augmented phosphorylation of the G(beta) subunit of G(beta gamma). The aggregate effect of these changes is to shift mu-opioid receptor-coupled signaling from predominantly G(i alpha) inhibitory to (G(i)-derived) G(beta gamma) stimulatory AC signaling. Most recently, chronic morphine has been shown to enhance the association (interaction) between MOR and G(s), which should provide an additional avenue for offsetting inhibitory MOR signaling sequelae. The unfolding complexity of chronic morphine-induced sequelae demands an evolving broader and more encompassing perspective on opioid tolerance-producing mechanisms. This should facilitate understanding tolerance within the context of physiological plasticity that is activated by chronic exposure to drugs of abuse. Additional research is required to integrate the various tolerance-producing adaptations that have been elucidated to date. Specifically, the relative contribution to opioid tolerance of identified adaptations is still unknown as is the extent to which they vary among different regions of the central nervous system.
Insights
Opioid tolerance involves more than just the mu-opioid receptor (MOR). New mechanisms downstream of the MOR, including altered signaling molecule interactions, contribute to opioid desensitization and tolerance.
Area of Science:
- Neuroscience
- Pharmacology
- Molecular Biology
Background:
- Opioid tolerance mechanisms traditionally focus on mu-opioid receptor (MOR) adaptations like phosphorylation and trafficking.
- Emerging research highlights downstream adaptations involving signaling molecules and their interactions.
Purpose of the Study:
- To explore novel mechanisms of opioid tolerance beyond direct MOR modifications.
- To understand how downstream signaling adaptations contribute to desensitization and tolerance.
Main Methods:
- Investigated covalent modifications of signaling molecules.
- Analyzed altered protein-protein interactions in opioid signaling pathways.
- Examined adenylyl cyclase (AC) synthesis and phosphorylation.
- Studied G-protein subunit (G(beta gamma)) phosphorylation.
- Assessed MOR and G(s) protein interactions.
Main Results:
- Opioid exposure induces downstream adaptations, including altered adenylyl cyclase (AC) activity and G-protein signaling.
- Signaling shifts from inhibitory G(i alpha) to stimulatory G(beta gamma) pathways.
- Chronic morphine enhances MOR and G(s) protein association, counteracting inhibitory signaling.
Conclusions:
- Opioid tolerance is a complex process involving multiple downstream adaptations.
- Understanding these adaptations is crucial for a comprehensive view of opioid tolerance and drug abuse plasticity.
- Further research is needed to quantify the contribution of each adaptation and regional variations in the central nervous system.
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