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Updated: Feb 4, 2026

Assessment of Morphine-induced Hyperalgesia and Analgesic Tolerance in Mice Using Thermal and Mechanical Nociceptive Modalities
Published on: July 29, 2014
Exploring Morphine-Triggered PKC-Targets and Their Interaction with Signaling Pathways Leading to Pain via TrkA
Darlene A Pena1, Mariana Lemos Duarte2, Dimitrius T Pramio3
1Department of Biochemistry, Chemistry Institute, University of São Paulo, Sao Paulo 05508-220, Brazil. darlenebqi@yahoo.com.br.
Abstract:
It is well accepted that treatment of chronic pain with morphine leads to μ opioid receptor (MOR) desensitization and the development of morphine tolerance. MOR activation by the selective peptide agonist, D-Ala2, N-MePhe4, Gly-ol]-enkephalin(DAMGO), leads to robust G protein receptor kinase activation, β-arrestin recruitment, and subsequent receptor endocytosis, which does not occur in an activation by morphine. However, MOR activation by morphine induces receptor desensitization, in a Protein kinase C (PKC) dependent manner. PKC inhibitors have been reported to decrease receptor desensitization, reduce opiate tolerance, and increase analgesia. However, the exact role of PKC in these processes is not clearly delineated. The difficulties in establishing a particular role for PKC have been, in part, due to the lack of reagents that allow the selective identification of PKC targets. Recently, we generated a conformation state-specific anti-PKC antibody that preferentially recognizes the active state of this kinase. Using this antibody to selectively isolate PKC substrates and a proteomics strategy to establish the identity of the proteins, we examined the effect of morphine treatment on the PKC targets. We found an enhanced interaction of a number of proteins with active PKC, in the presence of morphine. In this article, we discuss the role of these proteins in PKC-mediated MOR desensitization and analgesia. In addition, we posit a role for some of these proteins in mediating pain by TrKA activation, via the activation of transient receptor potential cation channel subfamily V member 1 (TRPV1). Finally, we discuss how these new PKC interacting proteins and pathways could be targeted for the treatment of pain.
Insights
Morphine tolerance involves Protein Kinase C (PKC) pathway. New methods identified PKC targets, revealing proteins involved in morphine-induced desensitization and potential pain treatment strategies.
Area of Science:
- Pharmacology
- Neuroscience
- Molecular Biology
Background:
- Chronic pain treatment with morphine causes μ opioid receptor (MOR) desensitization and tolerance.
- Morphine, unlike peptide agonists, desensitizes MOR via a Protein Kinase C (PKC) dependent pathway.
- Previous research on PKC's role is limited by the lack of specific reagents to identify its targets.
Purpose of the Study:
- To investigate the specific role of PKC in morphine-induced MOR desensitization and tolerance.
- To identify novel PKC substrates involved in opioid receptor regulation.
- To explore potential therapeutic targets for pain management by understanding these molecular interactions.
Main Methods:
- Generation of a conformation state-specific anti-PKC antibody to identify active PKC.
- Utilizing proteomics to identify proteins interacting with active PKC following morphine treatment.
- Examining the role of identified proteins in MOR desensitization and analgesia.
Main Results:
- Morphine treatment enhanced the interaction of several proteins with active PKC.
- Identified novel PKC substrates involved in the desensitization of MOR.
- These findings suggest a complex PKC-mediated signaling network in opioid tolerance.
Conclusions:
- PKC plays a critical role in morphine-induced MOR desensitization and the development of tolerance.
- Newly identified PKC interacting proteins offer potential therapeutic targets for managing chronic pain.
- Some identified proteins may mediate pain through TrKA and TRPV1 activation, suggesting multifaceted pain pathways.
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