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Assessment of Morphine-induced Hyperalgesia and Analgesic Tolerance in Mice Using Thermal and Mechanical Nociceptive Modalities
Published on: July 29, 2014
mGluR5 from Primary Sensory Neurons Promotes Opioid-Induced Hyperalgesia and Tolerance by Interacting with and
Daozhong Jin1, Hong Chen1, Meng-Hua Zhou1
1Center for Neuroscience and Pain Research, Department of Anesthesiology and Perioperative Medicine, University of Texas MD Anderson Cancer Center, Houston, Texas 77030.
Abstract:
Aberrant activation of presynaptic NMDARs in the spinal dorsal horn is integral to opioid-induced hyperalgesia and analgesic tolerance. However, the signaling mechanisms responsible for opioid-induced NMDAR hyperactivity remain poorly identified. Here, we show that repeated treatment with morphine or fentanyl reduced monomeric mGluR5 protein levels in the dorsal root ganglion (DRG) but increased levels of mGluR5 monomers and homodimers in the spinal cord in mice and rats of both sexes. Coimmunoprecipitation analysis revealed that monomeric and dimeric mGluR5 in the spinal cord, but not monomeric mGluR5 in the DRG, directly interacted with GluN1. By contrast, mGluR5 did not interact with μ-opioid receptors in the DRG or spinal cord. Repeated morphine treatment markedly increased the mGluR5-GluN1 interaction and protein levels of mGluR5 and GluN1 in spinal synaptosomes. The mGluR5 antagonist MPEP reversed morphine treatment-augmented mGluR5-GluN1 interactions, GluN1 synaptic expression, and dorsal root-evoked monosynaptic EPSCs of dorsal horn neurons. Furthermore, CRISPR-Cas9-induced conditional mGluR5 knockdown in DRG neurons normalized mGluR5 levels in spinal synaptosomes and NMDAR-mediated EPSCs of dorsal horn neurons increased by morphine treatment. Correspondingly, intrathecal injection of MPEP or conditional mGluR5 knockdown in DRG neurons not only potentiated the acute analgesic effect of morphine but also attenuated morphine treatment-induced hyperalgesia and tolerance. Together, our findings suggest that opioid treatment promotes mGluR5 trafficking from primary sensory neurons to the spinal dorsal horn. Through dimerization and direct interaction with NMDARs, presynaptic mGluR5 potentiates and/or stabilizes NMDAR synaptic expression and activity at primary afferent central terminals, thereby maintaining opioid-induced hyperalgesia and tolerance.SIGNIFICANCE STATEMENT Opioids are essential analgesics for managing severe pain caused by cancer, surgery, and tissue injury. However, these drugs paradoxically induce pain hypersensitivity and tolerance, which can cause rapid dose escalation and even overdose mortality. This study demonstrates, for the first time, that opioids promote trafficking of mGluR5, a G protein-coupled glutamate receptor, from peripheral sensory neurons to the spinal cord; there, mGluR5 proteins dimerize and physically interact with NMDARs to augment their synaptic expression and activity. Through dynamic interactions, the two distinct glutamate receptors mutually amplify and sustain nociceptive input from peripheral sensory neurons to the spinal cord. Thus, inhibiting mGluR5 activity or disrupting mGluR5-NMDAR interactions could reduce opioid-induced hyperalgesia and tolerance and potentiate opioid analgesic efficacy.
Insights
Opioid treatment increases spinal cord levels of mGluR5, which then interacts with NMDARs to cause pain hypersensitivity and tolerance. Inhibiting mGluR5 can enhance opioid pain relief and reduce side effects.
Area of Science:
- Neuroscience
- Pharmacology
- Pain Research
Background:
- Aberrant activation of NMDARs contributes to opioid-induced hyperalgesia and tolerance.
- Signaling mechanisms behind opioid-induced NMDAR hyperactivity are not fully understood.
Purpose of the Study:
- To elucidate the signaling mechanisms responsible for opioid-induced NMDAR hyperactivity.
- To investigate the role of mGluR5 in opioid-induced hyperalgesia and tolerance.
Main Methods:
- Repeated morphine or fentanyl treatment in mice and rats.
- Coimmunoprecipitation analysis to detect protein interactions.
- CRISPR-Cas9-induced conditional mGluR5 knockdown.
- Administration of mGluR5 antagonist MPEP.
Main Results:
- Opioid treatment reduced DRG mGluR5 but increased spinal cord mGluR5 monomers and homodimers.
- Spinal mGluR5 monomers and dimers interacted with GluN1, not μ-opioid receptors.
- Morphine increased mGluR5-GluN1 interaction and synaptic expression of mGluR5 and GluN1.
- MPEP and mGluR5 knockdown reversed morphine-induced changes and potentiated acute analgesia while attenuating hyperalgesia and tolerance.
Conclusions:
- Opioid treatment promotes mGluR5 trafficking to the spinal cord, where it dimerizes and interacts with NMDARs.
- This interaction potentiates NMDAR activity, maintaining opioid-induced hyperalgesia and tolerance.
- Targeting mGluR5 or mGluR5-NMDAR interactions may offer strategies to improve opioid efficacy and reduce adverse effects.
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