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Updated: Apr 5, 2026

Assessment of Morphine-induced Hyperalgesia and Analgesic Tolerance in Mice Using Thermal and Mechanical Nociceptive Modalities
Published on: July 29, 2014
Mu Opioid Splice Variant MOR-1K Contributes to the Development of Opioid-Induced Hyperalgesia
Folabomi A Oladosu1, Matthew S Conrad2, Sandra C O'Buckley1
1Center of Pain Research and Innovation, University of North Carolina-Chapel Hill, Chapel Hill, NC, United States of America.
Background:
A subset of the population receiving opioids for the treatment of acute and chronic clinical pain develops a paradoxical increase in pain sensitivity known as opioid-induced hyperalgesia. Given that opioid analgesics are one of few treatments available against clinical pain, it is critical to determine the key molecular mechanisms that drive opioid-induced hyperalgesia in order to reduce its prevalence. Recent evidence implicates a splice variant of the mu opioid receptor known as MOR-1K in the emergence of opioid-induced hyperalgesia. Results from human genetic association and cell signaling studies demonstrate that MOR-1K contributes to decreased opioid analgesic responses and produces increased cellular activity via Gs signaling. Here, we conducted the first study to directly test the role of MOR-1K in opioid-induced hyperalgesia.
Methods And Results:
In order to examine the role of MOR-1K in opioid-induced hyperalgesia, we first assessed pain responses to mechanical and thermal stimuli prior to, during, and following chronic morphine administration. Results show that genetically diverse mouse strains (C57BL/6J, 129S6, and CXB7/ByJ) exhibited different morphine response profiles with corresponding changes in MOR-1K gene expression patterns. The 129S6 mice exhibited an analgesic response correlating to a measured decrease in MOR-1K gene expression levels, while CXB7/ByJ mice exhibited a hyperalgesic response correlating to a measured increase in MOR-1K gene expression levels. Furthermore, knockdown of MOR-1K in CXB7/ByJ mice via chronic intrathecal siRNA administration not only prevented the development of opioid-induced hyperalgesia, but also unmasked morphine analgesia.
Conclusions:
These findings suggest that MOR-1K is likely a necessary contributor to the development of opioid-induced hyperalgesia. With further research, MOR-1K could be exploited as a target for antagonists that reduce or prevent opioid-induced hyperalgesia.
Insights
Opioid-induced hyperalgesia, a paradoxical pain increase, is linked to the mu opioid receptor-1K (MOR-1K) variant. Reducing MOR-1K in mice prevented this hyperalgesia and restored pain relief from morphine.
Area of Science:
- Neuroscience
- Pharmacology
- Genetics
Background:
- Opioid analgesics can paradoxically increase pain sensitivity, a condition known as opioid-induced hyperalgesia.
- The mu opioid receptor-1K (MOR-1K) splice variant is implicated in decreased analgesic responses and increased cellular activity.
- Understanding MOR-1K's role is crucial for mitigating opioid-induced hyperalgesia prevalence.
Purpose of the Study:
- To directly investigate the role of the MOR-1K variant in the development of opioid-induced hyperalgesia.
- To determine if MOR-1K expression levels correlate with analgesic or hyperalgesic responses to morphine.
Main Methods:
- Assessed pain responses to mechanical and thermal stimuli in genetically diverse mice during chronic morphine administration.
- Measured MOR-1K gene expression levels in correlation with observed pain responses.
- Utilized intrathecal siRNA to knockdown MOR-1K in a susceptible mouse strain.
Main Results:
- Different mouse strains displayed varied morphine response profiles and corresponding MOR-1K gene expression patterns.
- 129S6 mice showed analgesia with decreased MOR-1K expression; CXB7/ByJ mice showed hyperalgesia with increased MOR-1K expression.
- MOR-1K knockdown in CXB7/ByJ mice prevented opioid-induced hyperalgesia and unmasked morphine analgesia.
Conclusions:
- MOR-1K is a necessary factor in the development of opioid-induced hyperalgesia.
- Targeting MOR-1K with antagonists may offer a strategy to reduce or prevent opioid-induced hyperalgesia.
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