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Updated: May 18, 2026

Assessment of Morphine-induced Hyperalgesia and Analgesic Tolerance in Mice Using Thermal and Mechanical Nociceptive Modalities
Published on: July 29, 2014
Morphine induces hyperalgesia without involvement of μ-opioid receptor or morphine-3-glucuronide
Maarten Swartjes1, René A G Mooren, Amanda R Waxman
1Department of Anesthesiology, Leiden University Medical Center, Leiden, the Netherlands.
Abstract:
Opioid-induced hyperalgesia (OIH) is a paradoxical increase in pain perception that may manifest during opioid treatment. For morphine, the metabolite morphine-3-glucuronide (M3G) is commonly believed to underlie this phenomenon. Here, in three separate studies, we empirically assess the role of M3G in morphine-induced hyperalgesia. In the first study, CD-1 mice injected with morphine (15 mg/kg subcutaneously) after pretreatment with the opioid receptor antagonist naltrexone (NTX) (15 mg/kg) showed tail withdrawal latency reductions indicative of hyperalgesia (2.5 ± 0.1 s at t = 30 min, P < 0.001 versus baseline). In these mice, the morphine/M3G concentration ratios versus effect showed a negative correlation (r(p) = -0.65, P < 0.001), indicating that higher morphine relative to M3G concentrations are associated with increased OIH. In the second study, similar hyperalgesic responses were observed in mice lacking the multidrug resistance protein 3 (MRP3) transporter protein (Mrp3(-/-) mice) in the liver and their wild-type controls (FVB mice; latency reductions: 3.1 ± 0.2 s at t = 30 min, P < 0.001 versus within-strain baseline). In the final study, the pharmacokinetics of morphine and M3G were measured in Mrp3(-/-) and FVB mice. Mrp3(-/-) mice displayed a significantly reduced capacity to export M3G into the systemic circulation, with plasma M3G concentrations just 7% of those observed in FVB controls. The data confirm previous literature that morphine causes hyperalgesia in the absence of opioid receptor activation but also indicate that this hyperalgesia may occur without a significant contribution of hepatic M3G. The relevance of these data to humans has yet to be demonstrated.
Insights
Morphine can paradoxically increase pain perception, known as opioid-induced hyperalgesia (OIH). This study suggests that morphine-induced hyperalgesia may occur independently of the metabolite morphine-3-glucuronide (M3G) and opioid receptor activation.
Area of Science:
- Pharmacology
- Neuroscience
- Pain Research
Background:
- Opioid-induced hyperalgesia (OIH) is a complex phenomenon complicating opioid therapy.
- Morphine-3-glucuronide (M3G) is a suspected mediator of OIH, though its precise role remains debated.
- Understanding OIH mechanisms is crucial for optimizing pain management strategies.
Purpose of the Study:
- To empirically investigate the role of M3G in morphine-induced hyperalgesia (OIH) in mice.
- To examine the relationship between morphine and M3G concentrations and hyperalgesic effects.
- To assess the impact of the multidrug resistance protein 3 (MRP3) transporter on M3G pharmacokinetics and OIH.
Main Methods:
- Three studies in CD-1 and FVB mice were conducted.
- Morphine-induced hyperalgesia was assessed using tail withdrawal latency tests.
- Pharmacokinetic analysis of morphine and M3G was performed in wild-type and Mrp3(-/-) mice.
Main Results:
- Morphine induced hyperalgesia even when opioid receptors were blocked by naltrexone (NTX).
- Higher ratios of morphine to M3G concentrations correlated with increased OIH.
- Mice lacking the MRP3 transporter showed impaired M3G export but still exhibited hyperalgesia.
Conclusions:
- Morphine can induce hyperalgesia independent of opioid receptor activation.
- Hepatic M3G does not appear to be a significant contributor to morphine-induced hyperalgesia in this mouse model.
- Further research is needed to elucidate the human relevance of these findings.
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