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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
Acute antinociceptive responses in single and combinatorial opioid receptor knockout mice: distinct mu, delta and
Miquel Martin1, Audrey Matifas, Rafael Maldonado
1Laboratori de Neurofarmacologia, Facultat de Ciéncies de la Salut i de la Vida, Universitat Pompeu Fabra, C/Dr Aiguader 80, 08003 Barcelona, Spain.
Abstract:
We have examined responses of mice lacking mu, delta and kappa opioid receptor (MOR, DOR and KOR, respectively) genes, as well as combinatorial mutants, in several pain models. This is the first truly comparative study of all three opioid receptor-deficient mice, with genotypes and gender analysis using mice on the hybrid 50% 129/SV : 50% C57BL/6 genetic background. In the tail-immersion test, only KOR-/- females showed decreased withdrawal latencies. This modification was also found in MOR/KOR and MOR/DOR/KOR, but not MOR/DOR mutants. The hotplate test revealed increased nociceptive sensitivity for MOR-/-, a phenotype which was also observed in double mutants involving the MOR deletion, and in the triple mutants. The tail-pressure test showed increased response for both MOR-/- and DOR-/- mutants, a modification which was enhanced in the triple-mutant mice. In the formalin test, MOR-/- and DOR-/- mice showed increased responses in the early and late phases, respectively, while the triple mutant tended to show enhanced nociception in both phases. Finally, the enhanced response of KOR-/- mice in the writhing test, which we have demonstrated previously, was confirmed in double MOR/KOR- and triple-mutant mice. Together, the data support the existence of an antinociceptive opioid tone. Each receptor presents a distinct pattern of activities, with mu receptors influencing responses to mechanical, chemical and thermal nociception at a supraspinal level, kappa receptors involved in spinally mediated thermal nociception and chemical visceral pain, and delta receptors modulating mechanical nociception and inflammatory pain. Phenotypes of mutant mice were subtle, suggesting a low endogenous opioid tone in the regulation of physiological pain.
Insights
Mice lacking opioid receptors (MOR, DOR, KOR) showed varied pain responses, indicating distinct roles for each receptor in pain modulation. This study reveals subtle endogenous opioid tone in physiological pain regulation.
Area of Science:
- Neuroscience
- Pharmacology
- Genetics
Background:
- Opioid receptors (mu, delta, kappa) are crucial targets for pain management.
- Understanding the specific roles of each opioid receptor in pain pathways is essential.
Purpose of the Study:
- To comparatively analyze the roles of mu (MOR), delta (DOR), and kappa (KOR) opioid receptors in various pain models.
- To investigate the effects of single, double, and triple opioid receptor gene deletions on pain sensitivity in mice.
Main Methods:
- Utilized knockout mice lacking MOR, DOR, and KOR genes, including combinatorial mutants.
- Assessed pain responses across multiple models: tail-immersion, hotplate, tail-pressure, formalin, and writhing tests.
- Included gender and genetic background (50% 129/SV : 50% C57BL/6) analysis.
Main Results:
- KOR-/- females showed decreased withdrawal in tail-immersion; MOR-/- mice exhibited increased sensitivity in hotplate tests.
- MOR-/- and DOR-/- mice displayed altered responses in tail-pressure and formalin tests, with triple mutants showing enhanced nociception.
- KOR-/- mice, along with MOR/KOR and triple mutants, showed enhanced responses in the writhing test.
Conclusions:
- Data support an antinociceptive opioid tone, with each receptor having distinct roles: MOR (supraspinal nociception), KOR (spinal thermal/visceral pain), and DOR (mechanical/inflammatory pain).
- Subtle phenotypes suggest a low endogenous opioid tone in regulating physiological pain.

