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Updated: Jan 26, 2026

The Sciatic Nerve Cuffing Model of Neuropathic Pain in Mice
Published on: July 16, 2014
GPR34 in spinal microglia exacerbates neuropathic pain in mice
Akira Sayo1,2, Hiroyuki Konishi3, Masaaki Kobayashi1
1Department of Functional Anatomy and Neuroscience, Nagoya University Graduate School of Medicine, 65, Tsurumai-cho, Showa-ku, Nagoya, 466-8550, Japan.
Background:
Neuropathic pain is caused by sensory nerve injury, but effective treatments are currently lacking. Microglia are activated in the spinal dorsal horn after sensory nerve injury and contribute to neuropathic pain. Accordingly, molecules expressed by these cells are considered potential targets for therapeutic strategies. Our previous gene screening study using a mouse model of motor nerve injury showed that the G-protein-coupled receptor 34 gene (GPR34) is induced by nerve injury. Because GPR34 is now considered a microglia-enriched gene, we explored the possibility that it might be involved in microglial activation in the dorsal horn in a mouse model of neuropathic pain.
Methods:
mRNA expression of GPR34 and pro-inflammatory molecules was determined by quantitative real-time PCR in wild-type and GPR34-deficient mice with L4 spinal nerve injury. In situ hybridization was used to identify GPR34 expression in microglia, and immunohistochemistry with the microglial marker Iba1 was performed to examine microglial numbers and morphology. Mechanical sensitivity was evaluated by the von Frey hair test. Liquid chromatography-tandem mass spectrometry quantified expression of the ligand for GPR34, lysophosphatidylserine (LysoPS), in the dorsal horn, and a GPR34 antagonist was intrathecally administrated to examine the effect of inhibiting LysoPS-GPR34 signaling on mechanical sensitivity.
Results:
GPR34 was predominantly expressed by microglia in the dorsal horn after L4 nerve injury. There were no histological differences in microglial numbers or morphology between WT and GPR34-deficient mice. However, nerve injury-induced pro-inflammatory cytokine expression levels in microglia and pain behaviors were significantly attenuated in GPR34-deficient mice. Furthermore, the intrathecal administration of the GPR34 antagonist reduced neuropathic pain.
Conclusions:
Inhibition of GPR34-mediated signal by GPR34 gene deletion reduced nerve injury-induced neuropathic pain by suppressing pro-inflammatory responses of microglia without affecting their morphology. Therefore, the suppression of GPR34 activity may have therapeutic potential for alleviating neuropathic pain.
Insights
Targeting G-protein-coupled receptor 34 (GPR34) in microglia may alleviate neuropathic pain. Deleting the GPR34 gene reduced pain and inflammation following nerve injury in mice.
Area of Science:
- Neuroscience
- Immunology
- Pharmacology
Background:
- Neuropathic pain arises from nerve injury, with limited treatment options.
- Activated microglia in the spinal cord contribute to neuropathic pain.
- G-protein-coupled receptor 34 (GPR34) is upregulated in microglia after nerve injury.
Purpose of the Study:
- Investigate the role of GPR34 in microglial activation and neuropathic pain.
- Explore GPR34 as a potential therapeutic target for nerve injury-induced pain.
Main Methods:
- Quantitative real-time PCR and in situ hybridization to assess GPR34 and inflammatory gene expression in wild-type and GPR34-deficient mice.
- Immunohistochemistry to evaluate microglial changes.
- Von Frey hair test for mechanical sensitivity assessment.
- Liquid chromatography-tandem mass spectrometry to quantify lysophosphatidylserine (LysoPS).
- Administration of a GPR34 antagonist to assess pain response.
Main Results:
- GPR34 is primarily expressed by microglia in the dorsal horn post-nerve injury.
- GPR34 deficiency attenuated nerve injury-induced pro-inflammatory cytokine expression and pain behaviors.
- GPR34 antagonist treatment reduced neuropathic pain.
- No significant changes in microglial number or morphology were observed between groups.
Conclusions:
- GPR34 signaling inhibition alleviates neuropathic pain by suppressing microglial pro-inflammatory responses.
- GPR34 is a promising therapeutic target for neuropathic pain management.
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