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Updated: Feb 8, 2026

Chronic Constriction of the Sciatic Nerve and Pain Hypersensitivity Testing in Rats
Published on: March 13, 2012
Microglial P2X4R-evoked pain hypersensitivity is sexually dimorphic in rats
Josiane C S Mapplebeck1,2,3, Rebecca Dalgarno4,5, YuShan Tu1
1Program in Neuroscience & Mental Health, Hospital for Sick Children, Toronto, ON, Canada.
Abstract:
Microglia-neuron signalling in the spinal cord is a key mediator of mechanical allodynia caused by peripheral nerve injury. We recently reported sex differences in microglia in pain signalling in mice: spinal mechanisms underlying nerve injury-induced allodynia are microglial dependent in male but not female mice. Whether this sex difference in pain hypersensitivity mechanisms is conserved in other species is unknown. Here, we show that in rats, the spinal mechanisms of nerve injury-induced hypersensitivity in males differ from those in females, with microglial P2X4 receptors (P2X4Rs) being a key point of divergence. In rats, nerve injury produced comparable allodynia and reactive microgliosis in both sexes. However, inhibiting microglia in the spinal cord reversed allodynia in male rats but not female rats. In addition, pharmacological blockade of P2X4Rs, by an intrathecally administered antagonist, attenuated pain hypersensitivity in male rats only. Consistent with the behavioural findings, nerve injury increased cell surface expression and function of P2X4Rs in acutely isolated spinal microglia from male rats but not from female rats. Moreover, in microglia cultured from male rats, but not in those from female rats, stimulating P2X4Rs drove intracellular signalling through p38 mitogen-activated protein kinase. Furthermore, chromatin immunoprecipitation-qPCR revealed that the transcription factor IRF5 differentially binds to the P2rx4 promoter region in female rats vs male rats. Finally, mechanical allodynia was produced in otherwise naive rats by intrathecally administering P2X4R-stimulated microglia from male rats but not those from female rats. Together, our findings demonstrate the existence of sexually dimorphic pain signalling in rats, suggesting that this sex difference is evolutionarily conserved, at least across rodent species.
Insights
Sex differences in spinal cord pain mechanisms are conserved in rats. Microglial P2X4 receptors (P2X4Rs) mediate nerve injury-induced pain in males but not females, revealing sexually dimorphic pain signaling.
Area of Science:
- Neuroscience
- Pain Research
- Immunology
Background:
- Microglia-neuron signaling in the spinal cord is crucial for mechanical allodynia after nerve injury.
- Sex differences in microglia-mediated pain signaling were previously observed in mice.
- The conservation of these sex differences in pain mechanisms across species remained unknown.
Purpose of the Study:
- To investigate whether sex differences in spinal mechanisms of nerve injury-induced hypersensitivity are conserved in rats.
- To identify key molecular divergences, specifically focusing on microglial P2X4 receptors (P2X4Rs).
Main Methods:
- Comparative analysis of nerve injury-induced allodynia and microgliosis in male and female rats.
- Inhibition of spinal microglia and pharmacological blockade of P2X4Rs.
- Assessment of P2X4R expression and function in isolated spinal microglia.
- Investigation of intracellular signaling pathways (p38 MAPK) and transcription factor binding (IRF5).
- Functional assessment of microglia-mediated allodynia.
Main Results:
- Comparable allodynia and reactive microgliosis were observed in both sexes.
- Spinal microglia inhibition reversed allodynia in males but not females.
- P2X4R blockade attenuated pain hypersensitivity exclusively in males.
- Nerve injury increased P2X4R expression/function in male rat microglia, but not female.
- P2X4R stimulation activated p38 MAPK in male microglia, not female.
- IRF5 binding to the P2rx4 promoter differed between sexes.
- Microglia from male rats induced allodynia when transferred, unlike those from females.
Conclusions:
- Sexually dimorphic pain signaling exists in rats, with P2X4Rs as a key divergence point.
- The sex difference in microglial pain modulation following nerve injury is evolutionarily conserved across rodent species.
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