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The Sciatic Nerve Cuffing Model of Neuropathic Pain in Mice
Published on: July 16, 2014
Spinal P2X(7) receptor mediates microglia activation-induced neuropathic pain in the sciatic nerve injury rat model
1Department of Neurobiology, College of Basic Medical Sciences, Chongqing Key Laboratory of Neurobiology, Third Military Medical University; Chongqing, 400038, China.
Abstract:
P2X(7) receptor is an important member of ATP-sensitive ionotropic P2X receptors family, which includes seven receptor subtypes (P2X(1)-P2X(7)). Recent evidence indicates that P2X(7)R participates in the onset and persistence of neuropathic pain. In tetanic stimulation of the sciatic nerve model, P2X(7)R was involved in the activation of microglia, but whether this happens in other neuropathic pain models remains unclear. In this study we used immunohistochemistry and Western blot to explore the relationship of P2X(7)R expression with microglia activation, and with mechanical allodynia and thermal hypersensitivity in the chronic constriction of the sciatic nerve (CCI) rat model. The results show that following nerve ligature, mechanical allodynia and thermal hypersensitivity were developed within 3 days (d), peaked at 14d and persisted for 21d on the injured side. P2X(7)R levels in the ipsilateral L4-6 spinal cord were increased markedly after injury and the highest levels were observed on day 14, significant difference was observed at I-IV layers of the dorsal horn. The change in P2X(7)R levels in the spinal cord was consistent with the development of mechanical allodynia and thermal hypersensitivity. Intrathecal administration of the P2X(7)R antagonist Brilliant Blue G (BBG) reversed CCI-induced mechanical allodynia and thermal hypersensitivity. Double-labeled immunofluorescence showed that P2X(7)R expression were restricted to microglia, spinal microglia were activated after nerve injury, which was inhibited by BBG. These results indicated that spinal P2X(7)R mediate microglia activation, this process may play an important role in development of mechanical allodynia and thermal hypersensitivity in CCI model.
Insights
The P2X(7) receptor (P2X(7)R) in the spinal cord drives neuropathic pain by activating microglia. Blocking P2X(7)R with Brilliant Blue G reduces pain sensitivity and microglia activation in a rat model.
Area of Science:
- Neuroscience
- Pain Research
- Molecular Biology
Background:
- The P2X(7) receptor (P2X(7)R) is implicated in neuropathic pain.
- Its role in microglia activation in various pain models is not fully understood.
Purpose of the Study:
- To investigate the role of spinal P2X(7)R in microglia activation and neuropathic pain development in the chronic constriction injury (CCI) rat model.
- To examine the relationship between P2X(7)R expression, microglia activation, and pain behaviors.
Main Methods:
- Immunohistochemistry and Western blot to assess P2X(7)R expression and microglia activation in the L4-6 spinal cord.
- Behavioral tests (mechanical allodynia, thermal hypersensitivity) in CCI rats.
- Intrathecal administration of P2X(7)R antagonist Brilliant Blue G (BBG).
- Double-labeled immunofluorescence for P2X(7)R and microglia.
Main Results:
- CCI rats developed mechanical allodynia and thermal hypersensitivity, persisting for 21 days.
- Spinal P2X(7)R levels increased significantly post-injury, correlating with pain behaviors.
- P2X(7)R expression was localized to microglia, which were activated after nerve injury.
- BBG administration reversed pain behaviors and inhibited microglia activation.
Conclusions:
- Spinal P2X(7)R activation mediates microglia activation in the CCI model.
- P2X(7)R plays a crucial role in the development of mechanical allodynia and thermal hypersensitivity.
- Targeting spinal P2X(7)R may be a therapeutic strategy for neuropathic pain.
