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Updated: Feb 28, 2026

Partial Sciatic Nerve Ligation: A Mouse Model of Chronic Neuropathic Pain to Study the Antinociceptive Effect of Novel Therapies
Published on: October 6, 2022
Neuronal P2X7 receptor-induced reactive oxygen species production contributes to nociceptive behavior in mice
Frances M Munoz1, Ruby Gao1, Yuzhen Tian1
1Department of Pharmacology and Physiology, Drexel University College of Medicine, Philadelphia, USA.
Abstract:
ATP can activate a variety of pathways through P2 purinoreceptors, leading to neuroprotection and pathology in the CNS. Among all P2X receptors, the P2X7 receptor (P2X7R) is a well-defined therapeutic target for inflammatory and neuropathic pain. Activation of P2X7R can generate reactive oxygen species (ROS) in macrophages and microglia. However, the role of ROS in P2X7R-induced pain remains unexplored. Here, we investigated the downstream effects of neuronal P2X7R activation in the spinal cord. We found that ATP induces ROS production in spinal cord dorsal horn neurons, an effect eliminated by ROS scavenger N-tert-butyl-α-phenylnitrone (PBN) and P2X7R antagonist A438079. A similar effect was observed with a P2X7R agonist, BzATP, and was attenuated by a NADPH oxidase inhibitor apocynin. Intrathecal administration of BzATP resulted in ROS production in the spinal cord and oxidative DNA damage in dorsal horn neurons. BzATP also induced robust biphasic spontaneous nociceptive behavior. Pre-treatment with A438079 abolished all BzATP-induced nociceptive behaviors, while ROS scavengers dose-dependently attenuated the secondary response. Here, we provide evidence that neuronal P2X7R activation leads to ROS production and subsequent nociceptive pain in mice. Together, the data indicate that P2X7R-induced ROS play a critical role in the P2X7R signaling pathway of the CNS.
Insights
Neuronal P2X7 receptor activation triggers reactive oxygen species (ROS) production in the spinal cord, leading to nociceptive pain. This study reveals ROS as a key mediator in P2X7 receptor-induced pain signaling within the central nervous system.
Area of Science:
- Neuroscience
- Molecular Biology
- Pain Research
Background:
- ATP-sensitive P2 purinoreceptors modulate central nervous system (CNS) pathways, influencing neuroprotection and pathology.
- The P2X7 receptor (P2X7R) is a recognized therapeutic target for inflammatory and neuropathic pain.
- P2X7R activation generates reactive oxygen species (ROS), but their role in P2X7R-mediated pain is unexplored.
Purpose of the Study:
- To investigate the downstream effects of neuronal P2X7R activation in the spinal cord.
- To determine the role of ROS in P2X7R-induced nociception.
Main Methods:
- Investigated ATP-induced ROS production in spinal cord dorsal horn neurons.
- Utilized P2X7R antagonist (A438079), ROS scavenger (PBN), and NADPH oxidase inhibitor (apocynin).
- Administered P2X7R agonist (BzATP) intrathecally to assess ROS production, DNA damage, and nociceptive behavior.
Main Results:
- Neuronal P2X7R activation by ATP or BzATP induced ROS production in spinal cord neurons.
- BzATP administration caused ROS production, oxidative DNA damage, and biphasic nociceptive behavior.
- P2X7R antagonist blocked BzATP-induced pain, while ROS scavengers attenuated the secondary pain response.
Conclusions:
- Neuronal P2X7R activation leads to ROS production and subsequent nociceptive pain in mice.
- ROS generated by P2X7R signaling are critical mediators of P2X7R-induced pain in the CNS.
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