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.

Scientific Reports
|June 16, 2017
PubMed

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.