Skip to main content
Journal cover image

Spinal sigma-1 receptors activate NADPH oxidase 2 leading to the induction of pain hypersensitivity in mice and mechanical allodynia in neuropathic rats.

Publication ,  Journal Article
Choi, S-R; Roh, D-H; Yoon, S-Y; Kang, S-Y; Moon, J-Y; Kwon, S-G; Choi, H-S; Han, H-J; Beitz, AJ; Oh, S-B; Lee, J-H
Published in: Pharmacological research
August 2013

We have recently demonstrated that spinal sigma-1 receptors (Sig-1Rs) mediate pain hypersensitivity in mice and neuropathic pain in rats. In this study, we examine the role of NADPH oxidase 2 (Nox2)-induced reactive oxygen species (ROS) on Sig-1R-induced pain hypersensitivity and the induction of chronic neuropathic pain. Neuropathic pain was produced by chronic constriction injury (CCI) of the right sciatic nerve in rats. Mechanical allodynia and thermal hyperalgesia were evaluated in mice and CCI-rats. Western blotting and dihydroethidium (DHE) staining were performed to assess the changes in Nox2 activation and ROS production in spinal cord, respectively. Direct activation of spinal Sig-1Rs with the Sig-1R agonist, PRE084 induced mechanical allodynia and thermal hyperalgesia, which were dose-dependently attenuated by pretreatment with the ROS scavenger, NAC or the Nox inhibitor, apocynin. PRE084 also induced an increase in Nox2 activation and ROS production, which were attenuated by pretreatment with the Sig-1R antagonist, BD1047 or apocynin. CCI-induced nerve injury produced an increase in Nox2 activation and ROS production in the spinal cord, all of which were attenuated by intrathecal administration with BD1047 during the induction phase of neuropathic pain. Furthermore, administration with BD1047 or apocynin reversed CCI-induced mechanical allodynia during the induction phase, but not the maintenance phase. These findings demonstrate that spinal Sig-1Rs modulate Nox2 activation and ROS production in the spinal cord, and ultimately contribute to the Sig-1R-induced pain hypersensitivity and the peripheral nerve injury-induced induction of chronic neuropathic pain.

Duke Scholars

Published In

Pharmacological research

DOI

EISSN

1096-1186

ISSN

1043-6618

Publication Date

August 2013

Volume

74

Start / End Page

56 / 67

Related Subject Headings

  • Touch
  • Spinal Cord
  • Sigma-1 Receptor
  • Receptors, sigma
  • Reactive Oxygen Species
  • Rats, Sprague-Dawley
  • Rats
  • Pharmacology & Pharmacy
  • Neuralgia
  • NADPH Oxidases
 

Citation

APA
Chicago
ICMJE
MLA
NLM
Choi, S.-R., Roh, D.-H., Yoon, S.-Y., Kang, S.-Y., Moon, J.-Y., Kwon, S.-G., … Lee, J.-H. (2013). Spinal sigma-1 receptors activate NADPH oxidase 2 leading to the induction of pain hypersensitivity in mice and mechanical allodynia in neuropathic rats. Pharmacological Research, 74, 56–67. https://doi.org/10.1016/j.phrs.2013.05.004
Choi, Sheu-Ran, Dae-Hyun Roh, Seo-Yeon Yoon, Suk-Yun Kang, Ji-Young Moon, Soon-Gu Kwon, Hoon-Seong Choi, et al. “Spinal sigma-1 receptors activate NADPH oxidase 2 leading to the induction of pain hypersensitivity in mice and mechanical allodynia in neuropathic rats.Pharmacological Research 74 (August 2013): 56–67. https://doi.org/10.1016/j.phrs.2013.05.004.
Choi S-R, Roh D-H, Yoon S-Y, Kang S-Y, Moon J-Y, Kwon S-G, et al. Spinal sigma-1 receptors activate NADPH oxidase 2 leading to the induction of pain hypersensitivity in mice and mechanical allodynia in neuropathic rats. Pharmacological research. 2013 Aug;74:56–67.
Choi, Sheu-Ran, et al. “Spinal sigma-1 receptors activate NADPH oxidase 2 leading to the induction of pain hypersensitivity in mice and mechanical allodynia in neuropathic rats.Pharmacological Research, vol. 74, Aug. 2013, pp. 56–67. Epmc, doi:10.1016/j.phrs.2013.05.004.
Choi S-R, Roh D-H, Yoon S-Y, Kang S-Y, Moon J-Y, Kwon S-G, Choi H-S, Han H-J, Beitz AJ, Oh S-B, Lee J-H. Spinal sigma-1 receptors activate NADPH oxidase 2 leading to the induction of pain hypersensitivity in mice and mechanical allodynia in neuropathic rats. Pharmacological research. 2013 Aug;74:56–67.
Journal cover image

Published In

Pharmacological research

DOI

EISSN

1096-1186

ISSN

1043-6618

Publication Date

August 2013

Volume

74

Start / End Page

56 / 67

Related Subject Headings

  • Touch
  • Spinal Cord
  • Sigma-1 Receptor
  • Receptors, sigma
  • Reactive Oxygen Species
  • Rats, Sprague-Dawley
  • Rats
  • Pharmacology & Pharmacy
  • Neuralgia
  • NADPH Oxidases