Peripheral NMDA Receptor/NO System Blockage Inhibits Itch Responses Induced by Chloroquine in Mice

Authors

  • Nazgol-Sadat Haddadi
  • Arash Foroutan
  • Sattar Ostadhadi
  • Ehsan Azimi
  • Nastaran Rahimi
  • Mehdi Nateghpour
  • Ethan A. Lerner
  • Ahmad Reza Dehpour

DOI:

https://doi.org/10.2340/00015555-2617

Keywords:

itch, chloroquine, N-methyl-D-aspartate receptor (NMDA) antagonists, nitric oxide, mice

Abstract

Intradermal administration of chloroquine (CQ) provokes scratching behavior in mice. Chloroquine-induced itch is histamine-independent and we have reported that the nitric oxide (NO)/cyclic guanosine monophosphate (cGMP) pathway is involved in CQ-induced scratching behavior in mice. Previous studies have demonstrated that activation of N-methyl-d-aspartate receptors (NMDARs) induces NO production. Here we show that NMDAR antagonists significantly decrease CQ-induced scratching in mice while a non-effective dose of an NMDAR agonist potentiates the scratching behavior provoked by sub-effective doses of CQ. In contrast, combined pre-treatment with sub-effective doses of an NMDAR antagonist, MK-801, and the NO synthase inhibitor, L-N-nitro arginine methyl ester (L-NAME), decreases CQ-induced scrat?ching behavior. While intradermal administration of CQ significantly increases the concentration of intradermal nitrite, the end product of NO metabolism, effective doses of intraperitoneal and intradermal MK-801 significantly decrease intradermal nitrite levels. Likewise, administration of an effective dose of L-NAME significantly decreases CQ-induced nitrite production. We conclude that the NMDA/NO pathway in the skin modulates CQ-induced scratching behavior.

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Published

2017-02-02

How to Cite

Haddadi, N.-S., Foroutan, A., Ostadhadi, S., Azimi, E., Rahimi, N., Nateghpour, M., … Reza Dehpour, A. (2017). Peripheral NMDA Receptor/NO System Blockage Inhibits Itch Responses Induced by Chloroquine in Mice. Acta Dermato-Venereologica, 97(5), 571–577. https://doi.org/10.2340/00015555-2617

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Section

Articles