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Reduced spinal microglial activation and neuropathic pain after nerve injury in mice lacking all three nitric oxide synthases

BACKGROUND: Several studies have investigated the involvement of nitric oxide (NO) in acute and chronic pain using mice lacking a single NO synthase (NOS) gene among the three isoforms: neuronal (nNOS), inducible (iNOS) and endothelial (eNOS). However, the precise role of NOS/NO in pain states remai...

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Autores principales: Kuboyama, Kazuya, Tsuda, Makoto, Tsutsui, Masato, Toyohara, Yumiko, Tozaki-Saitoh, Hidetoshi, Shimokawa, Hiroaki, Yanagihara, Nobuyuki, Inoue, Kazuhide
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BioMed Central 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3152900/
https://www.ncbi.nlm.nih.gov/pubmed/21756313
http://dx.doi.org/10.1186/1744-8069-7-50
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author Kuboyama, Kazuya
Tsuda, Makoto
Tsutsui, Masato
Toyohara, Yumiko
Tozaki-Saitoh, Hidetoshi
Shimokawa, Hiroaki
Yanagihara, Nobuyuki
Inoue, Kazuhide
author_facet Kuboyama, Kazuya
Tsuda, Makoto
Tsutsui, Masato
Toyohara, Yumiko
Tozaki-Saitoh, Hidetoshi
Shimokawa, Hiroaki
Yanagihara, Nobuyuki
Inoue, Kazuhide
author_sort Kuboyama, Kazuya
collection PubMed
description BACKGROUND: Several studies have investigated the involvement of nitric oxide (NO) in acute and chronic pain using mice lacking a single NO synthase (NOS) gene among the three isoforms: neuronal (nNOS), inducible (iNOS) and endothelial (eNOS). However, the precise role of NOS/NO in pain states remains to be determined owing to the substantial compensatory interactions among the NOS isoforms. Therefore, in this study, we used mice lacking all three NOS genes (n/i/eNOS(-/-)mice) and investigated the behavioral phenotypes in a series of acute and chronic pain assays. RESULTS: In a model of tissue injury-induced pain, evoked by intraplantar injection of formalin, both iNOS(-/-)and n/i/eNOS(-/-)mice exhibited attenuations of pain behaviors in the second phase compared with that in wild-type mice. In a model of neuropathic pain, nerve injury-induced behavioral and cellular responses (tactile allodynia, spinal microglial activation and Src-family kinase phosphorylation) were reduced in n/i/eNOS(-/-)but not iNOS(-/-)mice. Tactile allodynia after nerve injury was improved by acute pharmacological inhibition of all NOSs and nNOS. Furthermore, in MG-5 cells (a microglial cell-line), interferon-γ enhanced NOSs and Mac-1 mRNA expression, and the Mac-1 mRNA increase was suppressed by L-NAME co-treatment. Conversely, the NO donor, sodium nitroprusside, markedly increased mRNA expression of Mac-1, interleukin-6, toll-like receptor 4 and P2X4 receptor. CONCLUSIONS: Our results provide evidence that the NOS/NO pathway contributes to behavioral pain responses evoked by tissue injury and nerve injury. In particular, nNOS may be important for spinal microglial activation and tactile allodynia after nerve injury.
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spelling pubmed-31529002011-08-10 Reduced spinal microglial activation and neuropathic pain after nerve injury in mice lacking all three nitric oxide synthases Kuboyama, Kazuya Tsuda, Makoto Tsutsui, Masato Toyohara, Yumiko Tozaki-Saitoh, Hidetoshi Shimokawa, Hiroaki Yanagihara, Nobuyuki Inoue, Kazuhide Mol Pain Research BACKGROUND: Several studies have investigated the involvement of nitric oxide (NO) in acute and chronic pain using mice lacking a single NO synthase (NOS) gene among the three isoforms: neuronal (nNOS), inducible (iNOS) and endothelial (eNOS). However, the precise role of NOS/NO in pain states remains to be determined owing to the substantial compensatory interactions among the NOS isoforms. Therefore, in this study, we used mice lacking all three NOS genes (n/i/eNOS(-/-)mice) and investigated the behavioral phenotypes in a series of acute and chronic pain assays. RESULTS: In a model of tissue injury-induced pain, evoked by intraplantar injection of formalin, both iNOS(-/-)and n/i/eNOS(-/-)mice exhibited attenuations of pain behaviors in the second phase compared with that in wild-type mice. In a model of neuropathic pain, nerve injury-induced behavioral and cellular responses (tactile allodynia, spinal microglial activation and Src-family kinase phosphorylation) were reduced in n/i/eNOS(-/-)but not iNOS(-/-)mice. Tactile allodynia after nerve injury was improved by acute pharmacological inhibition of all NOSs and nNOS. Furthermore, in MG-5 cells (a microglial cell-line), interferon-γ enhanced NOSs and Mac-1 mRNA expression, and the Mac-1 mRNA increase was suppressed by L-NAME co-treatment. Conversely, the NO donor, sodium nitroprusside, markedly increased mRNA expression of Mac-1, interleukin-6, toll-like receptor 4 and P2X4 receptor. CONCLUSIONS: Our results provide evidence that the NOS/NO pathway contributes to behavioral pain responses evoked by tissue injury and nerve injury. In particular, nNOS may be important for spinal microglial activation and tactile allodynia after nerve injury. BioMed Central 2011-07-14 /pmc/articles/PMC3152900/ /pubmed/21756313 http://dx.doi.org/10.1186/1744-8069-7-50 Text en Copyright ©2011 Kuboyama et al; licensee BioMed Central Ltd. http://creativecommons.org/licenses/by/2.0 This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/2.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research
Kuboyama, Kazuya
Tsuda, Makoto
Tsutsui, Masato
Toyohara, Yumiko
Tozaki-Saitoh, Hidetoshi
Shimokawa, Hiroaki
Yanagihara, Nobuyuki
Inoue, Kazuhide
Reduced spinal microglial activation and neuropathic pain after nerve injury in mice lacking all three nitric oxide synthases
title Reduced spinal microglial activation and neuropathic pain after nerve injury in mice lacking all three nitric oxide synthases
title_full Reduced spinal microglial activation and neuropathic pain after nerve injury in mice lacking all three nitric oxide synthases
title_fullStr Reduced spinal microglial activation and neuropathic pain after nerve injury in mice lacking all three nitric oxide synthases
title_full_unstemmed Reduced spinal microglial activation and neuropathic pain after nerve injury in mice lacking all three nitric oxide synthases
title_short Reduced spinal microglial activation and neuropathic pain after nerve injury in mice lacking all three nitric oxide synthases
title_sort reduced spinal microglial activation and neuropathic pain after nerve injury in mice lacking all three nitric oxide synthases
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3152900/
https://www.ncbi.nlm.nih.gov/pubmed/21756313
http://dx.doi.org/10.1186/1744-8069-7-50
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