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Dimethyl fumarate inhibits osteoclasts via attenuation of reactive oxygen species signalling by augmented antioxidation

Bone destructive diseases are common worldwide and are caused by dysregulation of osteoclast formation and activation. During osteoclastogenesis, reactive oxygen species (ROS) play a role in the intracellular signalling triggered by receptor activator of nuclear factor‐κB ligand (RANKL) stimulation....

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Autores principales: Yamaguchi, Yuuki, Kanzaki, Hiroyuki, Katsumata, Yuta, Itohiya, Kanako, Fukaya, Sari, Miyamoto, Yutaka, Narimiya, Tsuyoshi, Wada, Satoshi, Nakamura, Yoshiki
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5783833/
https://www.ncbi.nlm.nih.gov/pubmed/29063666
http://dx.doi.org/10.1111/jcmm.13367
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author Yamaguchi, Yuuki
Kanzaki, Hiroyuki
Katsumata, Yuta
Itohiya, Kanako
Fukaya, Sari
Miyamoto, Yutaka
Narimiya, Tsuyoshi
Wada, Satoshi
Nakamura, Yoshiki
author_facet Yamaguchi, Yuuki
Kanzaki, Hiroyuki
Katsumata, Yuta
Itohiya, Kanako
Fukaya, Sari
Miyamoto, Yutaka
Narimiya, Tsuyoshi
Wada, Satoshi
Nakamura, Yoshiki
author_sort Yamaguchi, Yuuki
collection PubMed
description Bone destructive diseases are common worldwide and are caused by dysregulation of osteoclast formation and activation. During osteoclastogenesis, reactive oxygen species (ROS) play a role in the intracellular signalling triggered by receptor activator of nuclear factor‐κB ligand (RANKL) stimulation. Previously, we demonstrated that induction of antioxidant enzymes by Nrf2 activation using Nrf2‐gene transfer, an ETGE‐peptide or polyphenols, successfully ameliorated RANKL‐dependent osteoclastogenesis. Dimethyl fumarate (DMF) has been shown to activate Nrf2 signalling and has been lately used in clinical trials for neurodegenerative diseases. In this study, we hypothesized that Nrf2 activation by DMF would inhibit osteoclastogenesis and bone destruction via attenuation of intracellular ROS signalling through antioxidant mechanisms. RAW 264.7 cells were used as osteoclast progenitor cells. We found that DMF induced Nrf2 translocation to the nucleus, augmented Nrf2 promoter‐luciferase reporter activity and increased antioxidant enzyme expression. Using flow cytometry, we found that DMF attenuated RANKL‐mediated intracellular ROS generation, which resulted in the inhibition of RANKL‐mediated osteoclastogenesis. Local DMF injection into the calvaria of male BALB/c mice resulted in attenuated bone destruction in lipopolysaccharide‐treated mice. In conclusion, we demonstrated in a preclinical setting that DMF inhibited RANKL‐mediated osteoclastogenesis and bone destruction via induction of Nrf2‐mediated transcription of antioxidant genes and consequent decrease in intracellular ROS levels. Our results suggest that DMF may be a promising inhibitor of bone destruction in diseases like periodontitis, rheumatoid arthritis and osteoporosis.
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spelling pubmed-57838332018-02-08 Dimethyl fumarate inhibits osteoclasts via attenuation of reactive oxygen species signalling by augmented antioxidation Yamaguchi, Yuuki Kanzaki, Hiroyuki Katsumata, Yuta Itohiya, Kanako Fukaya, Sari Miyamoto, Yutaka Narimiya, Tsuyoshi Wada, Satoshi Nakamura, Yoshiki J Cell Mol Med Original Articles Bone destructive diseases are common worldwide and are caused by dysregulation of osteoclast formation and activation. During osteoclastogenesis, reactive oxygen species (ROS) play a role in the intracellular signalling triggered by receptor activator of nuclear factor‐κB ligand (RANKL) stimulation. Previously, we demonstrated that induction of antioxidant enzymes by Nrf2 activation using Nrf2‐gene transfer, an ETGE‐peptide or polyphenols, successfully ameliorated RANKL‐dependent osteoclastogenesis. Dimethyl fumarate (DMF) has been shown to activate Nrf2 signalling and has been lately used in clinical trials for neurodegenerative diseases. In this study, we hypothesized that Nrf2 activation by DMF would inhibit osteoclastogenesis and bone destruction via attenuation of intracellular ROS signalling through antioxidant mechanisms. RAW 264.7 cells were used as osteoclast progenitor cells. We found that DMF induced Nrf2 translocation to the nucleus, augmented Nrf2 promoter‐luciferase reporter activity and increased antioxidant enzyme expression. Using flow cytometry, we found that DMF attenuated RANKL‐mediated intracellular ROS generation, which resulted in the inhibition of RANKL‐mediated osteoclastogenesis. Local DMF injection into the calvaria of male BALB/c mice resulted in attenuated bone destruction in lipopolysaccharide‐treated mice. In conclusion, we demonstrated in a preclinical setting that DMF inhibited RANKL‐mediated osteoclastogenesis and bone destruction via induction of Nrf2‐mediated transcription of antioxidant genes and consequent decrease in intracellular ROS levels. Our results suggest that DMF may be a promising inhibitor of bone destruction in diseases like periodontitis, rheumatoid arthritis and osteoporosis. John Wiley and Sons Inc. 2017-10-24 2018-02 /pmc/articles/PMC5783833/ /pubmed/29063666 http://dx.doi.org/10.1111/jcmm.13367 Text en © 2017 The Authors. Journal of Cellular and Molecular Medicine published by John Wiley & Sons Ltd and Foundation for Cellular and Molecular Medicine. This is an open access article under the terms of the Creative Commons Attribution (http://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Articles
Yamaguchi, Yuuki
Kanzaki, Hiroyuki
Katsumata, Yuta
Itohiya, Kanako
Fukaya, Sari
Miyamoto, Yutaka
Narimiya, Tsuyoshi
Wada, Satoshi
Nakamura, Yoshiki
Dimethyl fumarate inhibits osteoclasts via attenuation of reactive oxygen species signalling by augmented antioxidation
title Dimethyl fumarate inhibits osteoclasts via attenuation of reactive oxygen species signalling by augmented antioxidation
title_full Dimethyl fumarate inhibits osteoclasts via attenuation of reactive oxygen species signalling by augmented antioxidation
title_fullStr Dimethyl fumarate inhibits osteoclasts via attenuation of reactive oxygen species signalling by augmented antioxidation
title_full_unstemmed Dimethyl fumarate inhibits osteoclasts via attenuation of reactive oxygen species signalling by augmented antioxidation
title_short Dimethyl fumarate inhibits osteoclasts via attenuation of reactive oxygen species signalling by augmented antioxidation
title_sort dimethyl fumarate inhibits osteoclasts via attenuation of reactive oxygen species signalling by augmented antioxidation
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5783833/
https://www.ncbi.nlm.nih.gov/pubmed/29063666
http://dx.doi.org/10.1111/jcmm.13367
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