Cargando…

Epigenetic Regulation of Adipogenesis by PHF2 Histone Demethylase

PHF2 is a JmjC family histone demethylase that removes the methyl group from H3K9me2 and works as a coactivator for several metabolism-related transcription factors. In this study, we examined the in vivo role of PHF2 in mice. We generated Phf2 floxed mice, systemic Phf2 null mice by crossing Phf2 f...

Descripción completa

Detalles Bibliográficos
Autores principales: Okuno, Yosuke, Ohtake, Fumiaki, Igarashi, Katsuhide, Kanno, Jun, Matsumoto, Takahiro, Takada, Ichiro, Kato, Shigeaki, Imai, Yuuki
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Diabetes Association 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3636657/
https://www.ncbi.nlm.nih.gov/pubmed/23274892
http://dx.doi.org/10.2337/db12-0628
_version_ 1782267363008184320
author Okuno, Yosuke
Ohtake, Fumiaki
Igarashi, Katsuhide
Kanno, Jun
Matsumoto, Takahiro
Takada, Ichiro
Kato, Shigeaki
Imai, Yuuki
author_facet Okuno, Yosuke
Ohtake, Fumiaki
Igarashi, Katsuhide
Kanno, Jun
Matsumoto, Takahiro
Takada, Ichiro
Kato, Shigeaki
Imai, Yuuki
author_sort Okuno, Yosuke
collection PubMed
description PHF2 is a JmjC family histone demethylase that removes the methyl group from H3K9me2 and works as a coactivator for several metabolism-related transcription factors. In this study, we examined the in vivo role of PHF2 in mice. We generated Phf2 floxed mice, systemic Phf2 null mice by crossing Phf2 floxed mice with CMV-Cre transgenic mice, and tamoxifen-inducible Phf2 knockout mice by crossing Phf2 floxed mice with Cre-ERT2 transgenic mice. Systemic Phf2 null mice had partial neonatal death and growth retardation and exhibited less adipose tissue and reduced adipocyte numbers compared with control littermates. Tamoxifen-induced conditional knockout of PHF2 resulted in impaired adipogenesis in stromal vascular cells from the adipose tissue of tamoxifen-inducible Phf2 knockout mice as well as of Phf2 knocked-down 3T3-L1 cells. PHF2 interacts with CEBPA and demethylates H3K9me2 in the promoters of CEBPA-regulated adipogenic genes. These findings suggest that PHF2 histone demethylase potentiates adipogenesis through interaction with CEBPA in vivo. Taken together, PHF2 may be a novel therapeutic target in the treatment of obesity and the metabolic syndrome.
format Online
Article
Text
id pubmed-3636657
institution National Center for Biotechnology Information
language English
publishDate 2013
publisher American Diabetes Association
record_format MEDLINE/PubMed
spelling pubmed-36366572014-05-01 Epigenetic Regulation of Adipogenesis by PHF2 Histone Demethylase Okuno, Yosuke Ohtake, Fumiaki Igarashi, Katsuhide Kanno, Jun Matsumoto, Takahiro Takada, Ichiro Kato, Shigeaki Imai, Yuuki Diabetes Original Research PHF2 is a JmjC family histone demethylase that removes the methyl group from H3K9me2 and works as a coactivator for several metabolism-related transcription factors. In this study, we examined the in vivo role of PHF2 in mice. We generated Phf2 floxed mice, systemic Phf2 null mice by crossing Phf2 floxed mice with CMV-Cre transgenic mice, and tamoxifen-inducible Phf2 knockout mice by crossing Phf2 floxed mice with Cre-ERT2 transgenic mice. Systemic Phf2 null mice had partial neonatal death and growth retardation and exhibited less adipose tissue and reduced adipocyte numbers compared with control littermates. Tamoxifen-induced conditional knockout of PHF2 resulted in impaired adipogenesis in stromal vascular cells from the adipose tissue of tamoxifen-inducible Phf2 knockout mice as well as of Phf2 knocked-down 3T3-L1 cells. PHF2 interacts with CEBPA and demethylates H3K9me2 in the promoters of CEBPA-regulated adipogenic genes. These findings suggest that PHF2 histone demethylase potentiates adipogenesis through interaction with CEBPA in vivo. Taken together, PHF2 may be a novel therapeutic target in the treatment of obesity and the metabolic syndrome. American Diabetes Association 2013-05 2013-04-16 /pmc/articles/PMC3636657/ /pubmed/23274892 http://dx.doi.org/10.2337/db12-0628 Text en © 2013 by the American Diabetes Association. Readers may use this article as long as the work is properly cited, the use is educational and not for profit, and the work is not altered. See http://creativecommons.org/licenses/by-nc-nd/3.0/ for details.
spellingShingle Original Research
Okuno, Yosuke
Ohtake, Fumiaki
Igarashi, Katsuhide
Kanno, Jun
Matsumoto, Takahiro
Takada, Ichiro
Kato, Shigeaki
Imai, Yuuki
Epigenetic Regulation of Adipogenesis by PHF2 Histone Demethylase
title Epigenetic Regulation of Adipogenesis by PHF2 Histone Demethylase
title_full Epigenetic Regulation of Adipogenesis by PHF2 Histone Demethylase
title_fullStr Epigenetic Regulation of Adipogenesis by PHF2 Histone Demethylase
title_full_unstemmed Epigenetic Regulation of Adipogenesis by PHF2 Histone Demethylase
title_short Epigenetic Regulation of Adipogenesis by PHF2 Histone Demethylase
title_sort epigenetic regulation of adipogenesis by phf2 histone demethylase
topic Original Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3636657/
https://www.ncbi.nlm.nih.gov/pubmed/23274892
http://dx.doi.org/10.2337/db12-0628
work_keys_str_mv AT okunoyosuke epigeneticregulationofadipogenesisbyphf2histonedemethylase
AT ohtakefumiaki epigeneticregulationofadipogenesisbyphf2histonedemethylase
AT igarashikatsuhide epigeneticregulationofadipogenesisbyphf2histonedemethylase
AT kannojun epigeneticregulationofadipogenesisbyphf2histonedemethylase
AT matsumototakahiro epigeneticregulationofadipogenesisbyphf2histonedemethylase
AT takadaichiro epigeneticregulationofadipogenesisbyphf2histonedemethylase
AT katoshigeaki epigeneticregulationofadipogenesisbyphf2histonedemethylase
AT imaiyuuki epigeneticregulationofadipogenesisbyphf2histonedemethylase