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PU.1 target genes undergo Tet2-coupled demethylation and DNMT3b-mediated methylation in monocyte-to-osteoclast differentiation

BACKGROUND: DNA methylation is a key epigenetic mechanism for driving and stabilizing cell-fate decisions. Local deposition and removal of DNA methylation are tightly coupled with transcription factor binding, although the relationship varies with the specific differentiation process. Conversion of...

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Autores principales: de la Rica, Lorenzo, Rodríguez-Ubreva, Javier, García, Mireia, Islam, Abul BMMK, Urquiza, José M, Hernando, Henar, Christensen, Jesper, Helin, Kristian, Gómez-Vaquero, Carmen, Ballestar, Esteban
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BioMed Central 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4054781/
https://www.ncbi.nlm.nih.gov/pubmed/24028770
http://dx.doi.org/10.1186/gb-2013-14-9-r99
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author de la Rica, Lorenzo
Rodríguez-Ubreva, Javier
García, Mireia
Islam, Abul BMMK
Urquiza, José M
Hernando, Henar
Christensen, Jesper
Helin, Kristian
Gómez-Vaquero, Carmen
Ballestar, Esteban
author_facet de la Rica, Lorenzo
Rodríguez-Ubreva, Javier
García, Mireia
Islam, Abul BMMK
Urquiza, José M
Hernando, Henar
Christensen, Jesper
Helin, Kristian
Gómez-Vaquero, Carmen
Ballestar, Esteban
author_sort de la Rica, Lorenzo
collection PubMed
description BACKGROUND: DNA methylation is a key epigenetic mechanism for driving and stabilizing cell-fate decisions. Local deposition and removal of DNA methylation are tightly coupled with transcription factor binding, although the relationship varies with the specific differentiation process. Conversion of monocytes to osteoclasts is a unique terminal differentiation process within the hematopoietic system. This differentiation model is relevant to autoimmune disease and cancer, and there is abundant knowledge on the sets of transcription factors involved. RESULTS: Here we focused on DNA methylation changes during osteoclastogenesis. Hypermethylation and hypomethylation changes took place in several thousand genes, including all relevant osteoclast differentiation and function categories. Hypomethylation occurred in association with changes in 5-hydroxymethylcytosine, a proposed intermediate toward demethylation. Transcription factor binding motif analysis revealed an over-representation of PU.1, NF-κB, and AP-1 (Jun/Fos) binding motifs in genes undergoing DNA methylation changes. Among these, only PU.1 motifs were significantly enriched in both hypermethylated and hypomethylated genes; ChIP-seq data analysis confirmed its association to both gene sets. Moreover, PU.1 interacts with both DNMT3b and TET2, suggesting its participation in driving hypermethylation and hydroxymethylation-mediated hypomethylation. Consistent with this, siRNA-mediated PU.1 knockdown in primary monocytes impaired the acquisition of DNA methylation and expression changes, and reduced the association of TET2 and DNMT3b at PU.1 targets during osteoclast differentiation. CONCLUSIONS: The work described here identifies key changes in DNA methylation during monocyte-to-osteoclast differentiation and reveals novel roles for PU.1 in this process.
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spelling pubmed-40547812014-06-12 PU.1 target genes undergo Tet2-coupled demethylation and DNMT3b-mediated methylation in monocyte-to-osteoclast differentiation de la Rica, Lorenzo Rodríguez-Ubreva, Javier García, Mireia Islam, Abul BMMK Urquiza, José M Hernando, Henar Christensen, Jesper Helin, Kristian Gómez-Vaquero, Carmen Ballestar, Esteban Genome Biol Research BACKGROUND: DNA methylation is a key epigenetic mechanism for driving and stabilizing cell-fate decisions. Local deposition and removal of DNA methylation are tightly coupled with transcription factor binding, although the relationship varies with the specific differentiation process. Conversion of monocytes to osteoclasts is a unique terminal differentiation process within the hematopoietic system. This differentiation model is relevant to autoimmune disease and cancer, and there is abundant knowledge on the sets of transcription factors involved. RESULTS: Here we focused on DNA methylation changes during osteoclastogenesis. Hypermethylation and hypomethylation changes took place in several thousand genes, including all relevant osteoclast differentiation and function categories. Hypomethylation occurred in association with changes in 5-hydroxymethylcytosine, a proposed intermediate toward demethylation. Transcription factor binding motif analysis revealed an over-representation of PU.1, NF-κB, and AP-1 (Jun/Fos) binding motifs in genes undergoing DNA methylation changes. Among these, only PU.1 motifs were significantly enriched in both hypermethylated and hypomethylated genes; ChIP-seq data analysis confirmed its association to both gene sets. Moreover, PU.1 interacts with both DNMT3b and TET2, suggesting its participation in driving hypermethylation and hydroxymethylation-mediated hypomethylation. Consistent with this, siRNA-mediated PU.1 knockdown in primary monocytes impaired the acquisition of DNA methylation and expression changes, and reduced the association of TET2 and DNMT3b at PU.1 targets during osteoclast differentiation. CONCLUSIONS: The work described here identifies key changes in DNA methylation during monocyte-to-osteoclast differentiation and reveals novel roles for PU.1 in this process. BioMed Central 2013 2013-09-12 /pmc/articles/PMC4054781/ /pubmed/24028770 http://dx.doi.org/10.1186/gb-2013-14-9-r99 Text en Copyright © 2013 de la Rica 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
de la Rica, Lorenzo
Rodríguez-Ubreva, Javier
García, Mireia
Islam, Abul BMMK
Urquiza, José M
Hernando, Henar
Christensen, Jesper
Helin, Kristian
Gómez-Vaquero, Carmen
Ballestar, Esteban
PU.1 target genes undergo Tet2-coupled demethylation and DNMT3b-mediated methylation in monocyte-to-osteoclast differentiation
title PU.1 target genes undergo Tet2-coupled demethylation and DNMT3b-mediated methylation in monocyte-to-osteoclast differentiation
title_full PU.1 target genes undergo Tet2-coupled demethylation and DNMT3b-mediated methylation in monocyte-to-osteoclast differentiation
title_fullStr PU.1 target genes undergo Tet2-coupled demethylation and DNMT3b-mediated methylation in monocyte-to-osteoclast differentiation
title_full_unstemmed PU.1 target genes undergo Tet2-coupled demethylation and DNMT3b-mediated methylation in monocyte-to-osteoclast differentiation
title_short PU.1 target genes undergo Tet2-coupled demethylation and DNMT3b-mediated methylation in monocyte-to-osteoclast differentiation
title_sort pu.1 target genes undergo tet2-coupled demethylation and dnmt3b-mediated methylation in monocyte-to-osteoclast differentiation
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4054781/
https://www.ncbi.nlm.nih.gov/pubmed/24028770
http://dx.doi.org/10.1186/gb-2013-14-9-r99
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