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In Embryonic Stem Cells, ZFP57/KAP1 Recognize a Methylated Hexanucleotide to Affect Chromatin and DNA Methylation of Imprinting Control Regions

The maintenance of H3K9 and DNA methylation at imprinting control regions (ICRs) during early embryogenesis is key to the regulation of imprinted genes. Here, we reveal that ZFP57, its cofactor KAP1, and associated effectors bind selectively to the H3K9me3-bearing, DNA-methylated allele of ICRs in E...

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Autores principales: Quenneville, Simon, Verde, Gaetano, Corsinotti, Andrea, Kapopoulou, Adamandia, Jakobsson, Johan, Offner, Sandra, Baglivo, Ilaria, Pedone, Paolo V., Grimaldi, Giovanna, Riccio, Andrea, Trono, Didier
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cell Press 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3210328/
https://www.ncbi.nlm.nih.gov/pubmed/22055183
http://dx.doi.org/10.1016/j.molcel.2011.08.032
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author Quenneville, Simon
Verde, Gaetano
Corsinotti, Andrea
Kapopoulou, Adamandia
Jakobsson, Johan
Offner, Sandra
Baglivo, Ilaria
Pedone, Paolo V.
Grimaldi, Giovanna
Riccio, Andrea
Trono, Didier
author_facet Quenneville, Simon
Verde, Gaetano
Corsinotti, Andrea
Kapopoulou, Adamandia
Jakobsson, Johan
Offner, Sandra
Baglivo, Ilaria
Pedone, Paolo V.
Grimaldi, Giovanna
Riccio, Andrea
Trono, Didier
author_sort Quenneville, Simon
collection PubMed
description The maintenance of H3K9 and DNA methylation at imprinting control regions (ICRs) during early embryogenesis is key to the regulation of imprinted genes. Here, we reveal that ZFP57, its cofactor KAP1, and associated effectors bind selectively to the H3K9me3-bearing, DNA-methylated allele of ICRs in ES cells. KAP1 deletion induces a loss of heterochromatin marks at ICRs, whereas deleting ZFP57 or DNMTs leads to ICR DNA demethylation. Accordingly, we find that ZFP57 and KAP1 associated with DNMTs and hemimethylated DNA-binding NP95. Finally, we identify the methylated TGCCGC hexanucleotide as the motif that is recognized by ZFP57 in all ICRs and in several tens of additional loci, several of which are at least ZFP57-dependently methylated in ES cells. These results significantly advance our understanding of imprinting and suggest a general mechanism for the protection of specific loci against the wave of DNA demethylation that affects the mammalian genome during early embryogenesis.
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spelling pubmed-32103282011-12-28 In Embryonic Stem Cells, ZFP57/KAP1 Recognize a Methylated Hexanucleotide to Affect Chromatin and DNA Methylation of Imprinting Control Regions Quenneville, Simon Verde, Gaetano Corsinotti, Andrea Kapopoulou, Adamandia Jakobsson, Johan Offner, Sandra Baglivo, Ilaria Pedone, Paolo V. Grimaldi, Giovanna Riccio, Andrea Trono, Didier Mol Cell Article The maintenance of H3K9 and DNA methylation at imprinting control regions (ICRs) during early embryogenesis is key to the regulation of imprinted genes. Here, we reveal that ZFP57, its cofactor KAP1, and associated effectors bind selectively to the H3K9me3-bearing, DNA-methylated allele of ICRs in ES cells. KAP1 deletion induces a loss of heterochromatin marks at ICRs, whereas deleting ZFP57 or DNMTs leads to ICR DNA demethylation. Accordingly, we find that ZFP57 and KAP1 associated with DNMTs and hemimethylated DNA-binding NP95. Finally, we identify the methylated TGCCGC hexanucleotide as the motif that is recognized by ZFP57 in all ICRs and in several tens of additional loci, several of which are at least ZFP57-dependently methylated in ES cells. These results significantly advance our understanding of imprinting and suggest a general mechanism for the protection of specific loci against the wave of DNA demethylation that affects the mammalian genome during early embryogenesis. Cell Press 2011-11-04 /pmc/articles/PMC3210328/ /pubmed/22055183 http://dx.doi.org/10.1016/j.molcel.2011.08.032 Text en © 2011 ELL & Excerpta Medica. https://creativecommons.org/licenses/by-nc-nd/3.0/ Open Access under CC BY-NC-ND 3.0 (https://creativecommons.org/licenses/by-nc-nd/3.0/) license
spellingShingle Article
Quenneville, Simon
Verde, Gaetano
Corsinotti, Andrea
Kapopoulou, Adamandia
Jakobsson, Johan
Offner, Sandra
Baglivo, Ilaria
Pedone, Paolo V.
Grimaldi, Giovanna
Riccio, Andrea
Trono, Didier
In Embryonic Stem Cells, ZFP57/KAP1 Recognize a Methylated Hexanucleotide to Affect Chromatin and DNA Methylation of Imprinting Control Regions
title In Embryonic Stem Cells, ZFP57/KAP1 Recognize a Methylated Hexanucleotide to Affect Chromatin and DNA Methylation of Imprinting Control Regions
title_full In Embryonic Stem Cells, ZFP57/KAP1 Recognize a Methylated Hexanucleotide to Affect Chromatin and DNA Methylation of Imprinting Control Regions
title_fullStr In Embryonic Stem Cells, ZFP57/KAP1 Recognize a Methylated Hexanucleotide to Affect Chromatin and DNA Methylation of Imprinting Control Regions
title_full_unstemmed In Embryonic Stem Cells, ZFP57/KAP1 Recognize a Methylated Hexanucleotide to Affect Chromatin and DNA Methylation of Imprinting Control Regions
title_short In Embryonic Stem Cells, ZFP57/KAP1 Recognize a Methylated Hexanucleotide to Affect Chromatin and DNA Methylation of Imprinting Control Regions
title_sort in embryonic stem cells, zfp57/kap1 recognize a methylated hexanucleotide to affect chromatin and dna methylation of imprinting control regions
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3210328/
https://www.ncbi.nlm.nih.gov/pubmed/22055183
http://dx.doi.org/10.1016/j.molcel.2011.08.032
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