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DNA methylation requires a DNMT1 ubiquitin interacting motif (UIM) and histone ubiquitination

DNMT1 is recruited by PCNA and UHRF1 to maintain DNA methylation after replication. UHRF1 recognizes hemimethylated DNA substrates via the SRA domain, but also repressive H3K9me3 histone marks with its TTD. With systematic mutagenesis and functional assays, we could show that chromatin binding furth...

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Autores principales: Qin, Weihua, Wolf, Patricia, Liu, Nan, Link, Stephanie, Smets, Martha, Mastra, Federica La, Forné, Ignasi, Pichler, Garwin, Hörl, David, Fellinger, Karin, Spada, Fabio, Bonapace, Ian Marc, Imhof, Axel, Harz, Hartmann, Leonhardt, Heinrich
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4528052/
https://www.ncbi.nlm.nih.gov/pubmed/26065575
http://dx.doi.org/10.1038/cr.2015.72
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author Qin, Weihua
Wolf, Patricia
Liu, Nan
Link, Stephanie
Smets, Martha
Mastra, Federica La
Forné, Ignasi
Pichler, Garwin
Hörl, David
Fellinger, Karin
Spada, Fabio
Bonapace, Ian Marc
Imhof, Axel
Harz, Hartmann
Leonhardt, Heinrich
author_facet Qin, Weihua
Wolf, Patricia
Liu, Nan
Link, Stephanie
Smets, Martha
Mastra, Federica La
Forné, Ignasi
Pichler, Garwin
Hörl, David
Fellinger, Karin
Spada, Fabio
Bonapace, Ian Marc
Imhof, Axel
Harz, Hartmann
Leonhardt, Heinrich
author_sort Qin, Weihua
collection PubMed
description DNMT1 is recruited by PCNA and UHRF1 to maintain DNA methylation after replication. UHRF1 recognizes hemimethylated DNA substrates via the SRA domain, but also repressive H3K9me3 histone marks with its TTD. With systematic mutagenesis and functional assays, we could show that chromatin binding further involved UHRF1 PHD binding to unmodified H3R2. These complementation assays clearly demonstrated that the ubiquitin ligase activity of the UHRF1 RING domain is required for maintenance DNA methylation. Mass spectrometry of UHRF1-deficient cells revealed H3K18 as a novel ubiquitination target of UHRF1 in mammalian cells. With bioinformatics and mutational analyses, we identified a ubiquitin interacting motif (UIM) in the N-terminal regulatory domain of DNMT1 that binds to ubiquitinated H3 tails and is essential for DNA methylation in vivo. H3 ubiquitination and subsequent DNA methylation required UHRF1 PHD binding to H3R2. These results show the manifold regulatory mechanisms controlling DNMT1 activity that require the reading and writing of epigenetic marks by UHRF1 and illustrate the multifaceted interplay between DNA and histone modifications. The identification and functional characterization of the DNMT1 UIM suggests a novel regulatory principle and we speculate that histone H2AK119 ubiquitination might also lead to UIM-dependent recruitment of DNMT1 and DNA methylation beyond classic maintenance.
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spelling pubmed-45280522015-08-07 DNA methylation requires a DNMT1 ubiquitin interacting motif (UIM) and histone ubiquitination Qin, Weihua Wolf, Patricia Liu, Nan Link, Stephanie Smets, Martha Mastra, Federica La Forné, Ignasi Pichler, Garwin Hörl, David Fellinger, Karin Spada, Fabio Bonapace, Ian Marc Imhof, Axel Harz, Hartmann Leonhardt, Heinrich Cell Res Original Article DNMT1 is recruited by PCNA and UHRF1 to maintain DNA methylation after replication. UHRF1 recognizes hemimethylated DNA substrates via the SRA domain, but also repressive H3K9me3 histone marks with its TTD. With systematic mutagenesis and functional assays, we could show that chromatin binding further involved UHRF1 PHD binding to unmodified H3R2. These complementation assays clearly demonstrated that the ubiquitin ligase activity of the UHRF1 RING domain is required for maintenance DNA methylation. Mass spectrometry of UHRF1-deficient cells revealed H3K18 as a novel ubiquitination target of UHRF1 in mammalian cells. With bioinformatics and mutational analyses, we identified a ubiquitin interacting motif (UIM) in the N-terminal regulatory domain of DNMT1 that binds to ubiquitinated H3 tails and is essential for DNA methylation in vivo. H3 ubiquitination and subsequent DNA methylation required UHRF1 PHD binding to H3R2. These results show the manifold regulatory mechanisms controlling DNMT1 activity that require the reading and writing of epigenetic marks by UHRF1 and illustrate the multifaceted interplay between DNA and histone modifications. The identification and functional characterization of the DNMT1 UIM suggests a novel regulatory principle and we speculate that histone H2AK119 ubiquitination might also lead to UIM-dependent recruitment of DNMT1 and DNA methylation beyond classic maintenance. Nature Publishing Group 2015-08 2015-06-12 /pmc/articles/PMC4528052/ /pubmed/26065575 http://dx.doi.org/10.1038/cr.2015.72 Text en Copyright © 2015 Shanghai Institutes for Biological Sciences, Chinese Academy of Sciences http://creativecommons.org/licenses/by-nc-nd/3.0 This work is licensed under the Creative Commons Attribution-NonCommercial-No Derivative Works 3.0 Unported License. To view a copy of this license, visit http://creativecommons.org/licenses/by-nc-nd/3.0
spellingShingle Original Article
Qin, Weihua
Wolf, Patricia
Liu, Nan
Link, Stephanie
Smets, Martha
Mastra, Federica La
Forné, Ignasi
Pichler, Garwin
Hörl, David
Fellinger, Karin
Spada, Fabio
Bonapace, Ian Marc
Imhof, Axel
Harz, Hartmann
Leonhardt, Heinrich
DNA methylation requires a DNMT1 ubiquitin interacting motif (UIM) and histone ubiquitination
title DNA methylation requires a DNMT1 ubiquitin interacting motif (UIM) and histone ubiquitination
title_full DNA methylation requires a DNMT1 ubiquitin interacting motif (UIM) and histone ubiquitination
title_fullStr DNA methylation requires a DNMT1 ubiquitin interacting motif (UIM) and histone ubiquitination
title_full_unstemmed DNA methylation requires a DNMT1 ubiquitin interacting motif (UIM) and histone ubiquitination
title_short DNA methylation requires a DNMT1 ubiquitin interacting motif (UIM) and histone ubiquitination
title_sort dna methylation requires a dnmt1 ubiquitin interacting motif (uim) and histone ubiquitination
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4528052/
https://www.ncbi.nlm.nih.gov/pubmed/26065575
http://dx.doi.org/10.1038/cr.2015.72
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