The histone H3 lysine 27-specific demethylase Jmjd3 is required for neural commitment.

Patterns of methylation at lysine 4 and 27 of histone H3 have been associated with states of gene activation and repression that are developmentally regulated and are thought to underlie the establishment of lineage specific gene expression programs. Recent studies have provided fundamental insight...

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Main Authors: Thomas Burgold, Fabio Spreafico, Francesca De Santa, Maria Grazia Totaro, Elena Prosperini, Gioacchino Natoli, Giuseppe Testa
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2008-08-01
Series:PLoS ONE
Online Access:https://www.ncbi.nlm.nih.gov/pmc/articles/pmid/18716661/pdf/?tool=EBI
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spelling doaj-8431b88aec124da98c71019e648380d52021-06-19T05:07:08ZengPublic Library of Science (PLoS)PLoS ONE1932-62032008-08-0138e303410.1371/journal.pone.0003034The histone H3 lysine 27-specific demethylase Jmjd3 is required for neural commitment.Thomas BurgoldFabio SpreaficoFrancesca De SantaMaria Grazia TotaroElena ProsperiniGioacchino NatoliGiuseppe TestaPatterns of methylation at lysine 4 and 27 of histone H3 have been associated with states of gene activation and repression that are developmentally regulated and are thought to underlie the establishment of lineage specific gene expression programs. Recent studies have provided fundamental insight into the problem of lineage specification by comparing global changes in chromatin and transcription between ES and neural stem (NS) cells, points respectively of departure and arrival for neural commitment. With these maps of the differentiated state in place, a central task is now to unravel the chromatin dynamics that enables these differentiation transitions. In particular, the observation that lineage-specific genes repressed in ES cells by Polycomb-mediated H3-K27 trimethylation (H3-K27me3) are demethylated and derepressed in differentiated cells posited the existence of a specific H3-K27 demethylase.In order to gain insight into the epigenetic transitions that enable lineage specification, we investigated the early stages of neural commitment using as model system the monolayer differentiation of mouse ES cells into neural stem (NS) cells. Starting from a comprehensive profiling of JmjC-domain genes, we report here that Jmjd3, recently identified as a H3-K27me3 specific demethylase, controls the expression of key regulators and markers of neurogenesis and is required for commitment to the neural lineage.Our results demonstrate the relevance of an enzymatic activity that antagonizes Polycomb regulation and highlight different modalities through which the dynamics of H3-K27me3 is related to transcriptional output. By showing that the H3-K27 demethylase Jmjd3 is required for commitment to the neural lineage and that it resolves the bivalent domain at the Nestin promoter, our work confirms the functional relevance of bivalent domain resolution that had been posited on the basis of the genome-wide correlation between their controlled resolution and differentiation. In addition, our data indicate that the regulation of H3-K27me3 is highly gene- and context- specific, suggesting that the interplay of methyltransferases and demethylases enables the fine-tuning more than the on/off alternation of methylation states.https://www.ncbi.nlm.nih.gov/pmc/articles/pmid/18716661/pdf/?tool=EBI
collection DOAJ
language English
format Article
sources DOAJ
author Thomas Burgold
Fabio Spreafico
Francesca De Santa
Maria Grazia Totaro
Elena Prosperini
Gioacchino Natoli
Giuseppe Testa
spellingShingle Thomas Burgold
Fabio Spreafico
Francesca De Santa
Maria Grazia Totaro
Elena Prosperini
Gioacchino Natoli
Giuseppe Testa
The histone H3 lysine 27-specific demethylase Jmjd3 is required for neural commitment.
PLoS ONE
author_facet Thomas Burgold
Fabio Spreafico
Francesca De Santa
Maria Grazia Totaro
Elena Prosperini
Gioacchino Natoli
Giuseppe Testa
author_sort Thomas Burgold
title The histone H3 lysine 27-specific demethylase Jmjd3 is required for neural commitment.
title_short The histone H3 lysine 27-specific demethylase Jmjd3 is required for neural commitment.
title_full The histone H3 lysine 27-specific demethylase Jmjd3 is required for neural commitment.
title_fullStr The histone H3 lysine 27-specific demethylase Jmjd3 is required for neural commitment.
title_full_unstemmed The histone H3 lysine 27-specific demethylase Jmjd3 is required for neural commitment.
title_sort histone h3 lysine 27-specific demethylase jmjd3 is required for neural commitment.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2008-08-01
description Patterns of methylation at lysine 4 and 27 of histone H3 have been associated with states of gene activation and repression that are developmentally regulated and are thought to underlie the establishment of lineage specific gene expression programs. Recent studies have provided fundamental insight into the problem of lineage specification by comparing global changes in chromatin and transcription between ES and neural stem (NS) cells, points respectively of departure and arrival for neural commitment. With these maps of the differentiated state in place, a central task is now to unravel the chromatin dynamics that enables these differentiation transitions. In particular, the observation that lineage-specific genes repressed in ES cells by Polycomb-mediated H3-K27 trimethylation (H3-K27me3) are demethylated and derepressed in differentiated cells posited the existence of a specific H3-K27 demethylase.In order to gain insight into the epigenetic transitions that enable lineage specification, we investigated the early stages of neural commitment using as model system the monolayer differentiation of mouse ES cells into neural stem (NS) cells. Starting from a comprehensive profiling of JmjC-domain genes, we report here that Jmjd3, recently identified as a H3-K27me3 specific demethylase, controls the expression of key regulators and markers of neurogenesis and is required for commitment to the neural lineage.Our results demonstrate the relevance of an enzymatic activity that antagonizes Polycomb regulation and highlight different modalities through which the dynamics of H3-K27me3 is related to transcriptional output. By showing that the H3-K27 demethylase Jmjd3 is required for commitment to the neural lineage and that it resolves the bivalent domain at the Nestin promoter, our work confirms the functional relevance of bivalent domain resolution that had been posited on the basis of the genome-wide correlation between their controlled resolution and differentiation. In addition, our data indicate that the regulation of H3-K27me3 is highly gene- and context- specific, suggesting that the interplay of methyltransferases and demethylases enables the fine-tuning more than the on/off alternation of methylation states.
url https://www.ncbi.nlm.nih.gov/pmc/articles/pmid/18716661/pdf/?tool=EBI
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