Specific phosphorylation of histone demethylase KDM3A determines target gene expression in response to heat shock.

Histone lysine (K) residues, which are modified by methyl- and acetyl-transferases, diversely regulate RNA synthesis. Unlike the ubiquitously activating effect of histone K acetylation, the effects of histone K methylation vary with the number of methyl groups added and with the position of these gr...

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Main Authors: Mo-bin Cheng, Yan Zhang, Chun-yu Cao, Wei-long Zhang, Ye Zhang, Yu-fei Shen
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2014-12-01
Series:PLoS Biology
Online Access:http://europepmc.org/articles/PMC4275180?pdf=render
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spelling doaj-423984b1c34b474685fc2d02ae74d7cb2021-07-02T11:27:44ZengPublic Library of Science (PLoS)PLoS Biology1544-91731545-78852014-12-011212e100202610.1371/journal.pbio.1002026Specific phosphorylation of histone demethylase KDM3A determines target gene expression in response to heat shock.Mo-bin ChengYan ZhangChun-yu CaoWei-long ZhangYe ZhangYu-fei ShenHistone lysine (K) residues, which are modified by methyl- and acetyl-transferases, diversely regulate RNA synthesis. Unlike the ubiquitously activating effect of histone K acetylation, the effects of histone K methylation vary with the number of methyl groups added and with the position of these groups in the histone tails. Histone K demethylases (KDMs) counteract the activity of methyl-transferases and remove methyl group(s) from specific K residues in histones. KDM3A (also known as JHDM2A or JMJD1A) is an H3K9me2/1 demethylase. KDM3A performs diverse functions via the regulation of its associated genes, which are involved in spermatogenesis, metabolism, and cell differentiation. However, the mechanism by which the activity of KDM3A is regulated is largely unknown. Here, we demonstrated that mitogen- and stress-activated protein kinase 1 (MSK1) specifically phosphorylates KDM3A at Ser264 (p-KDM3A), which is enriched in the regulatory regions of gene loci in the human genome. p-KDM3A directly interacts with and is recruited by the transcription factor Stat1 to activate p-KDM3A target genes under heat shock conditions. The demethylation of H3K9me2 at the Stat1 binding site specifically depends on the co-expression of p-KDM3A in the heat-shocked cells. In contrast to heat shock, IFN-γ treatment does not phosphorylate KDM3A via MSK1, thereby abrogating its downstream effects. To our knowledge, this is the first evidence that a KDM can be modified via phosphorylation to determine its specific binding to target genes in response to thermal stress.http://europepmc.org/articles/PMC4275180?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Mo-bin Cheng
Yan Zhang
Chun-yu Cao
Wei-long Zhang
Ye Zhang
Yu-fei Shen
spellingShingle Mo-bin Cheng
Yan Zhang
Chun-yu Cao
Wei-long Zhang
Ye Zhang
Yu-fei Shen
Specific phosphorylation of histone demethylase KDM3A determines target gene expression in response to heat shock.
PLoS Biology
author_facet Mo-bin Cheng
Yan Zhang
Chun-yu Cao
Wei-long Zhang
Ye Zhang
Yu-fei Shen
author_sort Mo-bin Cheng
title Specific phosphorylation of histone demethylase KDM3A determines target gene expression in response to heat shock.
title_short Specific phosphorylation of histone demethylase KDM3A determines target gene expression in response to heat shock.
title_full Specific phosphorylation of histone demethylase KDM3A determines target gene expression in response to heat shock.
title_fullStr Specific phosphorylation of histone demethylase KDM3A determines target gene expression in response to heat shock.
title_full_unstemmed Specific phosphorylation of histone demethylase KDM3A determines target gene expression in response to heat shock.
title_sort specific phosphorylation of histone demethylase kdm3a determines target gene expression in response to heat shock.
publisher Public Library of Science (PLoS)
series PLoS Biology
issn 1544-9173
1545-7885
publishDate 2014-12-01
description Histone lysine (K) residues, which are modified by methyl- and acetyl-transferases, diversely regulate RNA synthesis. Unlike the ubiquitously activating effect of histone K acetylation, the effects of histone K methylation vary with the number of methyl groups added and with the position of these groups in the histone tails. Histone K demethylases (KDMs) counteract the activity of methyl-transferases and remove methyl group(s) from specific K residues in histones. KDM3A (also known as JHDM2A or JMJD1A) is an H3K9me2/1 demethylase. KDM3A performs diverse functions via the regulation of its associated genes, which are involved in spermatogenesis, metabolism, and cell differentiation. However, the mechanism by which the activity of KDM3A is regulated is largely unknown. Here, we demonstrated that mitogen- and stress-activated protein kinase 1 (MSK1) specifically phosphorylates KDM3A at Ser264 (p-KDM3A), which is enriched in the regulatory regions of gene loci in the human genome. p-KDM3A directly interacts with and is recruited by the transcription factor Stat1 to activate p-KDM3A target genes under heat shock conditions. The demethylation of H3K9me2 at the Stat1 binding site specifically depends on the co-expression of p-KDM3A in the heat-shocked cells. In contrast to heat shock, IFN-γ treatment does not phosphorylate KDM3A via MSK1, thereby abrogating its downstream effects. To our knowledge, this is the first evidence that a KDM can be modified via phosphorylation to determine its specific binding to target genes in response to thermal stress.
url http://europepmc.org/articles/PMC4275180?pdf=render
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