Cargando…

H3K27me3 Signal in the Cis Regulatory Elements Reveals the Differentiation Potential of Progenitors During Drosophila Neuroglial Development

Drosophila neural development undergoes extensive chromatin remodeling and precise epigenetic regulation. However, the roles of chromatin remodeling in establishment and maintenance of cell identity during cell fate transition remain enigmatic. Here, we compared the changes in gene expression, as we...

Descripción completa

Detalles Bibliográficos
Autores principales: Chen, Xiaolong, Ye, Youqiong, Gu, Liang, Sun, Jin, Du, Yanhua, Liu, Wen-Ju, Li, Wei, Zhang, Xiaobai, Jiang, Cizhong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6818177/
https://www.ncbi.nlm.nih.gov/pubmed/31195140
http://dx.doi.org/10.1016/j.gpb.2018.12.009
_version_ 1783463573832335360
author Chen, Xiaolong
Ye, Youqiong
Gu, Liang
Sun, Jin
Du, Yanhua
Liu, Wen-Ju
Li, Wei
Zhang, Xiaobai
Jiang, Cizhong
author_facet Chen, Xiaolong
Ye, Youqiong
Gu, Liang
Sun, Jin
Du, Yanhua
Liu, Wen-Ju
Li, Wei
Zhang, Xiaobai
Jiang, Cizhong
author_sort Chen, Xiaolong
collection PubMed
description Drosophila neural development undergoes extensive chromatin remodeling and precise epigenetic regulation. However, the roles of chromatin remodeling in establishment and maintenance of cell identity during cell fate transition remain enigmatic. Here, we compared the changes in gene expression, as well as the dynamics of nucleosome positioning and key histone modifications between the four major neural cell types during Drosophila neural development. We find that the neural progenitors can be separated from the terminally differentiated cells based on their gene expression profiles, whereas nucleosome distribution in the flanking regions of transcription start sites fails to identify the relationships between the progenitors and the differentiated cells. H3K27me3 signal in promoters and enhancers can not only distinguish the progenitors from the differentiated cells but also identify the differentiation path of the neural stem cells (NSCs) to the intermediate progenitor cells to the glial cells. In contrast, H3K9ac signal fails to identify the differentiation path, although it activates distinct sets of genes with neuron-specific and glia-related functions during the differentiation of the NSCs into neurons and glia, respectively. Together, our study provides novel insights into the crucial roles of chromatin remodeling in determining cell type during Drosophila neural development.
format Online
Article
Text
id pubmed-6818177
institution National Center for Biotechnology Information
language English
publishDate 2019
publisher Elsevier
record_format MEDLINE/PubMed
spelling pubmed-68181772019-11-01 H3K27me3 Signal in the Cis Regulatory Elements Reveals the Differentiation Potential of Progenitors During Drosophila Neuroglial Development Chen, Xiaolong Ye, Youqiong Gu, Liang Sun, Jin Du, Yanhua Liu, Wen-Ju Li, Wei Zhang, Xiaobai Jiang, Cizhong Genomics Proteomics Bioinformatics Letter Drosophila neural development undergoes extensive chromatin remodeling and precise epigenetic regulation. However, the roles of chromatin remodeling in establishment and maintenance of cell identity during cell fate transition remain enigmatic. Here, we compared the changes in gene expression, as well as the dynamics of nucleosome positioning and key histone modifications between the four major neural cell types during Drosophila neural development. We find that the neural progenitors can be separated from the terminally differentiated cells based on their gene expression profiles, whereas nucleosome distribution in the flanking regions of transcription start sites fails to identify the relationships between the progenitors and the differentiated cells. H3K27me3 signal in promoters and enhancers can not only distinguish the progenitors from the differentiated cells but also identify the differentiation path of the neural stem cells (NSCs) to the intermediate progenitor cells to the glial cells. In contrast, H3K9ac signal fails to identify the differentiation path, although it activates distinct sets of genes with neuron-specific and glia-related functions during the differentiation of the NSCs into neurons and glia, respectively. Together, our study provides novel insights into the crucial roles of chromatin remodeling in determining cell type during Drosophila neural development. Elsevier 2019-06 2019-06-11 /pmc/articles/PMC6818177/ /pubmed/31195140 http://dx.doi.org/10.1016/j.gpb.2018.12.009 Text en © 2019 The Authors http://creativecommons.org/licenses/by/4.0/ This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Letter
Chen, Xiaolong
Ye, Youqiong
Gu, Liang
Sun, Jin
Du, Yanhua
Liu, Wen-Ju
Li, Wei
Zhang, Xiaobai
Jiang, Cizhong
H3K27me3 Signal in the Cis Regulatory Elements Reveals the Differentiation Potential of Progenitors During Drosophila Neuroglial Development
title H3K27me3 Signal in the Cis Regulatory Elements Reveals the Differentiation Potential of Progenitors During Drosophila Neuroglial Development
title_full H3K27me3 Signal in the Cis Regulatory Elements Reveals the Differentiation Potential of Progenitors During Drosophila Neuroglial Development
title_fullStr H3K27me3 Signal in the Cis Regulatory Elements Reveals the Differentiation Potential of Progenitors During Drosophila Neuroglial Development
title_full_unstemmed H3K27me3 Signal in the Cis Regulatory Elements Reveals the Differentiation Potential of Progenitors During Drosophila Neuroglial Development
title_short H3K27me3 Signal in the Cis Regulatory Elements Reveals the Differentiation Potential of Progenitors During Drosophila Neuroglial Development
title_sort h3k27me3 signal in the cis regulatory elements reveals the differentiation potential of progenitors during drosophila neuroglial development
topic Letter
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6818177/
https://www.ncbi.nlm.nih.gov/pubmed/31195140
http://dx.doi.org/10.1016/j.gpb.2018.12.009
work_keys_str_mv AT chenxiaolong h3k27me3signalinthecisregulatoryelementsrevealsthedifferentiationpotentialofprogenitorsduringdrosophilaneuroglialdevelopment
AT yeyouqiong h3k27me3signalinthecisregulatoryelementsrevealsthedifferentiationpotentialofprogenitorsduringdrosophilaneuroglialdevelopment
AT guliang h3k27me3signalinthecisregulatoryelementsrevealsthedifferentiationpotentialofprogenitorsduringdrosophilaneuroglialdevelopment
AT sunjin h3k27me3signalinthecisregulatoryelementsrevealsthedifferentiationpotentialofprogenitorsduringdrosophilaneuroglialdevelopment
AT duyanhua h3k27me3signalinthecisregulatoryelementsrevealsthedifferentiationpotentialofprogenitorsduringdrosophilaneuroglialdevelopment
AT liuwenju h3k27me3signalinthecisregulatoryelementsrevealsthedifferentiationpotentialofprogenitorsduringdrosophilaneuroglialdevelopment
AT liwei h3k27me3signalinthecisregulatoryelementsrevealsthedifferentiationpotentialofprogenitorsduringdrosophilaneuroglialdevelopment
AT zhangxiaobai h3k27me3signalinthecisregulatoryelementsrevealsthedifferentiationpotentialofprogenitorsduringdrosophilaneuroglialdevelopment
AT jiangcizhong h3k27me3signalinthecisregulatoryelementsrevealsthedifferentiationpotentialofprogenitorsduringdrosophilaneuroglialdevelopment