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Dynamic regulation of the transcription initiation landscape at single nucleotide resolution during vertebrate embryogenesis

Spatiotemporal control of gene expression is central to animal development. Core promoters represent a previously unanticipated regulatory level by interacting with cis-regulatory elements and transcription initiation in different physiological and developmental contexts. Here, we provide a first an...

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Autores principales: Nepal, Chirag, Hadzhiev, Yavor, Previti, Christopher, Haberle, Vanja, Li, Nan, Takahashi, Hazuki, Suzuki, Ana Maria M., Sheng, Ying, Abdelhamid, Rehab F., Anand, Santosh, Gehrig, Jochen, Akalin, Altuna, Kockx, Christel E.M., van der Sloot, Antoine A.J., van IJcken, Wilfred F.J., Armant, Olivier, Rastegar, Sepand, Watson, Craig, Strähle, Uwe, Stupka, Elia, Carninci, Piero, Lenhard, Boris, Müller, Ferenc
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cold Spring Harbor Laboratory Press 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3814893/
https://www.ncbi.nlm.nih.gov/pubmed/24002785
http://dx.doi.org/10.1101/gr.153692.112
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author Nepal, Chirag
Hadzhiev, Yavor
Previti, Christopher
Haberle, Vanja
Li, Nan
Takahashi, Hazuki
Suzuki, Ana Maria M.
Sheng, Ying
Abdelhamid, Rehab F.
Anand, Santosh
Gehrig, Jochen
Akalin, Altuna
Kockx, Christel E.M.
van der Sloot, Antoine A.J.
van IJcken, Wilfred F.J.
Armant, Olivier
Rastegar, Sepand
Watson, Craig
Strähle, Uwe
Stupka, Elia
Carninci, Piero
Lenhard, Boris
Müller, Ferenc
author_facet Nepal, Chirag
Hadzhiev, Yavor
Previti, Christopher
Haberle, Vanja
Li, Nan
Takahashi, Hazuki
Suzuki, Ana Maria M.
Sheng, Ying
Abdelhamid, Rehab F.
Anand, Santosh
Gehrig, Jochen
Akalin, Altuna
Kockx, Christel E.M.
van der Sloot, Antoine A.J.
van IJcken, Wilfred F.J.
Armant, Olivier
Rastegar, Sepand
Watson, Craig
Strähle, Uwe
Stupka, Elia
Carninci, Piero
Lenhard, Boris
Müller, Ferenc
author_sort Nepal, Chirag
collection PubMed
description Spatiotemporal control of gene expression is central to animal development. Core promoters represent a previously unanticipated regulatory level by interacting with cis-regulatory elements and transcription initiation in different physiological and developmental contexts. Here, we provide a first and comprehensive description of the core promoter repertoire and its dynamic use during the development of a vertebrate embryo. By using cap analysis of gene expression (CAGE), we mapped transcription initiation events at single nucleotide resolution across 12 stages of zebrafish development. These CAGE-based transcriptome maps reveal genome-wide rules of core promoter usage, structure, and dynamics, key to understanding the control of gene regulation during vertebrate ontogeny. They revealed the existence of multiple classes of pervasive intra- and intergenic post-transcriptionally processed RNA products and their developmental dynamics. Among these RNAs, we report splice donor site-associated intronic RNA (sRNA) to be specific to genes of the splicing machinery. For the identification of conserved features, we compared the zebrafish data sets to the first CAGE promoter map of Tetraodon and the existing human CAGE data. We show that a number of features, such as promoter type, newly discovered promoter properties such as a specialized purine-rich initiator motif, as well as sRNAs and the genes in which they are detected, are conserved in mammalian and Tetraodon CAGE-defined promoter maps. The zebrafish developmental promoterome represents a powerful resource for studying developmental gene regulation and revealing promoter features shared across vertebrates.
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spelling pubmed-38148932014-05-01 Dynamic regulation of the transcription initiation landscape at single nucleotide resolution during vertebrate embryogenesis Nepal, Chirag Hadzhiev, Yavor Previti, Christopher Haberle, Vanja Li, Nan Takahashi, Hazuki Suzuki, Ana Maria M. Sheng, Ying Abdelhamid, Rehab F. Anand, Santosh Gehrig, Jochen Akalin, Altuna Kockx, Christel E.M. van der Sloot, Antoine A.J. van IJcken, Wilfred F.J. Armant, Olivier Rastegar, Sepand Watson, Craig Strähle, Uwe Stupka, Elia Carninci, Piero Lenhard, Boris Müller, Ferenc Genome Res Resource Spatiotemporal control of gene expression is central to animal development. Core promoters represent a previously unanticipated regulatory level by interacting with cis-regulatory elements and transcription initiation in different physiological and developmental contexts. Here, we provide a first and comprehensive description of the core promoter repertoire and its dynamic use during the development of a vertebrate embryo. By using cap analysis of gene expression (CAGE), we mapped transcription initiation events at single nucleotide resolution across 12 stages of zebrafish development. These CAGE-based transcriptome maps reveal genome-wide rules of core promoter usage, structure, and dynamics, key to understanding the control of gene regulation during vertebrate ontogeny. They revealed the existence of multiple classes of pervasive intra- and intergenic post-transcriptionally processed RNA products and their developmental dynamics. Among these RNAs, we report splice donor site-associated intronic RNA (sRNA) to be specific to genes of the splicing machinery. For the identification of conserved features, we compared the zebrafish data sets to the first CAGE promoter map of Tetraodon and the existing human CAGE data. We show that a number of features, such as promoter type, newly discovered promoter properties such as a specialized purine-rich initiator motif, as well as sRNAs and the genes in which they are detected, are conserved in mammalian and Tetraodon CAGE-defined promoter maps. The zebrafish developmental promoterome represents a powerful resource for studying developmental gene regulation and revealing promoter features shared across vertebrates. Cold Spring Harbor Laboratory Press 2013-11 /pmc/articles/PMC3814893/ /pubmed/24002785 http://dx.doi.org/10.1101/gr.153692.112 Text en © 2013 Nepal et al.; Published by Cold Spring Harbor Laboratory Press http://creativecommons.org/licenses/by-nc/3.0/ This article is distributed exclusively by Cold Spring Harbor Laboratory Press for the first six months after the full-issue publication date (see http://genome.cshlp.org/site/misc/terms.xhtml). After six months, it is available under a Creative Commons License (Attribution-NonCommercial 3.0 Unported), as described at http://creativecommons.org/licenses/by-nc/3.0/.
spellingShingle Resource
Nepal, Chirag
Hadzhiev, Yavor
Previti, Christopher
Haberle, Vanja
Li, Nan
Takahashi, Hazuki
Suzuki, Ana Maria M.
Sheng, Ying
Abdelhamid, Rehab F.
Anand, Santosh
Gehrig, Jochen
Akalin, Altuna
Kockx, Christel E.M.
van der Sloot, Antoine A.J.
van IJcken, Wilfred F.J.
Armant, Olivier
Rastegar, Sepand
Watson, Craig
Strähle, Uwe
Stupka, Elia
Carninci, Piero
Lenhard, Boris
Müller, Ferenc
Dynamic regulation of the transcription initiation landscape at single nucleotide resolution during vertebrate embryogenesis
title Dynamic regulation of the transcription initiation landscape at single nucleotide resolution during vertebrate embryogenesis
title_full Dynamic regulation of the transcription initiation landscape at single nucleotide resolution during vertebrate embryogenesis
title_fullStr Dynamic regulation of the transcription initiation landscape at single nucleotide resolution during vertebrate embryogenesis
title_full_unstemmed Dynamic regulation of the transcription initiation landscape at single nucleotide resolution during vertebrate embryogenesis
title_short Dynamic regulation of the transcription initiation landscape at single nucleotide resolution during vertebrate embryogenesis
title_sort dynamic regulation of the transcription initiation landscape at single nucleotide resolution during vertebrate embryogenesis
topic Resource
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3814893/
https://www.ncbi.nlm.nih.gov/pubmed/24002785
http://dx.doi.org/10.1101/gr.153692.112
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