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Evolutionary Plasticity of Polycomb/Trithorax Response Elements in Drosophila Species

cis-Regulatory DNA elements contain multiple binding sites for activators and repressors of transcription. Among these elements are enhancers, which establish gene expression states, and Polycomb/Trithorax response elements (PREs), which take over from enhancers and maintain transcription states of...

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Detalles Bibliográficos
Autores principales: Hauenschild, Arne, Ringrose, Leonie, Altmutter, Christina, Paro, Renato, Rehmsmeier, Marc
Formato: Texto
Lenguaje:English
Publicado: Public Library of Science 2008
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Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2573935/
https://www.ncbi.nlm.nih.gov/pubmed/18959483
http://dx.doi.org/10.1371/journal.pbio.0060261
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author Hauenschild, Arne
Ringrose, Leonie
Altmutter, Christina
Paro, Renato
Rehmsmeier, Marc
author_facet Hauenschild, Arne
Ringrose, Leonie
Altmutter, Christina
Paro, Renato
Rehmsmeier, Marc
author_sort Hauenschild, Arne
collection PubMed
description cis-Regulatory DNA elements contain multiple binding sites for activators and repressors of transcription. Among these elements are enhancers, which establish gene expression states, and Polycomb/Trithorax response elements (PREs), which take over from enhancers and maintain transcription states of several hundred developmentally important genes. PREs are essential to the correct identities of both stem cells and differentiated cells. Evolutionary differences in cis-regulatory elements are a rich source of phenotypic diversity, and functional binding sites within regulatory elements turn over rapidly in evolution. However, more radical evolutionary changes that go beyond motif turnover have been difficult to assess. We used a combination of genome-wide bioinformatic prediction and experimental validation at specific loci, to evaluate PRE evolution across four Drosophila species. Our results show that PRE evolution is extraordinarily dynamic. First, we show that the numbers of PREs differ dramatically between species. Second, we demonstrate that functional binding sites within PREs at conserved positions turn over rapidly in evolution, as has been observed for enhancer elements. Finally, although it is theoretically possible that new elements can arise out of nonfunctional sequence, evidence that they do so is lacking. We show here that functional PREs are found at nonorthologous sites in conserved gene loci. By demonstrating that PRE evolution is not limited to the adaptation of preexisting elements, these findings document a novel dimension of cis-regulatory evolution.
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spelling pubmed-25739352008-10-28 Evolutionary Plasticity of Polycomb/Trithorax Response Elements in Drosophila Species Hauenschild, Arne Ringrose, Leonie Altmutter, Christina Paro, Renato Rehmsmeier, Marc PLoS Biol Research Article cis-Regulatory DNA elements contain multiple binding sites for activators and repressors of transcription. Among these elements are enhancers, which establish gene expression states, and Polycomb/Trithorax response elements (PREs), which take over from enhancers and maintain transcription states of several hundred developmentally important genes. PREs are essential to the correct identities of both stem cells and differentiated cells. Evolutionary differences in cis-regulatory elements are a rich source of phenotypic diversity, and functional binding sites within regulatory elements turn over rapidly in evolution. However, more radical evolutionary changes that go beyond motif turnover have been difficult to assess. We used a combination of genome-wide bioinformatic prediction and experimental validation at specific loci, to evaluate PRE evolution across four Drosophila species. Our results show that PRE evolution is extraordinarily dynamic. First, we show that the numbers of PREs differ dramatically between species. Second, we demonstrate that functional binding sites within PREs at conserved positions turn over rapidly in evolution, as has been observed for enhancer elements. Finally, although it is theoretically possible that new elements can arise out of nonfunctional sequence, evidence that they do so is lacking. We show here that functional PREs are found at nonorthologous sites in conserved gene loci. By demonstrating that PRE evolution is not limited to the adaptation of preexisting elements, these findings document a novel dimension of cis-regulatory evolution. Public Library of Science 2008-10 2008-10-28 /pmc/articles/PMC2573935/ /pubmed/18959483 http://dx.doi.org/10.1371/journal.pbio.0060261 Text en
spellingShingle Research Article
Hauenschild, Arne
Ringrose, Leonie
Altmutter, Christina
Paro, Renato
Rehmsmeier, Marc
Evolutionary Plasticity of Polycomb/Trithorax Response Elements in Drosophila Species
title Evolutionary Plasticity of Polycomb/Trithorax Response Elements in Drosophila Species
title_full Evolutionary Plasticity of Polycomb/Trithorax Response Elements in Drosophila Species
title_fullStr Evolutionary Plasticity of Polycomb/Trithorax Response Elements in Drosophila Species
title_full_unstemmed Evolutionary Plasticity of Polycomb/Trithorax Response Elements in Drosophila Species
title_short Evolutionary Plasticity of Polycomb/Trithorax Response Elements in Drosophila Species
title_sort evolutionary plasticity of polycomb/trithorax response elements in drosophila species
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2573935/
https://www.ncbi.nlm.nih.gov/pubmed/18959483
http://dx.doi.org/10.1371/journal.pbio.0060261
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