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High-throughput sequencing identifies STAT3 as the DNA-associated factor for p53-NF-κB-complex-dependent gene expression in human heart failure

BACKGROUND: Genome-wide maps of DNA regulatory elements and their interaction with transcription factors may form a framework for understanding regulatory circuits and gene expression control in human disease, but how these networks, comprising transcription factors and DNA-binding proteins, form co...

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Autores principales: Choy, Mun-Kit, Movassagh, Mehregan, Siggens, Lee, Vujic, Ana, Goddard, Martin, Sánchez, Ana, Perkins, Neil, Figg, Nichola, Bennett, Martin, Carroll, Jason, Foo, Roger
Formato: Texto
Lenguaje:English
Publicado: BioMed Central 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2905097/
https://www.ncbi.nlm.nih.gov/pubmed/20546595
http://dx.doi.org/10.1186/gm158
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author Choy, Mun-Kit
Movassagh, Mehregan
Siggens, Lee
Vujic, Ana
Goddard, Martin
Sánchez, Ana
Perkins, Neil
Figg, Nichola
Bennett, Martin
Carroll, Jason
Foo, Roger
author_facet Choy, Mun-Kit
Movassagh, Mehregan
Siggens, Lee
Vujic, Ana
Goddard, Martin
Sánchez, Ana
Perkins, Neil
Figg, Nichola
Bennett, Martin
Carroll, Jason
Foo, Roger
author_sort Choy, Mun-Kit
collection PubMed
description BACKGROUND: Genome-wide maps of DNA regulatory elements and their interaction with transcription factors may form a framework for understanding regulatory circuits and gene expression control in human disease, but how these networks, comprising transcription factors and DNA-binding proteins, form complexes, interact with DNA and modulate gene expression remains largely unknown. METHODS: Using microRNA-21 (mir-21), which is an example of genes that are regulated in heart failure, we performed chromatin immunoprecipitation (ChIP) assays to determine the occupancy of transcription factors at this genetic locus. Tissue ChIP was further performed using human hearts and genome-wide occupancies of these transcription factors were analyzed by high-throughput sequencing. RESULTS: We show that the transcription factor p53 piggy-backs onto NF-κB/RELA and utilizes the κB-motif at a cis-regulatory region to control mir-21 expression. p53 behaves as a co-factor in this complex because despite a mutation in its DNA binding domain, mutant p53 was still capable of binding RELA and the cis-element, and inducing mir-21 expression. In dilated human hearts where mir-21 upregulation was previously demonstrated, the p53-RELA complex was also associated with this cis-element. Using high-throughput sequencing, we analyzed genome-wide binding sites for the p53-RELA complex in diseased and control human hearts and found a significant overrepresentation of the STAT3 motif. We further determined that STAT3 was necessary for the p53-RELA complex to associate with this cis-element and for mir-21 expression. CONCLUSIONS: Our results uncover a mechanism by which transcription factors cooperate in a multi-molecular complex at a cis-regulatory element to control gene expression.
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spelling pubmed-29050972010-07-17 High-throughput sequencing identifies STAT3 as the DNA-associated factor for p53-NF-κB-complex-dependent gene expression in human heart failure Choy, Mun-Kit Movassagh, Mehregan Siggens, Lee Vujic, Ana Goddard, Martin Sánchez, Ana Perkins, Neil Figg, Nichola Bennett, Martin Carroll, Jason Foo, Roger Genome Med Research BACKGROUND: Genome-wide maps of DNA regulatory elements and their interaction with transcription factors may form a framework for understanding regulatory circuits and gene expression control in human disease, but how these networks, comprising transcription factors and DNA-binding proteins, form complexes, interact with DNA and modulate gene expression remains largely unknown. METHODS: Using microRNA-21 (mir-21), which is an example of genes that are regulated in heart failure, we performed chromatin immunoprecipitation (ChIP) assays to determine the occupancy of transcription factors at this genetic locus. Tissue ChIP was further performed using human hearts and genome-wide occupancies of these transcription factors were analyzed by high-throughput sequencing. RESULTS: We show that the transcription factor p53 piggy-backs onto NF-κB/RELA and utilizes the κB-motif at a cis-regulatory region to control mir-21 expression. p53 behaves as a co-factor in this complex because despite a mutation in its DNA binding domain, mutant p53 was still capable of binding RELA and the cis-element, and inducing mir-21 expression. In dilated human hearts where mir-21 upregulation was previously demonstrated, the p53-RELA complex was also associated with this cis-element. Using high-throughput sequencing, we analyzed genome-wide binding sites for the p53-RELA complex in diseased and control human hearts and found a significant overrepresentation of the STAT3 motif. We further determined that STAT3 was necessary for the p53-RELA complex to associate with this cis-element and for mir-21 expression. CONCLUSIONS: Our results uncover a mechanism by which transcription factors cooperate in a multi-molecular complex at a cis-regulatory element to control gene expression. BioMed Central 2010-06-14 /pmc/articles/PMC2905097/ /pubmed/20546595 http://dx.doi.org/10.1186/gm158 Text en Copyright ©2010 Choy et al.; licensee BioMed Central Ltd. http://creativecommons.org/licenses/by/2.0 This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/2.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research
Choy, Mun-Kit
Movassagh, Mehregan
Siggens, Lee
Vujic, Ana
Goddard, Martin
Sánchez, Ana
Perkins, Neil
Figg, Nichola
Bennett, Martin
Carroll, Jason
Foo, Roger
High-throughput sequencing identifies STAT3 as the DNA-associated factor for p53-NF-κB-complex-dependent gene expression in human heart failure
title High-throughput sequencing identifies STAT3 as the DNA-associated factor for p53-NF-κB-complex-dependent gene expression in human heart failure
title_full High-throughput sequencing identifies STAT3 as the DNA-associated factor for p53-NF-κB-complex-dependent gene expression in human heart failure
title_fullStr High-throughput sequencing identifies STAT3 as the DNA-associated factor for p53-NF-κB-complex-dependent gene expression in human heart failure
title_full_unstemmed High-throughput sequencing identifies STAT3 as the DNA-associated factor for p53-NF-κB-complex-dependent gene expression in human heart failure
title_short High-throughput sequencing identifies STAT3 as the DNA-associated factor for p53-NF-κB-complex-dependent gene expression in human heart failure
title_sort high-throughput sequencing identifies stat3 as the dna-associated factor for p53-nf-κb-complex-dependent gene expression in human heart failure
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2905097/
https://www.ncbi.nlm.nih.gov/pubmed/20546595
http://dx.doi.org/10.1186/gm158
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