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Genome-Wide Organization of GATA1 and TAL1 Determined at High Resolution

Erythroid development and differentiation from multiprogenitor cells into red blood cells requires precise transcriptional regulation. Key erythroid transcription factors, GATA1 and TAL1, cooperate, along with other proteins, to regulate many aspects of this process. How GATA1 and TAL1 are juxtapose...

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Autores principales: Han, G. Celine, Vinayachandran, Vinesh, Bataille, Alain R., Park, Bongsoo, Chan-Salis, Ka Yim, Keller, Cheryl A., Long, Maria, Mahony, Shaun, Hardison, Ross C., Pugh, B. Franklin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Microbiology 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4702602/
https://www.ncbi.nlm.nih.gov/pubmed/26503782
http://dx.doi.org/10.1128/MCB.00806-15
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author Han, G. Celine
Vinayachandran, Vinesh
Bataille, Alain R.
Park, Bongsoo
Chan-Salis, Ka Yim
Keller, Cheryl A.
Long, Maria
Mahony, Shaun
Hardison, Ross C.
Pugh, B. Franklin
author_facet Han, G. Celine
Vinayachandran, Vinesh
Bataille, Alain R.
Park, Bongsoo
Chan-Salis, Ka Yim
Keller, Cheryl A.
Long, Maria
Mahony, Shaun
Hardison, Ross C.
Pugh, B. Franklin
author_sort Han, G. Celine
collection PubMed
description Erythroid development and differentiation from multiprogenitor cells into red blood cells requires precise transcriptional regulation. Key erythroid transcription factors, GATA1 and TAL1, cooperate, along with other proteins, to regulate many aspects of this process. How GATA1 and TAL1 are juxtaposed along the DNA and their cognate DNA binding site across the mouse genome remains unclear. We applied high-resolution ChIP-exo (chromatin immunoprecipitation followed by 5′-to-3′ exonuclease treatment and then massively parallel DNA sequencing) to GATA1 and TAL1 to study their positional organization across the mouse genome during GATA1-dependent maturation. Two complementary methods, MultiGPS and peak pairing, were used to determine high-confidence binding locations by ChIP-exo. We identified ∼10,000 GATA1 and ∼15,000 TAL1 locations, which were essentially confirmed by ChIP-seq (chromatin immunoprecipitation followed by massively parallel DNA sequencing). Of these, ∼4,000 locations were bound by both GATA1 and TAL1. About three-quarters of them were tightly linked to a partial E-box located 7 or 8 bp upstream of a WGATAA motif. Both TAL1 and GATA1 generated distinct characteristic ChIP-exo peaks around WGATAA motifs that reflect their positional arrangement within a complex. We show that TAL1 and GATA1 form a precisely organized complex at a compound motif consisting of a TG 7 or 8 bp upstream of a WGATAA motif across thousands of genomic locations.
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spelling pubmed-47026022016-01-15 Genome-Wide Organization of GATA1 and TAL1 Determined at High Resolution Han, G. Celine Vinayachandran, Vinesh Bataille, Alain R. Park, Bongsoo Chan-Salis, Ka Yim Keller, Cheryl A. Long, Maria Mahony, Shaun Hardison, Ross C. Pugh, B. Franklin Mol Cell Biol Articles Erythroid development and differentiation from multiprogenitor cells into red blood cells requires precise transcriptional regulation. Key erythroid transcription factors, GATA1 and TAL1, cooperate, along with other proteins, to regulate many aspects of this process. How GATA1 and TAL1 are juxtaposed along the DNA and their cognate DNA binding site across the mouse genome remains unclear. We applied high-resolution ChIP-exo (chromatin immunoprecipitation followed by 5′-to-3′ exonuclease treatment and then massively parallel DNA sequencing) to GATA1 and TAL1 to study their positional organization across the mouse genome during GATA1-dependent maturation. Two complementary methods, MultiGPS and peak pairing, were used to determine high-confidence binding locations by ChIP-exo. We identified ∼10,000 GATA1 and ∼15,000 TAL1 locations, which were essentially confirmed by ChIP-seq (chromatin immunoprecipitation followed by massively parallel DNA sequencing). Of these, ∼4,000 locations were bound by both GATA1 and TAL1. About three-quarters of them were tightly linked to a partial E-box located 7 or 8 bp upstream of a WGATAA motif. Both TAL1 and GATA1 generated distinct characteristic ChIP-exo peaks around WGATAA motifs that reflect their positional arrangement within a complex. We show that TAL1 and GATA1 form a precisely organized complex at a compound motif consisting of a TG 7 or 8 bp upstream of a WGATAA motif across thousands of genomic locations. American Society for Microbiology 2015-12-18 /pmc/articles/PMC4702602/ /pubmed/26503782 http://dx.doi.org/10.1128/MCB.00806-15 Text en Copyright © 2015 Han et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International license (http://creativecommons.org/licenses/by/4.0/) .
spellingShingle Articles
Han, G. Celine
Vinayachandran, Vinesh
Bataille, Alain R.
Park, Bongsoo
Chan-Salis, Ka Yim
Keller, Cheryl A.
Long, Maria
Mahony, Shaun
Hardison, Ross C.
Pugh, B. Franklin
Genome-Wide Organization of GATA1 and TAL1 Determined at High Resolution
title Genome-Wide Organization of GATA1 and TAL1 Determined at High Resolution
title_full Genome-Wide Organization of GATA1 and TAL1 Determined at High Resolution
title_fullStr Genome-Wide Organization of GATA1 and TAL1 Determined at High Resolution
title_full_unstemmed Genome-Wide Organization of GATA1 and TAL1 Determined at High Resolution
title_short Genome-Wide Organization of GATA1 and TAL1 Determined at High Resolution
title_sort genome-wide organization of gata1 and tal1 determined at high resolution
topic Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4702602/
https://www.ncbi.nlm.nih.gov/pubmed/26503782
http://dx.doi.org/10.1128/MCB.00806-15
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