Molecular basis of CTCF binding polarity in genome folding

The boundaries of topologically associating domains (TADs) arise from the ability of the CTCF protein to stop extrusion of chromatin loops by cohesin. Here the authors find that CTCF positions cohesin through its N-terminus but does not control its overall binding dynamics on chromatin, and show how...

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Autores principales: Elphège P. Nora, Laura Caccianini, Geoffrey Fudenberg, Kevin So, Vasumathi Kameswaran, Abigail Nagle, Alec Uebersohn, Bassam Hajj, Agnès Le Saux, Antoine Coulon, Leonid A. Mirny, Katherine S. Pollard, Maxime Dahan, Benoit G. Bruneau
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Publicado: Nature Portfolio 2020
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Acceso en línea:https://doaj.org/article/f6dc9bfc9ad642cb9b1ef1ce345d967f
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spelling oai:doaj.org-article:f6dc9bfc9ad642cb9b1ef1ce345d967f2021-12-02T15:39:20ZMolecular basis of CTCF binding polarity in genome folding10.1038/s41467-020-19283-x2041-1723https://doaj.org/article/f6dc9bfc9ad642cb9b1ef1ce345d967f2020-11-01T00:00:00Zhttps://doi.org/10.1038/s41467-020-19283-xhttps://doaj.org/toc/2041-1723The boundaries of topologically associating domains (TADs) arise from the ability of the CTCF protein to stop extrusion of chromatin loops by cohesin. Here the authors find that CTCF positions cohesin through its N-terminus but does not control its overall binding dynamics on chromatin, and show how the orientation of CTCF binding sites translates into genome folding patterns.Elphège P. NoraLaura CaccianiniGeoffrey FudenbergKevin SoVasumathi KameswaranAbigail NagleAlec UebersohnBassam HajjAgnès Le SauxAntoine CoulonLeonid A. MirnyKatherine S. PollardMaxime DahanBenoit G. BruneauNature PortfolioarticleScienceQENNature Communications, Vol 11, Iss 1, Pp 1-13 (2020)
institution DOAJ
collection DOAJ
language EN
topic Science
Q
spellingShingle Science
Q
Elphège P. Nora
Laura Caccianini
Geoffrey Fudenberg
Kevin So
Vasumathi Kameswaran
Abigail Nagle
Alec Uebersohn
Bassam Hajj
Agnès Le Saux
Antoine Coulon
Leonid A. Mirny
Katherine S. Pollard
Maxime Dahan
Benoit G. Bruneau
Molecular basis of CTCF binding polarity in genome folding
description The boundaries of topologically associating domains (TADs) arise from the ability of the CTCF protein to stop extrusion of chromatin loops by cohesin. Here the authors find that CTCF positions cohesin through its N-terminus but does not control its overall binding dynamics on chromatin, and show how the orientation of CTCF binding sites translates into genome folding patterns.
format article
author Elphège P. Nora
Laura Caccianini
Geoffrey Fudenberg
Kevin So
Vasumathi Kameswaran
Abigail Nagle
Alec Uebersohn
Bassam Hajj
Agnès Le Saux
Antoine Coulon
Leonid A. Mirny
Katherine S. Pollard
Maxime Dahan
Benoit G. Bruneau
author_facet Elphège P. Nora
Laura Caccianini
Geoffrey Fudenberg
Kevin So
Vasumathi Kameswaran
Abigail Nagle
Alec Uebersohn
Bassam Hajj
Agnès Le Saux
Antoine Coulon
Leonid A. Mirny
Katherine S. Pollard
Maxime Dahan
Benoit G. Bruneau
author_sort Elphège P. Nora
title Molecular basis of CTCF binding polarity in genome folding
title_short Molecular basis of CTCF binding polarity in genome folding
title_full Molecular basis of CTCF binding polarity in genome folding
title_fullStr Molecular basis of CTCF binding polarity in genome folding
title_full_unstemmed Molecular basis of CTCF binding polarity in genome folding
title_sort molecular basis of ctcf binding polarity in genome folding
publisher Nature Portfolio
publishDate 2020
url https://doaj.org/article/f6dc9bfc9ad642cb9b1ef1ce345d967f
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