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Cohesin’s DNA Exit Gate Is Distinct from Its Entrance Gate and Is Regulated by Acetylation

Sister chromatid cohesion is mediated by entrapment of sister DNAs by a tripartite ring composed of cohesin’s Smc1, Smc3, and α-kleisin subunits. Cohesion requires acetylation of Smc3 by Eco1, whose role is to counteract an inhibitory (antiestablishment) activity associated with cohesin’s Wapl subun...

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Autores principales: Chan, Kok-Lung, Roig, Maurici B., Hu, Bin, Beckouët, Frédéric, Metson, Jean, Nasmyth, Kim
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cell Press 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3485559/
https://www.ncbi.nlm.nih.gov/pubmed/22901742
http://dx.doi.org/10.1016/j.cell.2012.07.028
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author Chan, Kok-Lung
Roig, Maurici B.
Hu, Bin
Beckouët, Frédéric
Metson, Jean
Nasmyth, Kim
author_facet Chan, Kok-Lung
Roig, Maurici B.
Hu, Bin
Beckouët, Frédéric
Metson, Jean
Nasmyth, Kim
author_sort Chan, Kok-Lung
collection PubMed
description Sister chromatid cohesion is mediated by entrapment of sister DNAs by a tripartite ring composed of cohesin’s Smc1, Smc3, and α-kleisin subunits. Cohesion requires acetylation of Smc3 by Eco1, whose role is to counteract an inhibitory (antiestablishment) activity associated with cohesin’s Wapl subunit. We show that mutations abrogating antiestablishment activity also reduce turnover of cohesin on pericentric chromatin. Our results reveal a “releasing” activity inherent to cohesin complexes transiently associated with Wapl that catalyzes their dissociation from chromosomes. Fusion of Smc3’s nucleotide binding domain to α-kleisin’s N-terminal domain also reduces cohesin turnover within pericentric chromatin and permits establishment of Wapl-resistant cohesion in the absence of Eco1. We suggest that releasing activity opens the Smc3/α-kleisin interface, creating a DNA exit gate distinct from its proposed entry gate at the Smc1/3 interface. According to this notion, the function of Smc3 acetylation is to block its dissociation from α-kleisin. The functional implications of regulated ring opening are discussed.
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spelling pubmed-34855592012-12-04 Cohesin’s DNA Exit Gate Is Distinct from Its Entrance Gate and Is Regulated by Acetylation Chan, Kok-Lung Roig, Maurici B. Hu, Bin Beckouët, Frédéric Metson, Jean Nasmyth, Kim Cell Article Sister chromatid cohesion is mediated by entrapment of sister DNAs by a tripartite ring composed of cohesin’s Smc1, Smc3, and α-kleisin subunits. Cohesion requires acetylation of Smc3 by Eco1, whose role is to counteract an inhibitory (antiestablishment) activity associated with cohesin’s Wapl subunit. We show that mutations abrogating antiestablishment activity also reduce turnover of cohesin on pericentric chromatin. Our results reveal a “releasing” activity inherent to cohesin complexes transiently associated with Wapl that catalyzes their dissociation from chromosomes. Fusion of Smc3’s nucleotide binding domain to α-kleisin’s N-terminal domain also reduces cohesin turnover within pericentric chromatin and permits establishment of Wapl-resistant cohesion in the absence of Eco1. We suggest that releasing activity opens the Smc3/α-kleisin interface, creating a DNA exit gate distinct from its proposed entry gate at the Smc1/3 interface. According to this notion, the function of Smc3 acetylation is to block its dissociation from α-kleisin. The functional implications of regulated ring opening are discussed. Cell Press 2012-08-31 /pmc/articles/PMC3485559/ /pubmed/22901742 http://dx.doi.org/10.1016/j.cell.2012.07.028 Text en © 2012 ELL & Excerpta Medica. https://creativecommons.org/licenses/by/3.0/ Open Access under CC BY 3.0 (https://creativecommons.org/licenses/by/3.0/) license
spellingShingle Article
Chan, Kok-Lung
Roig, Maurici B.
Hu, Bin
Beckouët, Frédéric
Metson, Jean
Nasmyth, Kim
Cohesin’s DNA Exit Gate Is Distinct from Its Entrance Gate and Is Regulated by Acetylation
title Cohesin’s DNA Exit Gate Is Distinct from Its Entrance Gate and Is Regulated by Acetylation
title_full Cohesin’s DNA Exit Gate Is Distinct from Its Entrance Gate and Is Regulated by Acetylation
title_fullStr Cohesin’s DNA Exit Gate Is Distinct from Its Entrance Gate and Is Regulated by Acetylation
title_full_unstemmed Cohesin’s DNA Exit Gate Is Distinct from Its Entrance Gate and Is Regulated by Acetylation
title_short Cohesin’s DNA Exit Gate Is Distinct from Its Entrance Gate and Is Regulated by Acetylation
title_sort cohesin’s dna exit gate is distinct from its entrance gate and is regulated by acetylation
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3485559/
https://www.ncbi.nlm.nih.gov/pubmed/22901742
http://dx.doi.org/10.1016/j.cell.2012.07.028
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