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What AlphaFold tells us about cohesin’s retention on and release from chromosomes

Cohesin is a trimeric complex containing a pair of SMC proteins (Smc1 and Smc3) whose ATPase domains at the end of long coiled coils (CC) are interconnected by Scc1. During interphase, it organizes chromosomal DNA topology by extruding loops in a manner dependent on Scc1’s association with two large...

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Autores principales: Nasmyth, Kim A, Lee, Byung-Gil, Roig, Maurici Brunet, Löwe, Jan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: eLife Sciences Publications, Ltd 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10656103/
https://www.ncbi.nlm.nih.gov/pubmed/37975572
http://dx.doi.org/10.7554/eLife.88656
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author Nasmyth, Kim A
Lee, Byung-Gil
Roig, Maurici Brunet
Löwe, Jan
author_facet Nasmyth, Kim A
Lee, Byung-Gil
Roig, Maurici Brunet
Löwe, Jan
author_sort Nasmyth, Kim A
collection PubMed
description Cohesin is a trimeric complex containing a pair of SMC proteins (Smc1 and Smc3) whose ATPase domains at the end of long coiled coils (CC) are interconnected by Scc1. During interphase, it organizes chromosomal DNA topology by extruding loops in a manner dependent on Scc1’s association with two large hook-shaped proteins called SA (yeast: Scc3) and Nipbl (Scc2). The latter’s replacement by Pds5 recruits Wapl, which induces release from chromatin via a process requiring dissociation of Scc1’s N-terminal domain (NTD) from Smc3. If blocked by Esco (Eco)-mediated Smc3 acetylation, cohesin containing Pds5 merely maintains pre-existing loops, but a third fate occurs during DNA replication, when Pds5-containing cohesin associates with Sororin and forms structures that hold sister DNAs together. How Wapl induces and Sororin blocks release has hitherto remained mysterious. In the 20 years since their discovery, not a single testable hypothesis has been proposed as to their role. Here, AlphaFold 2 (AF) three-dimensional protein structure predictions lead us to propose formation of a quarternary complex between Wapl, SA, Pds5, and Scc1’s NTD, in which the latter is juxtaposed with (and subsequently sequestered by) a highly conserved cleft within Wapl’s C-terminal domain. AF also reveals how Scc1’s dissociation from Smc3 arises from a distortion of Smc3’s CC induced by engagement of SMC ATPase domains, how Esco acetyl transferases are recruited to Smc3 by Pds5, and how Sororin prevents release by binding to the Smc3/Scc1 interface. Our hypotheses explain the phenotypes of numerous existing mutations and are highly testable.
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spelling pubmed-106561032023-11-17 What AlphaFold tells us about cohesin’s retention on and release from chromosomes Nasmyth, Kim A Lee, Byung-Gil Roig, Maurici Brunet Löwe, Jan eLife Chromosomes and Gene Expression Cohesin is a trimeric complex containing a pair of SMC proteins (Smc1 and Smc3) whose ATPase domains at the end of long coiled coils (CC) are interconnected by Scc1. During interphase, it organizes chromosomal DNA topology by extruding loops in a manner dependent on Scc1’s association with two large hook-shaped proteins called SA (yeast: Scc3) and Nipbl (Scc2). The latter’s replacement by Pds5 recruits Wapl, which induces release from chromatin via a process requiring dissociation of Scc1’s N-terminal domain (NTD) from Smc3. If blocked by Esco (Eco)-mediated Smc3 acetylation, cohesin containing Pds5 merely maintains pre-existing loops, but a third fate occurs during DNA replication, when Pds5-containing cohesin associates with Sororin and forms structures that hold sister DNAs together. How Wapl induces and Sororin blocks release has hitherto remained mysterious. In the 20 years since their discovery, not a single testable hypothesis has been proposed as to their role. Here, AlphaFold 2 (AF) three-dimensional protein structure predictions lead us to propose formation of a quarternary complex between Wapl, SA, Pds5, and Scc1’s NTD, in which the latter is juxtaposed with (and subsequently sequestered by) a highly conserved cleft within Wapl’s C-terminal domain. AF also reveals how Scc1’s dissociation from Smc3 arises from a distortion of Smc3’s CC induced by engagement of SMC ATPase domains, how Esco acetyl transferases are recruited to Smc3 by Pds5, and how Sororin prevents release by binding to the Smc3/Scc1 interface. Our hypotheses explain the phenotypes of numerous existing mutations and are highly testable. eLife Sciences Publications, Ltd 2023-11-17 /pmc/articles/PMC10656103/ /pubmed/37975572 http://dx.doi.org/10.7554/eLife.88656 Text en © 2023, Nasmyth et al https://creativecommons.org/licenses/by/4.0/This article is distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use and redistribution provided that the original author and source are credited.
spellingShingle Chromosomes and Gene Expression
Nasmyth, Kim A
Lee, Byung-Gil
Roig, Maurici Brunet
Löwe, Jan
What AlphaFold tells us about cohesin’s retention on and release from chromosomes
title What AlphaFold tells us about cohesin’s retention on and release from chromosomes
title_full What AlphaFold tells us about cohesin’s retention on and release from chromosomes
title_fullStr What AlphaFold tells us about cohesin’s retention on and release from chromosomes
title_full_unstemmed What AlphaFold tells us about cohesin’s retention on and release from chromosomes
title_short What AlphaFold tells us about cohesin’s retention on and release from chromosomes
title_sort what alphafold tells us about cohesin’s retention on and release from chromosomes
topic Chromosomes and Gene Expression
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10656103/
https://www.ncbi.nlm.nih.gov/pubmed/37975572
http://dx.doi.org/10.7554/eLife.88656
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