Cargando…

Both Interaction Surfaces within Cohesin's Hinge Domain Are Essential for Its Stable Chromosomal Association

BACKGROUND: The cohesin complex that mediates sister chromatid cohesion contains three core subunits: Smc1, Smc3, and Scc1. Heterotypic interactions between Smc1 and Smc3 dimerization domains create stable V-shaped Smc1/Smc3 heterodimers with a hinge at the center and nucleotide-binding domains (NBD...

Descripción completa

Detalles Bibliográficos
Autores principales: Mishra, Ajay, Hu, Bin, Kurze, Alexander, Beckouët, Frédéric, Farcas, Ana-Maria, Dixon, Sarah E., Katou, Yuki, Khalid, Syma, Shirahige, Katsuhiko, Nasmyth, Kim
Formato: Texto
Lenguaje:English
Publicado: Cell Press 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2852676/
https://www.ncbi.nlm.nih.gov/pubmed/20153193
http://dx.doi.org/10.1016/j.cub.2009.12.059
_version_ 1782179961719750656
author Mishra, Ajay
Hu, Bin
Kurze, Alexander
Beckouët, Frédéric
Farcas, Ana-Maria
Dixon, Sarah E.
Katou, Yuki
Khalid, Syma
Shirahige, Katsuhiko
Nasmyth, Kim
author_facet Mishra, Ajay
Hu, Bin
Kurze, Alexander
Beckouët, Frédéric
Farcas, Ana-Maria
Dixon, Sarah E.
Katou, Yuki
Khalid, Syma
Shirahige, Katsuhiko
Nasmyth, Kim
author_sort Mishra, Ajay
collection PubMed
description BACKGROUND: The cohesin complex that mediates sister chromatid cohesion contains three core subunits: Smc1, Smc3, and Scc1. Heterotypic interactions between Smc1 and Smc3 dimerization domains create stable V-shaped Smc1/Smc3 heterodimers with a hinge at the center and nucleotide-binding domains (NBDs) at the ends of each arm. Interconnection of each NBD through their association with the N- and C-terminal domains of Scc1 creates a tripartite ring, within which sister DNAs are thought to be entrapped (the ring model). Crystal structures show that the Smc1/Smc3 hinge has a toroidal shape, with independent “north” and “south” interaction surfaces on an axis of pseudosymmetry. The ring model predicts that sister chromatid cohesion would be lost by transient hinge opening. RESULTS: We find that mutations within either interface weaken heterodimerization of isolated half hinges in vitro but do not greatly compromise formation of cohesin rings in vivo. They do, however, reduce the residence time of cohesin on chromosomes and cause lethal defects in sister chromatid cohesion. This demonstrates that mere formation of rings is insufficient for cohesin function. Stable cohesion requires cohesin rings that cannot easily open. CONCLUSIONS: Either the north or south hinge interaction surface is sufficient for the assembly of V-shaped Smc1/Smc3 heterodimers in vivo. Any tendency of Smc proteins with weakened hinges to dissociate will be suppressed by interconnection of their NBDs by Scc1. We suggest that transient hinge dissociation caused by the mutations described here is incompatible with stable sister chromatid cohesion because it permits chromatin fibers to escape from cohesin rings.
format Text
id pubmed-2852676
institution National Center for Biotechnology Information
language English
publishDate 2010
publisher Cell Press
record_format MEDLINE/PubMed
spelling pubmed-28526762010-04-23 Both Interaction Surfaces within Cohesin's Hinge Domain Are Essential for Its Stable Chromosomal Association Mishra, Ajay Hu, Bin Kurze, Alexander Beckouët, Frédéric Farcas, Ana-Maria Dixon, Sarah E. Katou, Yuki Khalid, Syma Shirahige, Katsuhiko Nasmyth, Kim Curr Biol Article BACKGROUND: The cohesin complex that mediates sister chromatid cohesion contains three core subunits: Smc1, Smc3, and Scc1. Heterotypic interactions between Smc1 and Smc3 dimerization domains create stable V-shaped Smc1/Smc3 heterodimers with a hinge at the center and nucleotide-binding domains (NBDs) at the ends of each arm. Interconnection of each NBD through their association with the N- and C-terminal domains of Scc1 creates a tripartite ring, within which sister DNAs are thought to be entrapped (the ring model). Crystal structures show that the Smc1/Smc3 hinge has a toroidal shape, with independent “north” and “south” interaction surfaces on an axis of pseudosymmetry. The ring model predicts that sister chromatid cohesion would be lost by transient hinge opening. RESULTS: We find that mutations within either interface weaken heterodimerization of isolated half hinges in vitro but do not greatly compromise formation of cohesin rings in vivo. They do, however, reduce the residence time of cohesin on chromosomes and cause lethal defects in sister chromatid cohesion. This demonstrates that mere formation of rings is insufficient for cohesin function. Stable cohesion requires cohesin rings that cannot easily open. CONCLUSIONS: Either the north or south hinge interaction surface is sufficient for the assembly of V-shaped Smc1/Smc3 heterodimers in vivo. Any tendency of Smc proteins with weakened hinges to dissociate will be suppressed by interconnection of their NBDs by Scc1. We suggest that transient hinge dissociation caused by the mutations described here is incompatible with stable sister chromatid cohesion because it permits chromatin fibers to escape from cohesin rings. Cell Press 2010-02-23 /pmc/articles/PMC2852676/ /pubmed/20153193 http://dx.doi.org/10.1016/j.cub.2009.12.059 Text en © 2010 ELL & Excerpta Medica. https://creativecommons.org/licenses/by-nc-nd/3.0/ Open Access under CC BY-NC-ND 3.0 (https://creativecommons.org/licenses/by-nc-nd/3.0/) license
spellingShingle Article
Mishra, Ajay
Hu, Bin
Kurze, Alexander
Beckouët, Frédéric
Farcas, Ana-Maria
Dixon, Sarah E.
Katou, Yuki
Khalid, Syma
Shirahige, Katsuhiko
Nasmyth, Kim
Both Interaction Surfaces within Cohesin's Hinge Domain Are Essential for Its Stable Chromosomal Association
title Both Interaction Surfaces within Cohesin's Hinge Domain Are Essential for Its Stable Chromosomal Association
title_full Both Interaction Surfaces within Cohesin's Hinge Domain Are Essential for Its Stable Chromosomal Association
title_fullStr Both Interaction Surfaces within Cohesin's Hinge Domain Are Essential for Its Stable Chromosomal Association
title_full_unstemmed Both Interaction Surfaces within Cohesin's Hinge Domain Are Essential for Its Stable Chromosomal Association
title_short Both Interaction Surfaces within Cohesin's Hinge Domain Are Essential for Its Stable Chromosomal Association
title_sort both interaction surfaces within cohesin's hinge domain are essential for its stable chromosomal association
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2852676/
https://www.ncbi.nlm.nih.gov/pubmed/20153193
http://dx.doi.org/10.1016/j.cub.2009.12.059
work_keys_str_mv AT mishraajay bothinteractionsurfaceswithincohesinshingedomainareessentialforitsstablechromosomalassociation
AT hubin bothinteractionsurfaceswithincohesinshingedomainareessentialforitsstablechromosomalassociation
AT kurzealexander bothinteractionsurfaceswithincohesinshingedomainareessentialforitsstablechromosomalassociation
AT beckouetfrederic bothinteractionsurfaceswithincohesinshingedomainareessentialforitsstablechromosomalassociation
AT farcasanamaria bothinteractionsurfaceswithincohesinshingedomainareessentialforitsstablechromosomalassociation
AT dixonsarahe bothinteractionsurfaceswithincohesinshingedomainareessentialforitsstablechromosomalassociation
AT katouyuki bothinteractionsurfaceswithincohesinshingedomainareessentialforitsstablechromosomalassociation
AT khalidsyma bothinteractionsurfaceswithincohesinshingedomainareessentialforitsstablechromosomalassociation
AT shirahigekatsuhiko bothinteractionsurfaceswithincohesinshingedomainareessentialforitsstablechromosomalassociation
AT nasmythkim bothinteractionsurfaceswithincohesinshingedomainareessentialforitsstablechromosomalassociation