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A Ctf4 trimer couples the CMG helicase to DNA polymerase α in the eukaryotic replisome

Efficient duplication of the genome requires the concerted action of helicase and DNA polymerases at replication forks(1), to avoid stalling of the replication machinery and consequent genomic instability(2-4). In eukaryotes, the physical coupling between helicase and DNA polymerases remains poorly...

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Autores principales: Simon, Aline C., Zhou, Jin C., Perera, Rajika L., van Deursen, Frederick, Evrin, Cecile, Ivanova, Marina E., Kilkenny, Mairi L., Renault, Ludovic, Kjaer, Svend, Matak-Vinković, Dijana, Labib, Karim, Costa, Alessandro, Pellegrini, Luca
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4059944/
https://www.ncbi.nlm.nih.gov/pubmed/24805245
http://dx.doi.org/10.1038/nature13234
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author Simon, Aline C.
Zhou, Jin C.
Perera, Rajika L.
van Deursen, Frederick
Evrin, Cecile
Ivanova, Marina E.
Kilkenny, Mairi L.
Renault, Ludovic
Kjaer, Svend
Matak-Vinković, Dijana
Labib, Karim
Costa, Alessandro
Pellegrini, Luca
author_facet Simon, Aline C.
Zhou, Jin C.
Perera, Rajika L.
van Deursen, Frederick
Evrin, Cecile
Ivanova, Marina E.
Kilkenny, Mairi L.
Renault, Ludovic
Kjaer, Svend
Matak-Vinković, Dijana
Labib, Karim
Costa, Alessandro
Pellegrini, Luca
author_sort Simon, Aline C.
collection PubMed
description Efficient duplication of the genome requires the concerted action of helicase and DNA polymerases at replication forks(1), to avoid stalling of the replication machinery and consequent genomic instability(2-4). In eukaryotes, the physical coupling between helicase and DNA polymerases remains poorly understood. Here we define the molecular mechanism by which the yeast Ctf4 protein links the Cdc45-MCM-GINS (CMG) DNA helicase to DNA polymerase α (Pol α) within the replisome. We use X-ray crystallography and electron microscopy to show that Ctf4 self-associates in a constitutive disk-shaped trimer. Trimerization depends on a β-propeller domain in the carboxy-terminal half of the protein, which is fused to a helical extension that protrudes from one face of the trimeric disk. Critically, Pol α and the CMG helicase share a common mechanism of interaction with Ctf4. We show that the N-terminal tails of the catalytic subunit of Pol α and the Sld5 subunit of GINS contain a conserved Ctf4-binding motif that docks onto the exposed helical extension of a Ctf4 protomer within the trimer. Accordingly, we demonstrate that one Ctf4 trimer can support binding of up to three partner proteins, including the simultaneous association with both Pol α and GINS. Our findings indicate that Ctf4 can couple two molecules of Pol α to one CMG helicase within the replisome, providing a new paradigm for lagging-strand synthesis in eukaryotes that resembles the emerging model for the simpler replisome of E. coli(5-8). The ability of Ctf4 to act as a platform for multivalent interactions illustrates a mechanism for the concurrent recruitment of factors that act together at the fork.
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spelling pubmed-40599442014-12-12 A Ctf4 trimer couples the CMG helicase to DNA polymerase α in the eukaryotic replisome Simon, Aline C. Zhou, Jin C. Perera, Rajika L. van Deursen, Frederick Evrin, Cecile Ivanova, Marina E. Kilkenny, Mairi L. Renault, Ludovic Kjaer, Svend Matak-Vinković, Dijana Labib, Karim Costa, Alessandro Pellegrini, Luca Nature Article Efficient duplication of the genome requires the concerted action of helicase and DNA polymerases at replication forks(1), to avoid stalling of the replication machinery and consequent genomic instability(2-4). In eukaryotes, the physical coupling between helicase and DNA polymerases remains poorly understood. Here we define the molecular mechanism by which the yeast Ctf4 protein links the Cdc45-MCM-GINS (CMG) DNA helicase to DNA polymerase α (Pol α) within the replisome. We use X-ray crystallography and electron microscopy to show that Ctf4 self-associates in a constitutive disk-shaped trimer. Trimerization depends on a β-propeller domain in the carboxy-terminal half of the protein, which is fused to a helical extension that protrudes from one face of the trimeric disk. Critically, Pol α and the CMG helicase share a common mechanism of interaction with Ctf4. We show that the N-terminal tails of the catalytic subunit of Pol α and the Sld5 subunit of GINS contain a conserved Ctf4-binding motif that docks onto the exposed helical extension of a Ctf4 protomer within the trimer. Accordingly, we demonstrate that one Ctf4 trimer can support binding of up to three partner proteins, including the simultaneous association with both Pol α and GINS. Our findings indicate that Ctf4 can couple two molecules of Pol α to one CMG helicase within the replisome, providing a new paradigm for lagging-strand synthesis in eukaryotes that resembles the emerging model for the simpler replisome of E. coli(5-8). The ability of Ctf4 to act as a platform for multivalent interactions illustrates a mechanism for the concurrent recruitment of factors that act together at the fork. 2014-05-04 2014-06-12 /pmc/articles/PMC4059944/ /pubmed/24805245 http://dx.doi.org/10.1038/nature13234 Text en Users may view, print, copy, and download text and data-mine the content in such documents, for the purposes of academic research, subject always to the full Conditions of use:http://www.nature.com/authors/editorial_policies/license.html#terms
spellingShingle Article
Simon, Aline C.
Zhou, Jin C.
Perera, Rajika L.
van Deursen, Frederick
Evrin, Cecile
Ivanova, Marina E.
Kilkenny, Mairi L.
Renault, Ludovic
Kjaer, Svend
Matak-Vinković, Dijana
Labib, Karim
Costa, Alessandro
Pellegrini, Luca
A Ctf4 trimer couples the CMG helicase to DNA polymerase α in the eukaryotic replisome
title A Ctf4 trimer couples the CMG helicase to DNA polymerase α in the eukaryotic replisome
title_full A Ctf4 trimer couples the CMG helicase to DNA polymerase α in the eukaryotic replisome
title_fullStr A Ctf4 trimer couples the CMG helicase to DNA polymerase α in the eukaryotic replisome
title_full_unstemmed A Ctf4 trimer couples the CMG helicase to DNA polymerase α in the eukaryotic replisome
title_short A Ctf4 trimer couples the CMG helicase to DNA polymerase α in the eukaryotic replisome
title_sort ctf4 trimer couples the cmg helicase to dna polymerase α in the eukaryotic replisome
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4059944/
https://www.ncbi.nlm.nih.gov/pubmed/24805245
http://dx.doi.org/10.1038/nature13234
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