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Defects in the GINS complex increase the instability of repetitive sequences via a recombination-dependent mechanism

Faithful replication and repair of DNA lesions ensure genome maintenance. During replication in eukaryotic cells, DNA is unwound by the CMG helicase complex, which is composed of three major components: the Cdc45 protein, Mcm2-7, and the GINS complex. The CMG in complex with DNA polymerase epsilon (...

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Autores principales: Jedrychowska, Malgorzata, Denkiewicz-Kruk, Milena, Alabrudzinska, Malgorzata, Skoneczna, Adrianna, Jonczyk, Piotr, Dmowski, Michal, Fijalkowska, Iwona J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6922473/
https://www.ncbi.nlm.nih.gov/pubmed/31815930
http://dx.doi.org/10.1371/journal.pgen.1008494
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author Jedrychowska, Malgorzata
Denkiewicz-Kruk, Milena
Alabrudzinska, Malgorzata
Skoneczna, Adrianna
Jonczyk, Piotr
Dmowski, Michal
Fijalkowska, Iwona J.
author_facet Jedrychowska, Malgorzata
Denkiewicz-Kruk, Milena
Alabrudzinska, Malgorzata
Skoneczna, Adrianna
Jonczyk, Piotr
Dmowski, Michal
Fijalkowska, Iwona J.
author_sort Jedrychowska, Malgorzata
collection PubMed
description Faithful replication and repair of DNA lesions ensure genome maintenance. During replication in eukaryotic cells, DNA is unwound by the CMG helicase complex, which is composed of three major components: the Cdc45 protein, Mcm2-7, and the GINS complex. The CMG in complex with DNA polymerase epsilon (CMG-E) participates in the establishment and progression of the replisome. Impaired functioning of the CMG-E was shown to induce genomic instability and promote the development of various diseases. Therefore, CMG-E components play important roles as caretakers of the genome. In Saccharomyces cerevisiae, the GINS complex is composed of the Psf1, Psf2, Psf3, and Sld5 essential subunits. The Psf1-1 mutant form fails to interact with Psf3, resulting in impaired replisome assembly and chromosome replication. Here, we show increased instability of repeat tracts (mononucleotide, dinucleotide, trinucleotide and longer) in yeast psf1-1 mutants. To identify the mechanisms underlying this effect, we analyzed repeated sequence instability using derivatives of psf1-1 strains lacking genes involved in translesion synthesis, recombination, or mismatch repair. Among these derivatives, deletion of RAD52, RAD51, MMS2, POL32, or PIF1 significantly decreased DNA repeat instability. These results, together with the observed increased amounts of single-stranded DNA regions and Rfa1 foci suggest that recombinational mechanisms make important contributions to repeat tract instability in psf1-1 cells. We propose that defective functioning of the CMG-E complex in psf1-1 cells impairs the progression of DNA replication what increases the contribution of repair mechanisms such as template switch and break-induced replication. These processes require sequence homology search which in case of a repeated DNA tract may result in misalignment leading to its expansion or contraction.
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spelling pubmed-69224732020-01-07 Defects in the GINS complex increase the instability of repetitive sequences via a recombination-dependent mechanism Jedrychowska, Malgorzata Denkiewicz-Kruk, Milena Alabrudzinska, Malgorzata Skoneczna, Adrianna Jonczyk, Piotr Dmowski, Michal Fijalkowska, Iwona J. PLoS Genet Research Article Faithful replication and repair of DNA lesions ensure genome maintenance. During replication in eukaryotic cells, DNA is unwound by the CMG helicase complex, which is composed of three major components: the Cdc45 protein, Mcm2-7, and the GINS complex. The CMG in complex with DNA polymerase epsilon (CMG-E) participates in the establishment and progression of the replisome. Impaired functioning of the CMG-E was shown to induce genomic instability and promote the development of various diseases. Therefore, CMG-E components play important roles as caretakers of the genome. In Saccharomyces cerevisiae, the GINS complex is composed of the Psf1, Psf2, Psf3, and Sld5 essential subunits. The Psf1-1 mutant form fails to interact with Psf3, resulting in impaired replisome assembly and chromosome replication. Here, we show increased instability of repeat tracts (mononucleotide, dinucleotide, trinucleotide and longer) in yeast psf1-1 mutants. To identify the mechanisms underlying this effect, we analyzed repeated sequence instability using derivatives of psf1-1 strains lacking genes involved in translesion synthesis, recombination, or mismatch repair. Among these derivatives, deletion of RAD52, RAD51, MMS2, POL32, or PIF1 significantly decreased DNA repeat instability. These results, together with the observed increased amounts of single-stranded DNA regions and Rfa1 foci suggest that recombinational mechanisms make important contributions to repeat tract instability in psf1-1 cells. We propose that defective functioning of the CMG-E complex in psf1-1 cells impairs the progression of DNA replication what increases the contribution of repair mechanisms such as template switch and break-induced replication. These processes require sequence homology search which in case of a repeated DNA tract may result in misalignment leading to its expansion or contraction. Public Library of Science 2019-12-09 /pmc/articles/PMC6922473/ /pubmed/31815930 http://dx.doi.org/10.1371/journal.pgen.1008494 Text en © 2019 Jedrychowska et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Jedrychowska, Malgorzata
Denkiewicz-Kruk, Milena
Alabrudzinska, Malgorzata
Skoneczna, Adrianna
Jonczyk, Piotr
Dmowski, Michal
Fijalkowska, Iwona J.
Defects in the GINS complex increase the instability of repetitive sequences via a recombination-dependent mechanism
title Defects in the GINS complex increase the instability of repetitive sequences via a recombination-dependent mechanism
title_full Defects in the GINS complex increase the instability of repetitive sequences via a recombination-dependent mechanism
title_fullStr Defects in the GINS complex increase the instability of repetitive sequences via a recombination-dependent mechanism
title_full_unstemmed Defects in the GINS complex increase the instability of repetitive sequences via a recombination-dependent mechanism
title_short Defects in the GINS complex increase the instability of repetitive sequences via a recombination-dependent mechanism
title_sort defects in the gins complex increase the instability of repetitive sequences via a recombination-dependent mechanism
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6922473/
https://www.ncbi.nlm.nih.gov/pubmed/31815930
http://dx.doi.org/10.1371/journal.pgen.1008494
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