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The XPF-ERCC1 Complex Is Essential for Genome Stability and Is Involved in the Mechanism of Gene Targeting in Physcomitrella patens

The XPF-ERCC1 complex, a highly conserved structure-specific endonuclease, functions in multiple DNA repair pathways that are pivotal for maintaining genome stability, including nucleotide excision repair, interstrand crosslink repair, and homologous recombination. XPF-ERCC1 incises double-stranded...

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Autores principales: Guyon-Debast, Anouchka, Rossetti, Patricia, Charlot, Florence, Epert, Aline, Neuhaus, Jean-Marc, Schaefer, Didier G., Nogué, Fabien
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6521618/
https://www.ncbi.nlm.nih.gov/pubmed/31143199
http://dx.doi.org/10.3389/fpls.2019.00588
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author Guyon-Debast, Anouchka
Rossetti, Patricia
Charlot, Florence
Epert, Aline
Neuhaus, Jean-Marc
Schaefer, Didier G.
Nogué, Fabien
author_facet Guyon-Debast, Anouchka
Rossetti, Patricia
Charlot, Florence
Epert, Aline
Neuhaus, Jean-Marc
Schaefer, Didier G.
Nogué, Fabien
author_sort Guyon-Debast, Anouchka
collection PubMed
description The XPF-ERCC1 complex, a highly conserved structure-specific endonuclease, functions in multiple DNA repair pathways that are pivotal for maintaining genome stability, including nucleotide excision repair, interstrand crosslink repair, and homologous recombination. XPF-ERCC1 incises double-stranded DNA at double-strand/single-strand junctions, making it an ideal enzyme for processing DNA structures that contain partially unwound strands. Here, we have examined the role of the XPF-ERCC1 complex in the model bryophyte Physcomitrella patens which exhibits uniquely high gene targeting frequencies. We undertook targeted knockout of the Physcomitrella ERCC1 and XPF genes. Mutant analysis shows that the endonuclease complex is essential for resistance to UV-B and to the alkylating agent MMS, and contributes to the maintenance of genome integrity but is also involved in gene targeting in this model plant. Using different constructs we determine whether the function of the XPF-ERCC1 endonuclease complex in gene targeting was removal of 3′ non-homologous termini, similar to SSA, or processing of looped-out heteroduplex intermediates. Interestingly, our data suggest a role of the endonuclease in both pathways and have implications for the mechanism of targeted gene replacement in plants and its specificities compared to yeast and mammalian cells.
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spelling pubmed-65216182019-05-29 The XPF-ERCC1 Complex Is Essential for Genome Stability and Is Involved in the Mechanism of Gene Targeting in Physcomitrella patens Guyon-Debast, Anouchka Rossetti, Patricia Charlot, Florence Epert, Aline Neuhaus, Jean-Marc Schaefer, Didier G. Nogué, Fabien Front Plant Sci Plant Science The XPF-ERCC1 complex, a highly conserved structure-specific endonuclease, functions in multiple DNA repair pathways that are pivotal for maintaining genome stability, including nucleotide excision repair, interstrand crosslink repair, and homologous recombination. XPF-ERCC1 incises double-stranded DNA at double-strand/single-strand junctions, making it an ideal enzyme for processing DNA structures that contain partially unwound strands. Here, we have examined the role of the XPF-ERCC1 complex in the model bryophyte Physcomitrella patens which exhibits uniquely high gene targeting frequencies. We undertook targeted knockout of the Physcomitrella ERCC1 and XPF genes. Mutant analysis shows that the endonuclease complex is essential for resistance to UV-B and to the alkylating agent MMS, and contributes to the maintenance of genome integrity but is also involved in gene targeting in this model plant. Using different constructs we determine whether the function of the XPF-ERCC1 endonuclease complex in gene targeting was removal of 3′ non-homologous termini, similar to SSA, or processing of looped-out heteroduplex intermediates. Interestingly, our data suggest a role of the endonuclease in both pathways and have implications for the mechanism of targeted gene replacement in plants and its specificities compared to yeast and mammalian cells. Frontiers Media S.A. 2019-05-09 /pmc/articles/PMC6521618/ /pubmed/31143199 http://dx.doi.org/10.3389/fpls.2019.00588 Text en Copyright © 2019 Guyon-Debast, Rossetti, Charlot, Epert, Neuhaus, Schaefer and Nogué. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Plant Science
Guyon-Debast, Anouchka
Rossetti, Patricia
Charlot, Florence
Epert, Aline
Neuhaus, Jean-Marc
Schaefer, Didier G.
Nogué, Fabien
The XPF-ERCC1 Complex Is Essential for Genome Stability and Is Involved in the Mechanism of Gene Targeting in Physcomitrella patens
title The XPF-ERCC1 Complex Is Essential for Genome Stability and Is Involved in the Mechanism of Gene Targeting in Physcomitrella patens
title_full The XPF-ERCC1 Complex Is Essential for Genome Stability and Is Involved in the Mechanism of Gene Targeting in Physcomitrella patens
title_fullStr The XPF-ERCC1 Complex Is Essential for Genome Stability and Is Involved in the Mechanism of Gene Targeting in Physcomitrella patens
title_full_unstemmed The XPF-ERCC1 Complex Is Essential for Genome Stability and Is Involved in the Mechanism of Gene Targeting in Physcomitrella patens
title_short The XPF-ERCC1 Complex Is Essential for Genome Stability and Is Involved in the Mechanism of Gene Targeting in Physcomitrella patens
title_sort xpf-ercc1 complex is essential for genome stability and is involved in the mechanism of gene targeting in physcomitrella patens
topic Plant Science
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6521618/
https://www.ncbi.nlm.nih.gov/pubmed/31143199
http://dx.doi.org/10.3389/fpls.2019.00588
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