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Interplay between DNA N-glycosylases/AP lyases at multiply damaged sites and biological consequences

Evidence has emerged that repair of clustered DNA lesions may be compromised, possibly leading to the formation of double-strand breaks (DSB) and, thus, to deleterious events. The first repair event occurring at a multiply damaged site (MDS) is of major importance and will largely contribute to the...

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Autores principales: Éot-Houllier, Grégory, Gonera, Marta, Gasparutto, Didier, Giustranti, Céline, Sage, Evelyne
Formato: Texto
Lenguaje:English
Publicado: Oxford University Press 2007
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC1904269/
https://www.ncbi.nlm.nih.gov/pubmed/17468500
http://dx.doi.org/10.1093/nar/gkm190
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author Éot-Houllier, Grégory
Gonera, Marta
Gasparutto, Didier
Giustranti, Céline
Sage, Evelyne
author_facet Éot-Houllier, Grégory
Gonera, Marta
Gasparutto, Didier
Giustranti, Céline
Sage, Evelyne
author_sort Éot-Houllier, Grégory
collection PubMed
description Evidence has emerged that repair of clustered DNA lesions may be compromised, possibly leading to the formation of double-strand breaks (DSB) and, thus, to deleterious events. The first repair event occurring at a multiply damaged site (MDS) is of major importance and will largely contribute to the hazardousness of MDS. Here, using protein extracts from wild type or hOGG1-overexpressing Chinese hamster ovary cells, we investigated the initial incision rate at base damage and the formation of repair intermediates in various complex MDS. These MDS comprise a 1 nt gap and 3–4 base damage, including 8-oxoguanine (oG) and 5-hydroxyuracil (hU). We report a hierarchy in base excision that mainly depends on the nature and the distribution of the damage. We also show that excision at both oG and hU, and consequently DSB formation, can be modulated by hOGG1 overexpression. Anyhow, for all the MDS analyzed, DSB formation is limited, due to impaired base excision. Interestingly, repair intermediates contain a short single-stranded region carrying a potentially mutagenic base damage. This in vitro study provides new insight into the processing of MDS and suggests that repair intermediates resulting from the processing of such MDS are rather mutagenic than toxic.
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spelling pubmed-19042692007-07-03 Interplay between DNA N-glycosylases/AP lyases at multiply damaged sites and biological consequences Éot-Houllier, Grégory Gonera, Marta Gasparutto, Didier Giustranti, Céline Sage, Evelyne Nucleic Acids Res Molecular Biology Evidence has emerged that repair of clustered DNA lesions may be compromised, possibly leading to the formation of double-strand breaks (DSB) and, thus, to deleterious events. The first repair event occurring at a multiply damaged site (MDS) is of major importance and will largely contribute to the hazardousness of MDS. Here, using protein extracts from wild type or hOGG1-overexpressing Chinese hamster ovary cells, we investigated the initial incision rate at base damage and the formation of repair intermediates in various complex MDS. These MDS comprise a 1 nt gap and 3–4 base damage, including 8-oxoguanine (oG) and 5-hydroxyuracil (hU). We report a hierarchy in base excision that mainly depends on the nature and the distribution of the damage. We also show that excision at both oG and hU, and consequently DSB formation, can be modulated by hOGG1 overexpression. Anyhow, for all the MDS analyzed, DSB formation is limited, due to impaired base excision. Interestingly, repair intermediates contain a short single-stranded region carrying a potentially mutagenic base damage. This in vitro study provides new insight into the processing of MDS and suggests that repair intermediates resulting from the processing of such MDS are rather mutagenic than toxic. Oxford University Press 2007-05 2007-04-27 /pmc/articles/PMC1904269/ /pubmed/17468500 http://dx.doi.org/10.1093/nar/gkm190 Text en © 2007 The Author(s) http://creativecommons.org/licenses/by-nc/2.0/uk/ This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/2.0/uk/) which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Molecular Biology
Éot-Houllier, Grégory
Gonera, Marta
Gasparutto, Didier
Giustranti, Céline
Sage, Evelyne
Interplay between DNA N-glycosylases/AP lyases at multiply damaged sites and biological consequences
title Interplay between DNA N-glycosylases/AP lyases at multiply damaged sites and biological consequences
title_full Interplay between DNA N-glycosylases/AP lyases at multiply damaged sites and biological consequences
title_fullStr Interplay between DNA N-glycosylases/AP lyases at multiply damaged sites and biological consequences
title_full_unstemmed Interplay between DNA N-glycosylases/AP lyases at multiply damaged sites and biological consequences
title_short Interplay between DNA N-glycosylases/AP lyases at multiply damaged sites and biological consequences
title_sort interplay between dna n-glycosylases/ap lyases at multiply damaged sites and biological consequences
topic Molecular Biology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC1904269/
https://www.ncbi.nlm.nih.gov/pubmed/17468500
http://dx.doi.org/10.1093/nar/gkm190
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