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Mutational signatures are jointly shaped by DNA damage and repair
by
Campbell, Peter J.
, Abascal, Federico
, Martincorena, Iñigo
, Bertolini, Simone
, Vöhringer, Harald
, Volkova, Nadezda V.
, Gartner, Anton
, Meier, Bettina
, Gonzalez, Santiago
, Gerstung, Moritz
, González-Huici, Víctor
in
45/23
/ 45/70
/ 631/114/2397
/ 631/337/1427
/ 631/337/1427/1430
/ 631/337/1427/2354
/ 631/67/69
/ 64/11
/ Aflatoxin B1
/ Aflatoxins
/ Alkylation
/ Animals
/ Aristolochic acid
/ Caenorhabditis elegans - genetics
/ Cancer
/ Cisplatin
/ Damage prevention
/ Deoxyribonucleic acid
/ DNA
/ DNA damage
/ DNA Damage - genetics
/ DNA Damage - physiology
/ DNA repair
/ DNA Repair - genetics
/ DNA Repair - physiology
/ DNA sequencing
/ Exposure
/ Genomes
/ Genomics - methods
/ Genotoxicity
/ Humanities and Social Sciences
/ Humans
/ Ionizing radiation
/ multidisciplinary
/ Mutation
/ Mutation - genetics
/ Mutation rates
/ Nematodes
/ Nucleotide excision repair
/ Nucleotides
/ Point Mutation - genetics
/ Repair
/ Science
/ Science (multidisciplinary)
/ Signatures
/ Ultraviolet radiation
/ Whole genome sequencing
2020
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Mutational signatures are jointly shaped by DNA damage and repair
by
Campbell, Peter J.
, Abascal, Federico
, Martincorena, Iñigo
, Bertolini, Simone
, Vöhringer, Harald
, Volkova, Nadezda V.
, Gartner, Anton
, Meier, Bettina
, Gonzalez, Santiago
, Gerstung, Moritz
, González-Huici, Víctor
in
45/23
/ 45/70
/ 631/114/2397
/ 631/337/1427
/ 631/337/1427/1430
/ 631/337/1427/2354
/ 631/67/69
/ 64/11
/ Aflatoxin B1
/ Aflatoxins
/ Alkylation
/ Animals
/ Aristolochic acid
/ Caenorhabditis elegans - genetics
/ Cancer
/ Cisplatin
/ Damage prevention
/ Deoxyribonucleic acid
/ DNA
/ DNA damage
/ DNA Damage - genetics
/ DNA Damage - physiology
/ DNA repair
/ DNA Repair - genetics
/ DNA Repair - physiology
/ DNA sequencing
/ Exposure
/ Genomes
/ Genomics - methods
/ Genotoxicity
/ Humanities and Social Sciences
/ Humans
/ Ionizing radiation
/ multidisciplinary
/ Mutation
/ Mutation - genetics
/ Mutation rates
/ Nematodes
/ Nucleotide excision repair
/ Nucleotides
/ Point Mutation - genetics
/ Repair
/ Science
/ Science (multidisciplinary)
/ Signatures
/ Ultraviolet radiation
/ Whole genome sequencing
2020
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Mutational signatures are jointly shaped by DNA damage and repair
by
Campbell, Peter J.
, Abascal, Federico
, Martincorena, Iñigo
, Bertolini, Simone
, Vöhringer, Harald
, Volkova, Nadezda V.
, Gartner, Anton
, Meier, Bettina
, Gonzalez, Santiago
, Gerstung, Moritz
, González-Huici, Víctor
in
45/23
/ 45/70
/ 631/114/2397
/ 631/337/1427
/ 631/337/1427/1430
/ 631/337/1427/2354
/ 631/67/69
/ 64/11
/ Aflatoxin B1
/ Aflatoxins
/ Alkylation
/ Animals
/ Aristolochic acid
/ Caenorhabditis elegans - genetics
/ Cancer
/ Cisplatin
/ Damage prevention
/ Deoxyribonucleic acid
/ DNA
/ DNA damage
/ DNA Damage - genetics
/ DNA Damage - physiology
/ DNA repair
/ DNA Repair - genetics
/ DNA Repair - physiology
/ DNA sequencing
/ Exposure
/ Genomes
/ Genomics - methods
/ Genotoxicity
/ Humanities and Social Sciences
/ Humans
/ Ionizing radiation
/ multidisciplinary
/ Mutation
/ Mutation - genetics
/ Mutation rates
/ Nematodes
/ Nucleotide excision repair
/ Nucleotides
/ Point Mutation - genetics
/ Repair
/ Science
/ Science (multidisciplinary)
/ Signatures
/ Ultraviolet radiation
/ Whole genome sequencing
2020
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Mutational signatures are jointly shaped by DNA damage and repair
Journal Article
Mutational signatures are jointly shaped by DNA damage and repair
2020
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Overview
Cells possess an armamentarium of DNA repair pathways to counter DNA damage and prevent mutation. Here we use
C. elegans
whole genome sequencing to systematically quantify the contributions of these factors to mutational signatures. We analyse 2,717 genomes from wild-type and 53 DNA repair defective backgrounds, exposed to 11 genotoxins, including UV-B and ionizing radiation, alkylating compounds, aristolochic acid, aflatoxin B1, and cisplatin. Combined genotoxic exposure and DNA repair deficiency alters mutation rates or signatures in 41% of experiments, revealing how different DNA alterations induced by the same genotoxin are mended by separate repair pathways. Error-prone translesion synthesis causes the majority of genotoxin-induced base substitutions, but averts larger deletions. Nucleotide excision repair prevents up to 99% of point mutations, almost uniformly across the mutation spectrum. Our data show that mutational signatures are joint products of DNA damage and repair and suggest that multiple factors underlie signatures observed in cancer genomes.
Recent research has shown that mutational signatures reflective of the history of a cancer can be detected in a cancer genome. Here, using whole genome sequencing of DNA repair deficient and proficient nematodes exposed to genotoxins, the authors show that these mutational signatures reflect both the initial DNA damage that was inflicted and the repair processes that ensue.
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