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Mapping Structurally Defined Guanine Oxidation Products along DNA Duplexes: Influence of Local Sequence Context and Endogenous Cytosine Methylation

[Image: see text] DNA oxidation by reactive oxygen species is nonrandom, potentially leading to accumulation of nucleobase damage and mutations at specific sites within the genome. We now present the first quantitative data for sequence-dependent formation of structurally defined oxidative nucleobas...

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Autores principales: Ming, Xun, Matter, Brock, Song, Matthew, Veliath, Elizabeth, Shanley, Ryan, Jones, Roger, Tretyakova, Natalia
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2014
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3985951/
https://www.ncbi.nlm.nih.gov/pubmed/24571128
http://dx.doi.org/10.1021/ja411636j
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author Ming, Xun
Matter, Brock
Song, Matthew
Veliath, Elizabeth
Shanley, Ryan
Jones, Roger
Tretyakova, Natalia
author_facet Ming, Xun
Matter, Brock
Song, Matthew
Veliath, Elizabeth
Shanley, Ryan
Jones, Roger
Tretyakova, Natalia
author_sort Ming, Xun
collection PubMed
description [Image: see text] DNA oxidation by reactive oxygen species is nonrandom, potentially leading to accumulation of nucleobase damage and mutations at specific sites within the genome. We now present the first quantitative data for sequence-dependent formation of structurally defined oxidative nucleobase adducts along p53 gene-derived DNA duplexes using a novel isotope labeling-based approach. Our results reveal that local nucleobase sequence context differentially alters the yields of 2,2,4-triamino-2H-oxal-5-one (Z) and 8-oxo-7,8-dihydro-2′-deoxyguanosine (OG) in double stranded DNA. While both lesions are overproduced within endogenously methylated (Me)CG dinucleotides and at 5′ Gs in runs of several guanines, the formation of Z (but not OG) is strongly preferred at solvent-exposed guanine nucleobases at duplex ends. Targeted oxidation of (Me)CG sequences may be caused by a lowered ionization potential of guanine bases paired with (Me)C and the preferential intercalation of riboflavin photosensitizer adjacent to (Me)C:G base pairs. Importantly, some of the most frequently oxidized positions coincide with the known p53 lung cancer mutational “hotspots” at codons 245 (GGC), 248 (CGG), and 158 (CGC) respectively, supporting a possible role of oxidative degradation of DNA in the initiation of lung cancer.
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spelling pubmed-39859512015-02-26 Mapping Structurally Defined Guanine Oxidation Products along DNA Duplexes: Influence of Local Sequence Context and Endogenous Cytosine Methylation Ming, Xun Matter, Brock Song, Matthew Veliath, Elizabeth Shanley, Ryan Jones, Roger Tretyakova, Natalia J Am Chem Soc [Image: see text] DNA oxidation by reactive oxygen species is nonrandom, potentially leading to accumulation of nucleobase damage and mutations at specific sites within the genome. We now present the first quantitative data for sequence-dependent formation of structurally defined oxidative nucleobase adducts along p53 gene-derived DNA duplexes using a novel isotope labeling-based approach. Our results reveal that local nucleobase sequence context differentially alters the yields of 2,2,4-triamino-2H-oxal-5-one (Z) and 8-oxo-7,8-dihydro-2′-deoxyguanosine (OG) in double stranded DNA. While both lesions are overproduced within endogenously methylated (Me)CG dinucleotides and at 5′ Gs in runs of several guanines, the formation of Z (but not OG) is strongly preferred at solvent-exposed guanine nucleobases at duplex ends. Targeted oxidation of (Me)CG sequences may be caused by a lowered ionization potential of guanine bases paired with (Me)C and the preferential intercalation of riboflavin photosensitizer adjacent to (Me)C:G base pairs. Importantly, some of the most frequently oxidized positions coincide with the known p53 lung cancer mutational “hotspots” at codons 245 (GGC), 248 (CGG), and 158 (CGC) respectively, supporting a possible role of oxidative degradation of DNA in the initiation of lung cancer. American Chemical Society 2014-02-26 2014-03-19 /pmc/articles/PMC3985951/ /pubmed/24571128 http://dx.doi.org/10.1021/ja411636j Text en Copyright © 2014 American Chemical Society
spellingShingle Ming, Xun
Matter, Brock
Song, Matthew
Veliath, Elizabeth
Shanley, Ryan
Jones, Roger
Tretyakova, Natalia
Mapping Structurally Defined Guanine Oxidation Products along DNA Duplexes: Influence of Local Sequence Context and Endogenous Cytosine Methylation
title Mapping Structurally Defined Guanine Oxidation Products along DNA Duplexes: Influence of Local Sequence Context and Endogenous Cytosine Methylation
title_full Mapping Structurally Defined Guanine Oxidation Products along DNA Duplexes: Influence of Local Sequence Context and Endogenous Cytosine Methylation
title_fullStr Mapping Structurally Defined Guanine Oxidation Products along DNA Duplexes: Influence of Local Sequence Context and Endogenous Cytosine Methylation
title_full_unstemmed Mapping Structurally Defined Guanine Oxidation Products along DNA Duplexes: Influence of Local Sequence Context and Endogenous Cytosine Methylation
title_short Mapping Structurally Defined Guanine Oxidation Products along DNA Duplexes: Influence of Local Sequence Context and Endogenous Cytosine Methylation
title_sort mapping structurally defined guanine oxidation products along dna duplexes: influence of local sequence context and endogenous cytosine methylation
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3985951/
https://www.ncbi.nlm.nih.gov/pubmed/24571128
http://dx.doi.org/10.1021/ja411636j
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