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Quantification and Mapping of Alkylation in the Human Genome Reveal Single Nucleotide Resolution Precursors of Mutational Signatures

[Image: see text] Chemical modifications to DNA bases, including DNA adducts arising from reactions with electrophilic chemicals, are well-known to impact cell growth, miscode during replication, and influence disease etiology. However, knowledge of how genomic sequences and structures influence the...

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Autores principales: Jiang, Yang, Mingard, Cécile, Huber, Sabrina M., Takhaveev, Vakil, McKeague, Maureen, Kizaki, Seiichiro, Schneider, Mirjam, Ziegler, Nathalie, Hürlimann, Vera, Hoeng, Julia, Sierro, Nicolas, Ivanov, Nikolai V., Sturla, Shana J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10037492/
https://www.ncbi.nlm.nih.gov/pubmed/36968528
http://dx.doi.org/10.1021/acscentsci.2c01100
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author Jiang, Yang
Mingard, Cécile
Huber, Sabrina M.
Takhaveev, Vakil
McKeague, Maureen
Kizaki, Seiichiro
Schneider, Mirjam
Ziegler, Nathalie
Hürlimann, Vera
Hoeng, Julia
Sierro, Nicolas
Ivanov, Nikolai V.
Sturla, Shana J.
author_facet Jiang, Yang
Mingard, Cécile
Huber, Sabrina M.
Takhaveev, Vakil
McKeague, Maureen
Kizaki, Seiichiro
Schneider, Mirjam
Ziegler, Nathalie
Hürlimann, Vera
Hoeng, Julia
Sierro, Nicolas
Ivanov, Nikolai V.
Sturla, Shana J.
author_sort Jiang, Yang
collection PubMed
description [Image: see text] Chemical modifications to DNA bases, including DNA adducts arising from reactions with electrophilic chemicals, are well-known to impact cell growth, miscode during replication, and influence disease etiology. However, knowledge of how genomic sequences and structures influence the accumulation of alkylated DNA bases is not broadly characterized with high resolution, nor have these patterns been linked with overall quantities of modified bases in the genome. For benzo(a) pyrene (BaP), a ubiquitous environmental carcinogen, we developed a single-nucleotide resolution damage sequencing method to map in a human lung cell line the main mutagenic adduct arising from BaP. Furthermore, we combined this analysis with quantitative mass spectrometry to evaluate the dose–response profile of adduct formation. By comparing damage abundance with DNase hypersensitive sites, transcription levels, and other genome annotation data, we found that although overall adduct levels rose with increasing chemical exposure concentration, genomic distribution patterns consistently correlated with chromatin state and transcriptional status. Moreover, due to the single nucleotide resolution characteristics of this DNA damage map, we could determine preferred DNA triad sequence contexts for alkylation accumulation, revealing a characteristic DNA damage signature. This new BaP damage signature had a profile highly similar to mutational signatures identified previously in lung cancer genomes from smokers. Thus, these data provide insight on how genomic features shape the accumulation of alkylation products in the genome and predictive strategies for linking single-nucleotide resolution in vitro damage maps with human cancer mutations.
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spelling pubmed-100374922023-03-25 Quantification and Mapping of Alkylation in the Human Genome Reveal Single Nucleotide Resolution Precursors of Mutational Signatures Jiang, Yang Mingard, Cécile Huber, Sabrina M. Takhaveev, Vakil McKeague, Maureen Kizaki, Seiichiro Schneider, Mirjam Ziegler, Nathalie Hürlimann, Vera Hoeng, Julia Sierro, Nicolas Ivanov, Nikolai V. Sturla, Shana J. ACS Cent Sci [Image: see text] Chemical modifications to DNA bases, including DNA adducts arising from reactions with electrophilic chemicals, are well-known to impact cell growth, miscode during replication, and influence disease etiology. However, knowledge of how genomic sequences and structures influence the accumulation of alkylated DNA bases is not broadly characterized with high resolution, nor have these patterns been linked with overall quantities of modified bases in the genome. For benzo(a) pyrene (BaP), a ubiquitous environmental carcinogen, we developed a single-nucleotide resolution damage sequencing method to map in a human lung cell line the main mutagenic adduct arising from BaP. Furthermore, we combined this analysis with quantitative mass spectrometry to evaluate the dose–response profile of adduct formation. By comparing damage abundance with DNase hypersensitive sites, transcription levels, and other genome annotation data, we found that although overall adduct levels rose with increasing chemical exposure concentration, genomic distribution patterns consistently correlated with chromatin state and transcriptional status. Moreover, due to the single nucleotide resolution characteristics of this DNA damage map, we could determine preferred DNA triad sequence contexts for alkylation accumulation, revealing a characteristic DNA damage signature. This new BaP damage signature had a profile highly similar to mutational signatures identified previously in lung cancer genomes from smokers. Thus, these data provide insight on how genomic features shape the accumulation of alkylation products in the genome and predictive strategies for linking single-nucleotide resolution in vitro damage maps with human cancer mutations. American Chemical Society 2023-02-22 /pmc/articles/PMC10037492/ /pubmed/36968528 http://dx.doi.org/10.1021/acscentsci.2c01100 Text en © 2023 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Jiang, Yang
Mingard, Cécile
Huber, Sabrina M.
Takhaveev, Vakil
McKeague, Maureen
Kizaki, Seiichiro
Schneider, Mirjam
Ziegler, Nathalie
Hürlimann, Vera
Hoeng, Julia
Sierro, Nicolas
Ivanov, Nikolai V.
Sturla, Shana J.
Quantification and Mapping of Alkylation in the Human Genome Reveal Single Nucleotide Resolution Precursors of Mutational Signatures
title Quantification and Mapping of Alkylation in the Human Genome Reveal Single Nucleotide Resolution Precursors of Mutational Signatures
title_full Quantification and Mapping of Alkylation in the Human Genome Reveal Single Nucleotide Resolution Precursors of Mutational Signatures
title_fullStr Quantification and Mapping of Alkylation in the Human Genome Reveal Single Nucleotide Resolution Precursors of Mutational Signatures
title_full_unstemmed Quantification and Mapping of Alkylation in the Human Genome Reveal Single Nucleotide Resolution Precursors of Mutational Signatures
title_short Quantification and Mapping of Alkylation in the Human Genome Reveal Single Nucleotide Resolution Precursors of Mutational Signatures
title_sort quantification and mapping of alkylation in the human genome reveal single nucleotide resolution precursors of mutational signatures
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10037492/
https://www.ncbi.nlm.nih.gov/pubmed/36968528
http://dx.doi.org/10.1021/acscentsci.2c01100
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