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Computational mapping reveals dramatic effect of Hoogsteen breathing on duplex DNA reactivity with formaldehyde

Formaldehyde has long been recognized as a hazardous environmental agent highly reactive with DNA. Recently, it has been realized that due to the activity of histone demethylation enzymes within the cell nucleus, formaldehyde is produced endogenously, in direct vicinity of genomic DNA. Should it lea...

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Autores principales: Bohnuud, Tanggis, Beglov, Dmitri, Ngan, Chi Ho, Zerbe, Brandon, Hall, David R., Brenke, Ryan, Vajda, Sandor, Frank-Kamenetskii, Maxim D., Kozakov, Dima
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3439909/
https://www.ncbi.nlm.nih.gov/pubmed/22705795
http://dx.doi.org/10.1093/nar/gks519
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author Bohnuud, Tanggis
Beglov, Dmitri
Ngan, Chi Ho
Zerbe, Brandon
Hall, David R.
Brenke, Ryan
Vajda, Sandor
Frank-Kamenetskii, Maxim D.
Kozakov, Dima
author_facet Bohnuud, Tanggis
Beglov, Dmitri
Ngan, Chi Ho
Zerbe, Brandon
Hall, David R.
Brenke, Ryan
Vajda, Sandor
Frank-Kamenetskii, Maxim D.
Kozakov, Dima
author_sort Bohnuud, Tanggis
collection PubMed
description Formaldehyde has long been recognized as a hazardous environmental agent highly reactive with DNA. Recently, it has been realized that due to the activity of histone demethylation enzymes within the cell nucleus, formaldehyde is produced endogenously, in direct vicinity of genomic DNA. Should it lead to extensive DNA damage? We address this question with the aid of a computational mapping method, analogous to X-ray and nuclear magnetic resonance techniques for observing weakly specific interactions of small organic compounds with a macromolecule in order to establish important functional sites. We concentrate on the leading reaction of formaldehyde with free bases: hydroxymethylation of cytosine amino groups. Our results show that in B-DNA, cytosine amino groups are totally inaccessible for the formaldehyde attack. Then, we explore the effect of recently discovered transient flipping of Watson–Crick (WC) pairs into Hoogsteen (HG) pairs (HG breathing). Our results show that the HG base pair formation dramatically affects the accessibility for formaldehyde of cytosine amino nitrogens within WC base pairs adjacent to HG base pairs. The extensive literature on DNA interaction with formaldehyde is analyzed in light of the new findings. The obtained data emphasize the significance of DNA HG breathing.
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spelling pubmed-34399092012-09-12 Computational mapping reveals dramatic effect of Hoogsteen breathing on duplex DNA reactivity with formaldehyde Bohnuud, Tanggis Beglov, Dmitri Ngan, Chi Ho Zerbe, Brandon Hall, David R. Brenke, Ryan Vajda, Sandor Frank-Kamenetskii, Maxim D. Kozakov, Dima Nucleic Acids Res Computational Biology Formaldehyde has long been recognized as a hazardous environmental agent highly reactive with DNA. Recently, it has been realized that due to the activity of histone demethylation enzymes within the cell nucleus, formaldehyde is produced endogenously, in direct vicinity of genomic DNA. Should it lead to extensive DNA damage? We address this question with the aid of a computational mapping method, analogous to X-ray and nuclear magnetic resonance techniques for observing weakly specific interactions of small organic compounds with a macromolecule in order to establish important functional sites. We concentrate on the leading reaction of formaldehyde with free bases: hydroxymethylation of cytosine amino groups. Our results show that in B-DNA, cytosine amino groups are totally inaccessible for the formaldehyde attack. Then, we explore the effect of recently discovered transient flipping of Watson–Crick (WC) pairs into Hoogsteen (HG) pairs (HG breathing). Our results show that the HG base pair formation dramatically affects the accessibility for formaldehyde of cytosine amino nitrogens within WC base pairs adjacent to HG base pairs. The extensive literature on DNA interaction with formaldehyde is analyzed in light of the new findings. The obtained data emphasize the significance of DNA HG breathing. Oxford University Press 2012-09 2012-06-16 /pmc/articles/PMC3439909/ /pubmed/22705795 http://dx.doi.org/10.1093/nar/gks519 Text en © The Author(s) 2012. Published by Oxford University Press. http://creativecommons.org/licenses/by-nc/3.0 This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/3.0), which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Computational Biology
Bohnuud, Tanggis
Beglov, Dmitri
Ngan, Chi Ho
Zerbe, Brandon
Hall, David R.
Brenke, Ryan
Vajda, Sandor
Frank-Kamenetskii, Maxim D.
Kozakov, Dima
Computational mapping reveals dramatic effect of Hoogsteen breathing on duplex DNA reactivity with formaldehyde
title Computational mapping reveals dramatic effect of Hoogsteen breathing on duplex DNA reactivity with formaldehyde
title_full Computational mapping reveals dramatic effect of Hoogsteen breathing on duplex DNA reactivity with formaldehyde
title_fullStr Computational mapping reveals dramatic effect of Hoogsteen breathing on duplex DNA reactivity with formaldehyde
title_full_unstemmed Computational mapping reveals dramatic effect of Hoogsteen breathing on duplex DNA reactivity with formaldehyde
title_short Computational mapping reveals dramatic effect of Hoogsteen breathing on duplex DNA reactivity with formaldehyde
title_sort computational mapping reveals dramatic effect of hoogsteen breathing on duplex dna reactivity with formaldehyde
topic Computational Biology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3439909/
https://www.ncbi.nlm.nih.gov/pubmed/22705795
http://dx.doi.org/10.1093/nar/gks519
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