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Oxidative damage to epigenetically methylated sites affects DNA stability, dynamics and enzymatic demethylation

DNA damage can affect various regulatory elements of the genome, with the consequences for DNA structure, dynamics, and interaction with proteins remaining largely unexplored. We used solution NMR spectroscopy, restrained and free molecular dynamics to obtain the structures and investigate dominant...

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Autores principales: Gruber, David R, Toner, Joanna J, Miears, Heather L, Shernyukov, Andrey V, Kiryutin, Alexey S, Lomzov, Alexander A, Endutkin, Anton V, Grin, Inga R, Petrova, Darya V, Kupryushkin, Maxim S, Yurkovskaya, Alexandra V, Johnson, Eric C, Okon, Mark, Bagryanskaya, Elena G, Zharkov, Dmitry O, Smirnov, Serge L
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6237784/
https://www.ncbi.nlm.nih.gov/pubmed/30289469
http://dx.doi.org/10.1093/nar/gky893
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author Gruber, David R
Toner, Joanna J
Miears, Heather L
Shernyukov, Andrey V
Kiryutin, Alexey S
Lomzov, Alexander A
Endutkin, Anton V
Grin, Inga R
Petrova, Darya V
Kupryushkin, Maxim S
Yurkovskaya, Alexandra V
Johnson, Eric C
Okon, Mark
Bagryanskaya, Elena G
Zharkov, Dmitry O
Smirnov, Serge L
author_facet Gruber, David R
Toner, Joanna J
Miears, Heather L
Shernyukov, Andrey V
Kiryutin, Alexey S
Lomzov, Alexander A
Endutkin, Anton V
Grin, Inga R
Petrova, Darya V
Kupryushkin, Maxim S
Yurkovskaya, Alexandra V
Johnson, Eric C
Okon, Mark
Bagryanskaya, Elena G
Zharkov, Dmitry O
Smirnov, Serge L
author_sort Gruber, David R
collection PubMed
description DNA damage can affect various regulatory elements of the genome, with the consequences for DNA structure, dynamics, and interaction with proteins remaining largely unexplored. We used solution NMR spectroscopy, restrained and free molecular dynamics to obtain the structures and investigate dominant motions for a set of DNA duplexes containing CpG sites permuted with combinations of 5-methylcytosine (mC), the primary epigenetic base, and 8-oxoguanine (oxoG), an abundant DNA lesion. Guanine oxidation significantly changed the motion in both hemimethylated and fully methylated DNA, increased base pair breathing, induced BI→BII transition in the backbone 3′ to the oxoG and reduced the variability of shift and tilt helical parameters. UV melting experiments corroborated the NMR and molecular dynamics results, showing significant destabilization of all methylated contexts by oxoG. Notably, some dynamic and thermodynamic effects were not additive in the fully methylated oxidized CpG, indicating that the introduced modifications interact with each other. Finally, we show that the presence of oxoG biases the recognition of methylated CpG dinucleotides by ROS1, a plant enzyme involved in epigenetic DNA demethylation, in favor of the oxidized DNA strand. Thus, the conformational and dynamic effects of spurious DNA oxidation in the regulatory CpG dinucleotide can have far-reaching biological consequences.
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spelling pubmed-62377842018-11-21 Oxidative damage to epigenetically methylated sites affects DNA stability, dynamics and enzymatic demethylation Gruber, David R Toner, Joanna J Miears, Heather L Shernyukov, Andrey V Kiryutin, Alexey S Lomzov, Alexander A Endutkin, Anton V Grin, Inga R Petrova, Darya V Kupryushkin, Maxim S Yurkovskaya, Alexandra V Johnson, Eric C Okon, Mark Bagryanskaya, Elena G Zharkov, Dmitry O Smirnov, Serge L Nucleic Acids Res Molecular Biology DNA damage can affect various regulatory elements of the genome, with the consequences for DNA structure, dynamics, and interaction with proteins remaining largely unexplored. We used solution NMR spectroscopy, restrained and free molecular dynamics to obtain the structures and investigate dominant motions for a set of DNA duplexes containing CpG sites permuted with combinations of 5-methylcytosine (mC), the primary epigenetic base, and 8-oxoguanine (oxoG), an abundant DNA lesion. Guanine oxidation significantly changed the motion in both hemimethylated and fully methylated DNA, increased base pair breathing, induced BI→BII transition in the backbone 3′ to the oxoG and reduced the variability of shift and tilt helical parameters. UV melting experiments corroborated the NMR and molecular dynamics results, showing significant destabilization of all methylated contexts by oxoG. Notably, some dynamic and thermodynamic effects were not additive in the fully methylated oxidized CpG, indicating that the introduced modifications interact with each other. Finally, we show that the presence of oxoG biases the recognition of methylated CpG dinucleotides by ROS1, a plant enzyme involved in epigenetic DNA demethylation, in favor of the oxidized DNA strand. Thus, the conformational and dynamic effects of spurious DNA oxidation in the regulatory CpG dinucleotide can have far-reaching biological consequences. Oxford University Press 2018-11-16 2018-10-05 /pmc/articles/PMC6237784/ /pubmed/30289469 http://dx.doi.org/10.1093/nar/gky893 Text en © The Author(s) 2018. Published by Oxford University Press on behalf of Nucleic Acids Research. http://creativecommons.org/licenses/by/4.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Molecular Biology
Gruber, David R
Toner, Joanna J
Miears, Heather L
Shernyukov, Andrey V
Kiryutin, Alexey S
Lomzov, Alexander A
Endutkin, Anton V
Grin, Inga R
Petrova, Darya V
Kupryushkin, Maxim S
Yurkovskaya, Alexandra V
Johnson, Eric C
Okon, Mark
Bagryanskaya, Elena G
Zharkov, Dmitry O
Smirnov, Serge L
Oxidative damage to epigenetically methylated sites affects DNA stability, dynamics and enzymatic demethylation
title Oxidative damage to epigenetically methylated sites affects DNA stability, dynamics and enzymatic demethylation
title_full Oxidative damage to epigenetically methylated sites affects DNA stability, dynamics and enzymatic demethylation
title_fullStr Oxidative damage to epigenetically methylated sites affects DNA stability, dynamics and enzymatic demethylation
title_full_unstemmed Oxidative damage to epigenetically methylated sites affects DNA stability, dynamics and enzymatic demethylation
title_short Oxidative damage to epigenetically methylated sites affects DNA stability, dynamics and enzymatic demethylation
title_sort oxidative damage to epigenetically methylated sites affects dna stability, dynamics and enzymatic demethylation
topic Molecular Biology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6237784/
https://www.ncbi.nlm.nih.gov/pubmed/30289469
http://dx.doi.org/10.1093/nar/gky893
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