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5-Methyl-cytosine stabilizes DNA but hinders DNA hybridization revealed by magnetic tweezers and simulations

5-Methyl-cytosine (5mC) is one of the most important DNA modifications and plays versatile biological roles. It is well known that 5mC stabilizes DNA duplexes. However, it remains unclear how 5mC affects the kinetics of DNA melting and hybridization. Here, we studied the kinetics of unzipping and re...

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Autores principales: Zhao, Xiao-Cong, Dong, Hai-Long, Li, Xiao-Lu, Yang, Hong-Yu, Chen, Xue-Feng, Dai, Liang, Wu, Wen-Qiang, Tan, Zhi-Jie, Zhang, Xing-Hua
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9757033/
https://www.ncbi.nlm.nih.gov/pubmed/36477372
http://dx.doi.org/10.1093/nar/gkac1122
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author Zhao, Xiao-Cong
Dong, Hai-Long
Li, Xiao-Lu
Yang, Hong-Yu
Chen, Xue-Feng
Dai, Liang
Wu, Wen-Qiang
Tan, Zhi-Jie
Zhang, Xing-Hua
author_facet Zhao, Xiao-Cong
Dong, Hai-Long
Li, Xiao-Lu
Yang, Hong-Yu
Chen, Xue-Feng
Dai, Liang
Wu, Wen-Qiang
Tan, Zhi-Jie
Zhang, Xing-Hua
author_sort Zhao, Xiao-Cong
collection PubMed
description 5-Methyl-cytosine (5mC) is one of the most important DNA modifications and plays versatile biological roles. It is well known that 5mC stabilizes DNA duplexes. However, it remains unclear how 5mC affects the kinetics of DNA melting and hybridization. Here, we studied the kinetics of unzipping and rezipping using a 502-bp DNA hairpin by single-molecule magnetic tweezers. Under constant loading rates, 5mC increases the unzipping force but counterintuitively decreases the rezipping force at various salt and temperature conditions. Under constant forces, the non-methylated DNA hops between metastable states during unzipping and rezipping, which implies low energy barriers. Surprisingly, the 5mC DNA can’t rezip after fully unzipping unless much lower forces are applied, where it rezips stochastically in a one-step manner, which implies 5mC kinetically hinders DNA hybridization and high energy barriers in DNA hybridization. All-atom molecular dynamics simulations reveal that the 5mC kinetically hinders DNA hybridization due to steric effects rather than electrostatic effects caused by the additional methyl groups of cytosines. Considering the possible high speed of DNA unzipping and zipping during replication and transcription, our findings provide new insights into the biological roles of 5mC.
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spelling pubmed-97570332022-12-19 5-Methyl-cytosine stabilizes DNA but hinders DNA hybridization revealed by magnetic tweezers and simulations Zhao, Xiao-Cong Dong, Hai-Long Li, Xiao-Lu Yang, Hong-Yu Chen, Xue-Feng Dai, Liang Wu, Wen-Qiang Tan, Zhi-Jie Zhang, Xing-Hua Nucleic Acids Res Molecular Biology 5-Methyl-cytosine (5mC) is one of the most important DNA modifications and plays versatile biological roles. It is well known that 5mC stabilizes DNA duplexes. However, it remains unclear how 5mC affects the kinetics of DNA melting and hybridization. Here, we studied the kinetics of unzipping and rezipping using a 502-bp DNA hairpin by single-molecule magnetic tweezers. Under constant loading rates, 5mC increases the unzipping force but counterintuitively decreases the rezipping force at various salt and temperature conditions. Under constant forces, the non-methylated DNA hops between metastable states during unzipping and rezipping, which implies low energy barriers. Surprisingly, the 5mC DNA can’t rezip after fully unzipping unless much lower forces are applied, where it rezips stochastically in a one-step manner, which implies 5mC kinetically hinders DNA hybridization and high energy barriers in DNA hybridization. All-atom molecular dynamics simulations reveal that the 5mC kinetically hinders DNA hybridization due to steric effects rather than electrostatic effects caused by the additional methyl groups of cytosines. Considering the possible high speed of DNA unzipping and zipping during replication and transcription, our findings provide new insights into the biological roles of 5mC. Oxford University Press 2022-12-07 /pmc/articles/PMC9757033/ /pubmed/36477372 http://dx.doi.org/10.1093/nar/gkac1122 Text en © The Author(s) 2022. Published by Oxford University Press on behalf of Nucleic Acids Research. https://creativecommons.org/licenses/by-nc/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution-NonCommercial License (https://creativecommons.org/licenses/by-nc/4.0/), which permits non-commercial re-use, distribution, and reproduction in any medium, provided the original work is properly cited. For commercial re-use, please contact journals.permissions@oup.com
spellingShingle Molecular Biology
Zhao, Xiao-Cong
Dong, Hai-Long
Li, Xiao-Lu
Yang, Hong-Yu
Chen, Xue-Feng
Dai, Liang
Wu, Wen-Qiang
Tan, Zhi-Jie
Zhang, Xing-Hua
5-Methyl-cytosine stabilizes DNA but hinders DNA hybridization revealed by magnetic tweezers and simulations
title 5-Methyl-cytosine stabilizes DNA but hinders DNA hybridization revealed by magnetic tweezers and simulations
title_full 5-Methyl-cytosine stabilizes DNA but hinders DNA hybridization revealed by magnetic tweezers and simulations
title_fullStr 5-Methyl-cytosine stabilizes DNA but hinders DNA hybridization revealed by magnetic tweezers and simulations
title_full_unstemmed 5-Methyl-cytosine stabilizes DNA but hinders DNA hybridization revealed by magnetic tweezers and simulations
title_short 5-Methyl-cytosine stabilizes DNA but hinders DNA hybridization revealed by magnetic tweezers and simulations
title_sort 5-methyl-cytosine stabilizes dna but hinders dna hybridization revealed by magnetic tweezers and simulations
topic Molecular Biology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9757033/
https://www.ncbi.nlm.nih.gov/pubmed/36477372
http://dx.doi.org/10.1093/nar/gkac1122
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