Cargando…

Cytosine methylation regulates DNA bendability depending on the curvature

Cytosine methylation plays an essential role in many biological processes, such as nucleosome inactivation and regulation of gene expression. The modulation of DNA mechanics may be one of the regulatory mechanisms influenced by cytosine methylation. However, it remains unclear how methylation influe...

Descripción completa

Detalles Bibliográficos
Autores principales: Yeou, Sanghun, Hwang, Jihee, Yi, Jaehun, Kim, Cheolhee, Kim, Seong Keun, Lee, Nam Ki
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9242020/
https://www.ncbi.nlm.nih.gov/pubmed/35872822
http://dx.doi.org/10.1039/d1sc07115g
_version_ 1784737960876310528
author Yeou, Sanghun
Hwang, Jihee
Yi, Jaehun
Kim, Cheolhee
Kim, Seong Keun
Lee, Nam Ki
author_facet Yeou, Sanghun
Hwang, Jihee
Yi, Jaehun
Kim, Cheolhee
Kim, Seong Keun
Lee, Nam Ki
author_sort Yeou, Sanghun
collection PubMed
description Cytosine methylation plays an essential role in many biological processes, such as nucleosome inactivation and regulation of gene expression. The modulation of DNA mechanics may be one of the regulatory mechanisms influenced by cytosine methylation. However, it remains unclear how methylation influences DNA mechanics. Here, we show that methylation has contrasting effects on the bending property of dsDNA depending on DNA curvature. We directly applied bending force on 30 base pairs of dsDNA using a D-shaped DNA nanostructure and measured the degree of bending using single-molecule fluorescence resonance energy transfer without surface immobilization. When dsDNA is weakly bent, methylation increases the stiffness of dsDNA. The stiffness of dsDNA increased by approximately 8% with a single methylation site for 30 bp dsDNA. When dsDNA is highly bent by a strong force, it forms a kink, i.e., a sharp bending of dsDNA. Under strong bending, methylation destabilizes the non-kink form compared with the kink form, which makes dsDNA near the kink region apparently more bendable. However, if the kink region is methylated, the kink form is destabilized, and dsDNA becomes stiffer. As a result, methylation increases the stiffness of weakly bent dsDNA and concurrently can promote kink formation, which may stabilize the nucleosome structure. Our results provide new insight into the effect of methylation, showing that cytosine methylation has opposite effects on DNA mechanics depending on its curvature and methylation location.
format Online
Article
Text
id pubmed-9242020
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher The Royal Society of Chemistry
record_format MEDLINE/PubMed
spelling pubmed-92420202022-07-22 Cytosine methylation regulates DNA bendability depending on the curvature Yeou, Sanghun Hwang, Jihee Yi, Jaehun Kim, Cheolhee Kim, Seong Keun Lee, Nam Ki Chem Sci Chemistry Cytosine methylation plays an essential role in many biological processes, such as nucleosome inactivation and regulation of gene expression. The modulation of DNA mechanics may be one of the regulatory mechanisms influenced by cytosine methylation. However, it remains unclear how methylation influences DNA mechanics. Here, we show that methylation has contrasting effects on the bending property of dsDNA depending on DNA curvature. We directly applied bending force on 30 base pairs of dsDNA using a D-shaped DNA nanostructure and measured the degree of bending using single-molecule fluorescence resonance energy transfer without surface immobilization. When dsDNA is weakly bent, methylation increases the stiffness of dsDNA. The stiffness of dsDNA increased by approximately 8% with a single methylation site for 30 bp dsDNA. When dsDNA is highly bent by a strong force, it forms a kink, i.e., a sharp bending of dsDNA. Under strong bending, methylation destabilizes the non-kink form compared with the kink form, which makes dsDNA near the kink region apparently more bendable. However, if the kink region is methylated, the kink form is destabilized, and dsDNA becomes stiffer. As a result, methylation increases the stiffness of weakly bent dsDNA and concurrently can promote kink formation, which may stabilize the nucleosome structure. Our results provide new insight into the effect of methylation, showing that cytosine methylation has opposite effects on DNA mechanics depending on its curvature and methylation location. The Royal Society of Chemistry 2022-06-02 /pmc/articles/PMC9242020/ /pubmed/35872822 http://dx.doi.org/10.1039/d1sc07115g Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Yeou, Sanghun
Hwang, Jihee
Yi, Jaehun
Kim, Cheolhee
Kim, Seong Keun
Lee, Nam Ki
Cytosine methylation regulates DNA bendability depending on the curvature
title Cytosine methylation regulates DNA bendability depending on the curvature
title_full Cytosine methylation regulates DNA bendability depending on the curvature
title_fullStr Cytosine methylation regulates DNA bendability depending on the curvature
title_full_unstemmed Cytosine methylation regulates DNA bendability depending on the curvature
title_short Cytosine methylation regulates DNA bendability depending on the curvature
title_sort cytosine methylation regulates dna bendability depending on the curvature
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9242020/
https://www.ncbi.nlm.nih.gov/pubmed/35872822
http://dx.doi.org/10.1039/d1sc07115g
work_keys_str_mv AT yeousanghun cytosinemethylationregulatesdnabendabilitydependingonthecurvature
AT hwangjihee cytosinemethylationregulatesdnabendabilitydependingonthecurvature
AT yijaehun cytosinemethylationregulatesdnabendabilitydependingonthecurvature
AT kimcheolhee cytosinemethylationregulatesdnabendabilitydependingonthecurvature
AT kimseongkeun cytosinemethylationregulatesdnabendabilitydependingonthecurvature
AT leenamki cytosinemethylationregulatesdnabendabilitydependingonthecurvature