Cargando…

Single-molecule multiplexed profiling of protein–DNA complexes using magnetic tweezers

Epigenetics, such as the dynamic interplay between DNA methylation and demethylation, play diverse roles in critical cellular events. Enzymatic activity at CpG sites, where cytosines are methylated or demethylated, is known to be influenced by the density of CpGs, methylation states, and the flankin...

Descripción completa

Detalles Bibliográficos
Autores principales: Liang, Lin, Wang, Zeyu, Qu, Lihua, Huang, Wei, Guo, Shuang, Guan, Xiangchen, Zhang, Wei, Sun, Fuping, Yuan, Hongrui, Zou, Huiru, Liu, Haitao, Yu, Zhongbo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7949110/
https://www.ncbi.nlm.nih.gov/pubmed/33493518
http://dx.doi.org/10.1016/j.jbc.2021.100327
_version_ 1783663492251779072
author Liang, Lin
Wang, Zeyu
Qu, Lihua
Huang, Wei
Guo, Shuang
Guan, Xiangchen
Zhang, Wei
Sun, Fuping
Yuan, Hongrui
Zou, Huiru
Liu, Haitao
Yu, Zhongbo
author_facet Liang, Lin
Wang, Zeyu
Qu, Lihua
Huang, Wei
Guo, Shuang
Guan, Xiangchen
Zhang, Wei
Sun, Fuping
Yuan, Hongrui
Zou, Huiru
Liu, Haitao
Yu, Zhongbo
author_sort Liang, Lin
collection PubMed
description Epigenetics, such as the dynamic interplay between DNA methylation and demethylation, play diverse roles in critical cellular events. Enzymatic activity at CpG sites, where cytosines are methylated or demethylated, is known to be influenced by the density of CpGs, methylation states, and the flanking sequences of a CpG site. However, how the relevant enzymes are recruited to and recognize their target DNA is less clear. Moreover, although DNA-binding epigenetic enzymes are ideal targets for therapeutic intervention, these targets have been rarely exploited. Single-molecule techniques offer excellent capabilities to probe site-specific protein–DNA interactions and unravel the dynamics. Here, we develop a single-molecule approach that allows multiplexed profiling of protein–DNA complexes using magnetic tweezers. When a DNA hairpin with multiple binding sites is unzipping, strand separation pauses at the positions bound by a protein. We can thus measure site-specific binding probabilities and dissociation time directly. Taking the TET1 CXXC domain as an example, we show that TET1 CXXC binds multiple CpG motifs with various flanking nucleotides or different methylation patterns in an AT-rich DNA. We are able to establish for the first time, at nanometer resolution, that TET1 CXXC prefers G/C flanked CpG motif over C/G, A/T, or T/A flanked ones. CpG methylation strengthens TET1 CXXC recruitment but has little effect on dissociation time. Finally, we demonstrate that TET1 CXXC can distinguish five CpG clusters in a CpG island with crowded binding motifs. We anticipate that the feasibility of single-molecule multiplexed profiling assays will contribute to the understanding of protein–DNA interactions.
format Online
Article
Text
id pubmed-7949110
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher American Society for Biochemistry and Molecular Biology
record_format MEDLINE/PubMed
spelling pubmed-79491102021-03-19 Single-molecule multiplexed profiling of protein–DNA complexes using magnetic tweezers Liang, Lin Wang, Zeyu Qu, Lihua Huang, Wei Guo, Shuang Guan, Xiangchen Zhang, Wei Sun, Fuping Yuan, Hongrui Zou, Huiru Liu, Haitao Yu, Zhongbo J Biol Chem Research Article Epigenetics, such as the dynamic interplay between DNA methylation and demethylation, play diverse roles in critical cellular events. Enzymatic activity at CpG sites, where cytosines are methylated or demethylated, is known to be influenced by the density of CpGs, methylation states, and the flanking sequences of a CpG site. However, how the relevant enzymes are recruited to and recognize their target DNA is less clear. Moreover, although DNA-binding epigenetic enzymes are ideal targets for therapeutic intervention, these targets have been rarely exploited. Single-molecule techniques offer excellent capabilities to probe site-specific protein–DNA interactions and unravel the dynamics. Here, we develop a single-molecule approach that allows multiplexed profiling of protein–DNA complexes using magnetic tweezers. When a DNA hairpin with multiple binding sites is unzipping, strand separation pauses at the positions bound by a protein. We can thus measure site-specific binding probabilities and dissociation time directly. Taking the TET1 CXXC domain as an example, we show that TET1 CXXC binds multiple CpG motifs with various flanking nucleotides or different methylation patterns in an AT-rich DNA. We are able to establish for the first time, at nanometer resolution, that TET1 CXXC prefers G/C flanked CpG motif over C/G, A/T, or T/A flanked ones. CpG methylation strengthens TET1 CXXC recruitment but has little effect on dissociation time. Finally, we demonstrate that TET1 CXXC can distinguish five CpG clusters in a CpG island with crowded binding motifs. We anticipate that the feasibility of single-molecule multiplexed profiling assays will contribute to the understanding of protein–DNA interactions. American Society for Biochemistry and Molecular Biology 2021-01-23 /pmc/articles/PMC7949110/ /pubmed/33493518 http://dx.doi.org/10.1016/j.jbc.2021.100327 Text en © 2021 The Authors https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Research Article
Liang, Lin
Wang, Zeyu
Qu, Lihua
Huang, Wei
Guo, Shuang
Guan, Xiangchen
Zhang, Wei
Sun, Fuping
Yuan, Hongrui
Zou, Huiru
Liu, Haitao
Yu, Zhongbo
Single-molecule multiplexed profiling of protein–DNA complexes using magnetic tweezers
title Single-molecule multiplexed profiling of protein–DNA complexes using magnetic tweezers
title_full Single-molecule multiplexed profiling of protein–DNA complexes using magnetic tweezers
title_fullStr Single-molecule multiplexed profiling of protein–DNA complexes using magnetic tweezers
title_full_unstemmed Single-molecule multiplexed profiling of protein–DNA complexes using magnetic tweezers
title_short Single-molecule multiplexed profiling of protein–DNA complexes using magnetic tweezers
title_sort single-molecule multiplexed profiling of protein–dna complexes using magnetic tweezers
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7949110/
https://www.ncbi.nlm.nih.gov/pubmed/33493518
http://dx.doi.org/10.1016/j.jbc.2021.100327
work_keys_str_mv AT lianglin singlemoleculemultiplexedprofilingofproteindnacomplexesusingmagnetictweezers
AT wangzeyu singlemoleculemultiplexedprofilingofproteindnacomplexesusingmagnetictweezers
AT qulihua singlemoleculemultiplexedprofilingofproteindnacomplexesusingmagnetictweezers
AT huangwei singlemoleculemultiplexedprofilingofproteindnacomplexesusingmagnetictweezers
AT guoshuang singlemoleculemultiplexedprofilingofproteindnacomplexesusingmagnetictweezers
AT guanxiangchen singlemoleculemultiplexedprofilingofproteindnacomplexesusingmagnetictweezers
AT zhangwei singlemoleculemultiplexedprofilingofproteindnacomplexesusingmagnetictweezers
AT sunfuping singlemoleculemultiplexedprofilingofproteindnacomplexesusingmagnetictweezers
AT yuanhongrui singlemoleculemultiplexedprofilingofproteindnacomplexesusingmagnetictweezers
AT zouhuiru singlemoleculemultiplexedprofilingofproteindnacomplexesusingmagnetictweezers
AT liuhaitao singlemoleculemultiplexedprofilingofproteindnacomplexesusingmagnetictweezers
AT yuzhongbo singlemoleculemultiplexedprofilingofproteindnacomplexesusingmagnetictweezers