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DNA 5-甲基胞嘧啶甲基化抑制基因组中G-四链体结构的形成。

DNA 5mC methylation inhibits the formation of G-quadruplex structures in the genome.

作者信息

Niu Kangkang, Xiang Lijun, Zhang Xiaojuan, Li Xiaoyu, Yao Tingting, Li Jin, Zhang Chu, Liu Junpeng, Peng Yuling, Xu Guanfeng, Xiang Hui, Wang Hao, Song Qisheng, Feng Qili

机构信息

Guangdong Provincial Key Laboratory of Insect Developmental Biology and Applied Technology, Guangzhou Key Laboratory of Insect Development Regulation and Application Research, Institute of Insect Science and Technology, School of Life Sciences, South China Normal University, Guangzhou, 510631, China.

Guangdong Laboratory for Lingnan Modern Agriculture, Guangzhou, China.

出版信息

Genome Biol. 2025 Jul 11;26(1):202. doi: 10.1186/s13059-025-03678-4.

Abstract

BACKGROUND

G-quadruplex structures (G4s) have been identified in the genomes of many organisms and have been proven to play significant epigenetic regulatory roles in gene transcription. Intriguingly, only a small portion of the predicted G4-forming sequences can fold into G4s under cellular conditions. Here, we employ publicly available data, methylation inhibitors, DNA methyltransferase 1 (DNMT1) knockout, and multiple 'Omics' technologies to study the interplay between DNA methylation and chromatin accessibility on G4 formation and the impact on gene expression.

RESULTS

We find an antagonistic correlation between genomic 5mC DNA methylation level and G4 abundance. The abundance of genomic G4s significantly increases when the genome-wide methylation level is reduced by methylation inhibitor treatment or DNMT1 knockout. The increase in G4 signals in DNMT1 knockout cells is reversed by DNMT1 overexpression. Combined ATAC-seq, whole genome bisulfite sequencing, and G4 CUT&Tag analyses demonstrate that 5mC DNA methylation inhibits G4 formation in both open and closed chromatin states. The inhibitory effect of 5mC modification on the formation of G4s is verified by circular dichroism and electrophoretic mobility shift assay in vitro. G4 CUT&Tag and RNA-seq analyses reveal that reduced DNA methylation enhances G4 formation and promotes the transcription of nearby genes.

CONCLUSIONS

This study demonstrates that 5mC DNA methylation directly inhibits G4 formation in the genome and modulates subsequent gene transcription, confirming the interaction between G4s and DNA methylation as an important mechanism for epigenetic regulation of gene transcription.

摘要

背景

G-四链体结构(G4s)已在许多生物体的基因组中被鉴定出来,并已被证明在基因转录中发挥重要的表观遗传调控作用。有趣的是,在细胞条件下,只有一小部分预测的G4形成序列能够折叠成G4s。在这里,我们利用公开可用的数据、甲基化抑制剂、DNA甲基转移酶1(DNMT1)敲除和多种“组学”技术来研究DNA甲基化与染色质可及性在G4形成上的相互作用以及对基因表达的影响。

结果

我们发现基因组5mC DNA甲基化水平与G4丰度之间存在拮抗相关性。当通过甲基化抑制剂处理或DNMT1敲除降低全基因组甲基化水平时,基因组G4s的丰度显著增加。DNMT1敲除细胞中G4信号的增加可被DNMT1过表达逆转。结合ATAC-seq、全基因组亚硫酸氢盐测序和G4 CUT&Tag分析表明,5mC DNA甲基化在开放和封闭染色质状态下均抑制G4形成。5mC修饰对G4s形成的抑制作用在体外通过圆二色性和电泳迁移率变动分析得到验证。G4 CUT&Tag和RNA-seq分析表明,DNA甲基化的降低增强了G4形成并促进了附近基因的转录。

结论

本研究表明,5mC DNA甲基化直接抑制基因组中的G4形成并调节随后的基因转录,证实了G4s与DNA甲基化之间的相互作用是基因转录表观遗传调控的重要机制。

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