Epigenome editing revealed the role of DNA methylation of T-DMR/CpG island shore on Runx2 transcription

IF 2.3 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY Biochemistry and Biophysics Reports Pub Date : 2024-05-17 DOI:10.1016/j.bbrep.2024.101733
Yutaro Kawa , Miyuki Shindo , Jun Ohgane , Masafumi Inui
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Abstract

RUNX2 is a transcription factor crucial for bone formation. Mutant mice with varying levels of Runx2 expression display dosage-dependent skeletal abnormalities, underscoring the importance of Runx2 dosage control in skeletal formation. RUNX2 activity is regulated by several molecular mechanisms, including epigenetic modification such as DNA methylation. In this study, we investigated whether targeted repressive epigenome editing including hypermethylation to the Runx2-DMR/CpG island shore could influence Runx2 expression using Cas9-based epigenome-editing tools. Through the transient introduction of CRISPRoff-v2.1 and gRNAs targeting Runx2-DMR into MC3T3-E1 cells, we successfully induced hypermethylation of the region and concurrently reduced Runx2 expression during osteoblast differentiation. Although the epigenome editing of Runx2-DMR did not impact the expression of RUNX2 downstream target genes, these results indicate a causal relationship between the epigenetic status of the Runx2-DMR and Runx2 transcription. Additionally, we observed that hypermethylation of the Runx2-DMR persisted for at least 24 days under growth conditions but decreased during osteogenic differentiation, highlighting an endogenous DNA demethylation activity targeting the Runx2-DMR during the differentiation process. In summary, our study underscore the usefulness of the epigenome editing technology to evaluate the function of endogenous genetic elements and revealed that the Runx2-DMR methylation is actively regulated during osteoblast differentiation, subsequently could influence Runx2 expression.

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表观基因组编辑揭示了T-DMR/CpG岛岸DNA甲基化对Runx2转录的作用
RUNX2 是一种对骨骼形成至关重要的转录因子。RUNX2表达水平不同的突变小鼠会表现出剂量依赖性骨骼异常,这凸显了RUNX2剂量控制在骨骼形成中的重要性。RUNX2的活性受多种分子机制调控,包括DNA甲基化等表观遗传修饰。在本研究中,我们利用基于Cas9的表观基因组编辑工具研究了靶向抑制性表观基因组编辑(包括Runx2-DMR/CpG岛岸的高甲基化)是否会影响Runx2的表达。通过在MC3T3-E1细胞中瞬时导入CRISPRoff-v2.1和靶向Runx2-DMR的gRNA,我们成功地诱导了该区域的高甲基化,同时降低了成骨细胞分化过程中Runx2的表达。虽然Runx2-DMR的表观遗传组编辑并未影响RUNX2下游靶基因的表达,但这些结果表明Runx2-DMR的表观遗传状态与Runx2转录之间存在因果关系。此外,我们还观察到,Runx2-DMR的高甲基化在生长条件下至少持续了24天,但在成骨分化过程中却有所下降,这表明在分化过程中存在针对Runx2-DMR的内源性DNA去甲基化活动。总之,我们的研究强调了表观基因组编辑技术在评估内源性遗传元件功能方面的实用性,并揭示了 Runx2-DMR 甲基化在成骨细胞分化过程中受到积极调控,进而影响 Runx2 的表达。
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来源期刊
Biochemistry and Biophysics Reports
Biochemistry and Biophysics Reports Biochemistry, Genetics and Molecular Biology-Biophysics
CiteScore
4.60
自引率
0.00%
发文量
191
审稿时长
59 days
期刊介绍: Open access, online only, peer-reviewed international journal in the Life Sciences, established in 2014 Biochemistry and Biophysics Reports (BB Reports) publishes original research in all aspects of Biochemistry, Biophysics and related areas like Molecular and Cell Biology. BB Reports welcomes solid though more preliminary, descriptive and small scale results if they have the potential to stimulate and/or contribute to future research, leading to new insights or hypothesis. Primary criteria for acceptance is that the work is original, scientifically and technically sound and provides valuable knowledge to life sciences research. We strongly believe all results deserve to be published and documented for the advancement of science. BB Reports specifically appreciates receiving reports on: Negative results, Replication studies, Reanalysis of previous datasets.
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