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依赖DNA甲基转移酶3A的DNA甲基化塑造了内皮细胞增强子景观。

DNMT3A-dependent DNA methylation shapes the endothelial enhancer landscape.

作者信息

Gehrs Stephanie, Gu Zuguang, Hey Joschka, Weichenhan Dieter, Buckwalter Niklas, Jakab Moritz, Hotz-Wagenblatt Agnes, Breuer Kersten, Prada Maria Llamazares, Hübschmann Daniel, Schlereth Katharina, Plass Christoph, Augustin Hellmut

机构信息

Division of Vascular Oncology and Metastasis, German Cancer Research Center (DKFZ), 69120 Heidelberg, Germany.

Department of Vascular Biology and Tumor Angiogenesis (CBTM), Medical Faculty Mannheim, Heidelberg University, 69120 Heidelberg, Germany.

出版信息

Nucleic Acids Res. 2025 May 22;53(10). doi: 10.1093/nar/gkaf435.

Abstract

DNA methylation plays a fundamental role in regulating transcription during development and differentiation. However, its functional role in the regulation of endothelial cell (EC) transcription during state transition, meaning the switch from an angiogenic to a quiescent cell state, has not been systematically studied. Here, we report the longitudinal changes of the DNA methylome over the lifetime of the murine pulmonary vasculature. We identified prominent alterations in hyper- and hypomethylation during the transition from angiogenic to quiescent ECs. Once a quiescent state was established, DNA methylation marks remained stable throughout EC aging. These longitudinal differentially methylated regions correlated with endothelial gene expression and highlighted the recruitment of de novo DNA methyltransferase 3a (DNMT3A), evidenced by its motif enrichment at transcriptional start sites of genes with methylation-dependent expression patterns. Loss-of-function studies in mice revealed that the absence of DNMT3A-dependent DNA methylation led to the loss of active enhancers, resulting in mild transcriptional changes, likely due to loss of active enhancer integrity. These results underline the importance of DNA methylation as a key epigenetic mechanism of EC function during state transition. Furthermore, we show that DNMT3A-dependent DNA methylation appears to be involved in establishing the histone landscape required for accurate transcriptome regulation.

摘要

DNA甲基化在发育和分化过程中的转录调控中起着基础性作用。然而,其在血管内皮细胞(EC)状态转变(即从血管生成状态转变为静止细胞状态)过程中转录调控的功能作用尚未得到系统研究。在此,我们报告了小鼠肺血管系统生命周期中DNA甲基化组的纵向变化。我们发现在从血管生成性EC向静止性EC转变过程中,高甲基化和低甲基化存在显著改变。一旦建立静止状态,DNA甲基化标记在EC衰老过程中保持稳定。这些纵向差异甲基化区域与内皮基因表达相关,并突出了从头DNA甲基转移酶3a(DNMT3A)的募集,其在具有甲基化依赖性表达模式的基因转录起始位点的基序富集证明了这一点。小鼠功能丧失研究表明,缺乏DNMT3A依赖性DNA甲基化会导致活性增强子丧失,从而导致轻微的转录变化,这可能是由于活性增强子完整性丧失所致。这些结果强调了DNA甲基化作为EC状态转变过程中EC功能关键表观遗传机制的重要性。此外,我们表明,DNMT3A依赖性DNA甲基化似乎参与建立准确转录组调控所需的组蛋白格局。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0428/12123414/5db046bc9bbc/gkaf435figgra1.jpg

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