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致癌转化导致转座元件位置的 DNA 甲基化丧失和转录激活。

Oncogenic Transformation Drives DNA Methylation Loss and Transcriptional Activation at Transposable Element Loci.

机构信息

The George Washington University Cancer Center (GWCC), Washington, DC.

Department of Microbiology, Immunology & Tropical Medicine, The George Washington University, Washington, DC.

出版信息

Cancer Res. 2023 Aug 1;83(15):2584-2599. doi: 10.1158/0008-5472.CAN-22-3485.

Abstract

UNLABELLED

Transposable elements (TE) are typically silenced by DNA methylation and repressive histone modifications in differentiated healthy human tissues. However, TE expression increases in a wide range of cancers and is correlated with global hypomethylation of cancer genomes. We assessed expression and DNA methylation of TEs in fibroblast cells that were serially transduced with hTERT, SV40, and HRASR24C to immortalize and then transform them, modeling the different steps of the tumorigenesis process. RNA sequencing and whole-genome bisulfite sequencing were performed at each stage of transformation. TE expression significantly increased as cells progressed through transformation, with the largest increase in expression after the final stage of transformation, consistent with data from human tumors. The upregulated TEs were dominated by endogenous retroviruses [long terminal repeats (LTR)]. Most differentially methylated regions (DMR) in all stages were hypomethylated, with the greatest hypomethylation in the final stage of transformation. A majority of the DMRs overlapped TEs from the RepeatMasker database, indicating that TEs are preferentially demethylated. Many hypomethylated TEs displayed a concordant increase in expression. Demethylation began during immortalization and continued into transformation, while upregulation of TE transcription occurred in transformation. Numerous LTR elements upregulated in the model were also identified in The Cancer Genome Atlas datasets of breast, colon, and prostate cancer. Overall, these findings indicate that TEs, specifically endogenous retroviruses, are demethylated and transcribed during transformation.

SIGNIFICANCE

Analysis of epigenetic and transcriptional changes in a transformation model reveals that transposable element expression and methylation are dysregulated during oncogenic transformation.

摘要

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转座元件(TE)通常在分化的健康人体组织中通过 DNA 甲基化和抑制性组蛋白修饰沉默。然而,TE 的表达在广泛的癌症中增加,并与癌症基因组的全局低甲基化相关。我们评估了连续转导 hTERT、SV40 和 HRASR24C 以永生化然后转化的成纤维细胞中 TE 的表达和 DNA 甲基化,模拟了肿瘤发生过程的不同步骤。在转化的每个阶段都进行了 RNA 测序和全基因组亚硫酸氢盐测序。随着细胞转化的进行,TE 的表达显著增加,最后一个转化阶段的表达增加最大,与人类肿瘤的数据一致。上调的 TE 主要由内源性逆转录病毒 [长末端重复(LTR)] 组成。所有阶段的差异甲基化区域(DMR)大多呈低甲基化,最后一个转化阶段的低甲基化程度最大。大多数 DMR 重叠了 RepeatMasker 数据库中的 TE,表明 TE 优先去甲基化。许多低甲基化的 TE 显示出表达的一致增加。去甲基化始于永生化,持续到转化,而 TE 转录的上调发生在转化中。模型中上调的许多 LTR 元素也在乳腺癌、结肠癌和前列腺癌的癌症基因组图谱数据集。总的来说,这些发现表明,在转化过程中,TE,特别是内源性逆转录病毒,会被去甲基化和转录。

意义

转化模型中表观遗传和转录变化的分析表明,转座元件的表达和甲基化在致癌转化过程中失调。

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