PO.MCB06.01 · 分子与细胞生物学

结直肠癌肿瘤发生过程中的表观基因组演变

Epigenomic evolution during tumorigenesis in colorectal cancer

编号 1943 展板 20 时间 4/20 09:00–12:00 区域 Section 21 主讲 Chang Hyun Nam, MD;PhD
分会场 Chromatin Structure and Function
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作者与单位 Authors & Affiliations

Chang Hyun Nam1, Yunah Lee1, Yeonjin Kim1, Hyein Won1, Jinhee Ryu1, Ji Won Park2, Seung-Yong Jeong2, Min Jung Kim2, Young Seok Ju1

1Korea Advanced Institute of Science and Technology, Daejeon, Korea, Republic of,2Department of Surgery, Seoul National University College of Medicine, Seoul, Korea, Republic of

摘要 Abstract

中文摘要
与正常细胞相比,癌细胞表现出独特的特征,如基因组不稳定性和表型可塑性。越来越多的证据表明,除基因组突变外,肿瘤发生过程中的表观基因组重编程在确立癌症标志方面发挥关键作用。然而,肿瘤发生过程中表观基因组改变的全基因组图谱,以及基因组、表观基因组和转录组之间的相互作用仍知之甚少,尤其是在单细胞分辨率层面。在此,我们研究了来自13例结直肠癌患者的129个单细胞来源癌克隆和142个单隐窝来源的匹配正常克隆的基因组、DNA甲基化组和转录组。与正常克隆(其中约75%的CpG位点完全甲基化)相比,癌克隆表现出普遍的全局去甲基化,仅约50%的CpG保持完全甲基化。我们利用正常克隆的共识甲基化状态估算体细胞表观突变,发现癌克隆中平均有750万个CpG位点(约占全部CpG的25%)发生去甲基化。体细胞去甲基化负荷随癌症中内源性体细胞SNV负荷线性增加,提示广泛的去甲基化主要源于DNMT1介导的DNA甲基化维持不完善。由基因组突变和CpG去甲基化推断出的染色体获得时间估计基本一致,支持肿瘤发生过程中去甲基化在广阔基因组区域内呈钟表样累积。有趣的是,尽管普遍存在去甲基化,但与正常克隆相比,癌症中启动子CpG甲基化略有增加。我们鉴定出启动子差异甲基化的基因,包括高甲基化的抑癌基因和低甲基化的癌基因,并将这些甲基化变化与基因表达谱相关联,支持其作为驱动性表观突变的作用。此外,尽管肿瘤发生过程中L1元件被激活,但在正常克隆和癌克隆中,L1HS启动子的去甲基化率均低于基因组其余部分,提示癌症中L1的激活是全局去甲基化的被动结果,而非主动调控过程。总体而言,我们的单细胞多组学分析全面呈现了肿瘤发生过程中的表观基因组重编程,并为表观基因组改变如何促成癌症标志提供了宝贵见解。
查看英文原文 English abstract
Cancer cells exhibit distinct features compared with normal cells, such as genomic instability and phenotypic plasticity. Growing evidence suggests that epigenomic reprogramming during tumorigenesis, in addition to genomic mutations, plays a critical role in establishing cancer hallmarks. However, the genome-wide landscape of epigenomic alterations and the interplay among the genome, epigenome, and transcriptome during tumorigenesis remain poorly understood, particularly at single-cell resolution. Here, we investigated the genome, DNA methylome, and transcriptome of 129 single-cell-derived cancer clones and 142 single-crypt-derived matched normal clones from 13 patients with colorectal cancer. Compared with normal clones, in which ~75% of CpG sites were fully methylated, cancer clones exhibited pervasive global demethylation, with only ~50% of CpGs remaining fully methylated. We estimated the somatic epimutations using the consensus methylation states of normal clones and found that, on average, 7.5 million CpG sites (~25% of all CpGs) were demethylated in cancer clones. The burden of somatic demethylation increased linearly with the endogenous somatic SNV burden in cancer, suggesting that widespread demethylation primarily results from imperfect DNMT1-mediated maintenance of DNA methylation. The estimated timing of chromosomal gains inferred from genomic mutations and CpG demethylation was largely consistent, supporting the clock-like accumulation of demethylation across broad genomic regions during tumorigenesis. Interestingly, promoter CpG methylation was slightly increased in cancer compared with normal clones, despite pervasive demethylation. We identified genes with differentially methylated promoters, including hypermethylated tumor-suppressor genes and hypomethylated oncogenes, and correlated these methylation changes with gene-expression profiles, supporting their role as driver epimutations. In addition, despite the activation of L1 elements during tumorigenesis, demethylation rates in L1HS promoters were lower than in the rest of the genome in both normal and cancer clones, suggesting that L1 activation in cancer is a passive consequence of global demethylation rather than an active regulatory process. Overall, our single-cell multi-omics analysis provides a comprehensive view of epigenomic reprogramming during tumorigenesis and offers valuable insights into how epigenomic alterations contribute to cancer hallmarks.
利益披露 Disclosure
C. Nam, None.. Y. Lee, None.. Y. Kim, None.. H. Won, None.. J. Ryu, None.. J. Park, None.. S. Jeong, None.. M. Kim, None. Y. Ju, Inocras Employment, g., Board of Directors, non-salaried role), Stock.

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