跨物种分析揭示了H3K27me3和H4K20me3在神经干细胞祖细胞中的复杂性

Christopher T. Rhodes , Richard S. Sandstrom , Shu-Wei Angela Huang , Yufeng Wang , Gunnar Schotta , Mitchel S. Berger , Chin-Hsing Annie Lin
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引用次数: 18

摘要

人脑室下区(SVZ)的神经干细胞祖细胞(NSPC)可能有助于终身神经发生,然而多形性胶质母细胞瘤(GBM)亚型含有NSPC特征,这突出了细胞命运调节的重要性。在众多的调控机制中,组蛋白尾部的翻译后甲基化是细胞命运的关键调控机制。本文的工作主要集中在SVZ内成人NSPC中组蛋白H3赖氨酸27 (H3K27me3)和组蛋白H4赖氨酸20 (H4K20me3)的两种抑制性染色质标记三甲基化的作用。为了更好地建立健康的人类NSPCs模型,对H3K27me3和H4K20me3进行表观遗传分析,我们使用了从成年狒狒(Papio anubis)脑SVZ分离的NSPCs,这些NSPCs的脑结构和基因组水平与人类相似。H3K27me3在正常NSPCs中的作用主要是调控基因表达、细胞周期和分化,而H4K20me3则参与DNA复制/修复、代谢和细胞周期。通过条件敲除小鼠模型,我们分别减少了负责H3K27me3和H4K20me3的Ezh2和Suv4-20h,我们发现这两个抑制标记在NSPC群体中具有不可辩驳的细胞周期调节功能。虽然EZH2/H3K27me3和Suv4-20h/H4K20me3都与癌症有关,但我们在健康NSPCs和人类GBM标本之间的比较基因组学方法显示,NSPCs中富含H3K27me3和H4K20me3的大量基因在人类GBM中发生了改变。总之,我们跨物种的综合分析突出了H3K27me3和H4K20me3在NSPC的正常和疾病条件下的重要作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Cross-species analyses unravel the complexity of H3K27me3 and H4K20me3 in the context of neural stem progenitor cells

Cross-species analyses unravel the complexity of H3K27me3 and H4K20me3 in the context of neural stem progenitor cells

Cross-species analyses unravel the complexity of H3K27me3 and H4K20me3 in the context of neural stem progenitor cells

Neural stem progenitor cells (NSPCs) in the human subventricular zone (SVZ) potentially contribute to lifelong neurogenesis, yet subtypes of glioblastoma multiforme (GBM) contain NSPC signatures that highlight the importance of cell fate regulation. Among numerous regulatory mechanisms, the posttranslational methylations onto histone tails are crucial regulator of cell fate. The work presented here focuses on the role of 2 repressive chromatin marks trimethylations on histone H3 lysine 27 (H3K27me3) and histone H4 lysine 20 (H4K20me3) in the adult NSPC within the SVZ. To best model healthy human NSPCs as they exist in vivo for epigenetic profiling of H3K27me3 and H4K20me3, we used NSPCs isolated from the adult SVZ of baboon brain (Papio anubis) with brain structure and genomic level similar to human. The putative role of H3K27me3 in normal NSPCs predominantly falls into the regulation of gene expression, cell cycle, and differentiation, whereas H4K20me3 is involved in DNA replication/repair, metabolism, and cell cycle. Using conditional knockout mouse models to diminish Ezh2 and Suv4-20h responsible for H3K27me3 and H4K20me3, respectively, we found that both repressive marks have irrefutable function for cell cycle regulation in the NSPC population. Although both EZH2/H3K27me3 and Suv4-20h/H4K20me3 have implication in cancers, our comparative genomics approach between healthy NSPCs and human GBM specimens revealed that substantial sets of genes enriched with H3K27me3 and H4K20me3 in the NSPCs are altered in the human GBM. In sum, our integrated analyses across species highlight important roles of H3K27me3 and H4K20me3 in normal and disease conditions in the context of NSPC.

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