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Decreased H3K27 and H3K4 trimethylation on mortal chromosomes in distributed stem cells

机译:分布式干细胞中人染色体上的H3K27和H3K4三甲基化水平降低

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The role of immortal DNA strands that co-segregate during mitosis of asymmetrically self-renewing distributed stem cells (DSCs) is unknown. Previously, investigation of immortal DNA strand function and molecular mechanisms responsible for their nonrandom co-segregation was precluded by difficulty in identifying DSCs and immortal DNA strands. Here, we report the use of two technological innovations, selective DSC expansion and establishment of H2A.Z chromosomal asymmetry as a specific marker of ‘immortal chromosomes,’ to investigate molecular properties of immortal chromosomes and opposing ‘mortal chromosomes’ in cultured mouse hair follicle DSCs. Although detection of the respective suppressive and activating H3K27me3 and H3K4me3 epigenetic marks on immortal chromosomes was similar to randomly segregated chromosomes, detection of both was lower on mortal chromosomes destined for lineage-committed sister cells. This global epigenomic feature of nonrandom co-segregation may reveal a mechanism that maintains an epigenome-wide ‘poised’ transcription state, which preserves DSC identity, while simultaneously activating sister chromosomes for differentiation.
机译:永生的DNA链在不对称自我更新分布的干细胞(DSC)的有丝分裂过程中共分离的作用尚不清楚。以前,对永生DNA链功能和负责其非随机共分离的分子机制的研究因难以鉴定DSC和永生DNA链而被排除在外。在这里,我们报告了两种技术创新的使用:选择性DSC扩展和H2A.Z染色体不对称性的建立,作为“永生染色体”的特定标记,以研究培养的小鼠毛囊中永生染色体和相对的“永生染色体”的分子特性DSC。尽管在永生染色体上分别检测抑制性和激活性H3K27me3和H3K4me3表观遗传标记与随机分离的染色体相似,但在用于谱系定型的姊妹细胞的凡人染色体上,两者的检测率均较低。非随机共分离的这种全球表观基因组学特征可能揭示了一种机制,该机制可以维持整个表观基因组的“平衡”转录状态,该状态保持DSC身份,同时激活姊妹染色体进行分化。

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