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PNAS Plus: Genome-wide remodeling of the epigenetic landscape during myogenic differentiation

机译:PNAS Plus:成肌分化过程中表观遗传景观的全基因组重塑

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摘要

We have examined changes in the chromatin landscape during muscle differentiation by mapping the genome-wide location of ten key histone marks and transcription factors in mouse myoblasts and terminally differentiated myotubes, providing an exceptionally rich dataset that has enabled discovery of key epigenetic changes underlying myogenesis. Using this compendium, we focused on a well-known repressive mark, histone H3 lysine 27 trimethylation, and identified novel regulatory elements flanking the myogenin gene that function as a key differentiation-dependent switch during myogenesis. Next, we examined the role of Polycomb-mediated H3K27 methylation in gene repression by systematically ablating components of both PRC1 and PRC2 complexes. Surprisingly, we found mechanistic differences between transient and permanent repression of muscle differentiation and lineage commitment genes and observed that the loss of PRC1 and PRC2 components produced opposing differentiation defects. These phenotypes illustrate striking differences as compared to embryonic stem cell differentiation and suggest that PRC1 and PRC2 do not operate sequentially in muscle cells. Our studies of PRC1 occupancy also suggested a “fail-safe” mechanism, whereby PRC1/Bmi1 concentrates at genes specifying nonmuscle lineages, helping to retain H3K27me3 in the face of declining Ezh2-mediated methyltransferase activity in differentiated cells.
机译:我们通过绘制小鼠成肌细胞和终末分化肌管中十个关键组蛋白标记和转录因子的全基因组位置图,检查了肌肉分化过程中染色质景观的变化,从而提供了异常丰富的数据集,该数据集使得能够发现成肌的关键表观遗传学变化。使用此纲要,我们集中于一个众所周知的抑制标记,组蛋白H3赖氨酸27三甲基化,并确定了侧支于肌生成素基因两侧的新型调控元件,其在成肌过程中起着关键的分化依赖性开关的作用。接下来,我们通过系统地消除PRC1和PRC2复合物的成分,研究了Polycomb介导的H3K27甲基化在基因阻遏中的作用。令人惊讶地,我们发现了肌肉分化和谱系定型基因的瞬时和永久抑制之间的机制差异,并观察到PRC1和PRC2组分的丢失产生了相反的分化缺陷。这些表型说明了与胚胎干细胞分化相比的显着差异,并表明PRC1和PRC2在肌肉细胞中不能顺序运行。我们对PRC1占用的研究还提出了一种“故障安全”机制,其中PRC1 / Bmi1集中于指定非肌肉谱系的基因,从而有助于在分化的细胞中Ezh2介导的甲基转移酶活性下降的情况下保留H3K27me3。

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