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An epigenomic roadmap to induced pluripotency reveals DNA methylation as a reprogramming modulator

机译:诱导多能性的表观基因组学路线图揭示了DNA甲基化作为重编程调节剂

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摘要

Reprogramming of somatic cells to induced pluripotent stem cells involves a dynamic rearrangement of the epigenetic landscape. To characterize this epigenomic roadmap, we have performed MethylC-seq, ChIP-seq (H3K4/K27/K36me3) and RNA-Seq on samples taken at several time points during murine secondary reprogramming as part of Project Grandiose. We find that DNA methylation gain during reprogramming occurs gradually, while loss is achieved only at the ESC-like state. Binding sites of activated factors exhibit focal demethylation during reprogramming, while ESC-like pluripotent cells are distinguished by extension of demethylation to the wider neighbourhood. We observed that genes with CpG-rich promoters demonstrate stable low methylation and strong engagement of histone marks, whereas genes with CpG-poor promoters are safeguarded by methylation. Such DNA methylation-driven control is the key to the regulation of ESC-pluripotency genes, including Dppa4, Dppa5a and Esrrb. These results reveal the crucial role that DNA methylation plays as an epigenetic switch driving somatic cells to pluripotency.
机译:将体细胞重编程为诱导性多能干细胞涉及表观遗传环境的动态重排。为了表征这一表观基因组学路线图,我们对鼠类二次重编程期间几个时间点采集的样品进行了MethylC-seq,ChIP-seq(H3K4 / K27 / K36me3)和RNA-Seq,这是Project Grandiose项目的一部分。我们发现重编程过程中DNA甲基化的增益逐渐发生,而仅在ESC样状态下实现丢失。活化因子的结合位点在重编程过程中表现出局部去甲基化,而ESC样多能细胞的特征是将去甲基化扩展到更广泛的社区。我们观察到具有富含CpG的启动子的基因表现出稳定的低甲基化和组蛋白标记的强结合,而具有富含CpG的启动子的基因受到甲基化的保护。这种DNA甲基化驱动的控制是调节ESC多能性基因(包括Dppa4,Dppa5a和Esrrb)的关键。这些结果揭示了DNA甲基化作为表观遗传开关驱动体细胞向多能性发挥的关键作用。

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