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Symmetrically dimethylated histone H3R2 promotes global transcription during minor zygotic genome activation in mouse pronuclei

机译:对称二甲基化的组蛋白H3R2在小鼠前核的轻微子宫基因组活化期间促进全局转录

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摘要

Abstract Paternal genome reprogramming, such as protamine–histone exchange and global DNA demethylation, is crucial for the development of fertilised embryos. Previously, our study showed that one of histone arginine methylation, asymmetrically dimethylated histone H3R17 (H3R17me2a), is necessary for epigenetic reprogramming in the mouse paternal genome. However, roles of histone arginine methylation in reprogramming after fertilisation are still poorly understood. Here, we report that H3R2me2s promotes global transcription at the 1-cell stage, referred to as minor zygotic genome activation (ZGA). The inhibition of H3R2me2s by expressing a histone H3.3 mutant H3.3R2A prevented embryonic development from the 2-cell to 4-cell stages and significantly reduced global RNA synthesis and RNA polymerase II (Pol II) activity. Consistent with this result, the expression levels of MuERV-L as minor ZGA transcripts were decreased by forced expression of H3.3R2A. Furthermore, treatment with an inhibitor and co-injection of siRNA to PRMT5 and PRMT7 also resulted in the attenuation of transcriptional activities with reduction of H3R2me2s in the pronuclei of zygotes. Interestingly, impairment of H3K4 methylation by expression of H3.3K4M resulted in a decrease of H3R2me2s in male pronuclei. Our findings suggest that H3R2me2s together with H3K4 methylation is involved in global transcription during minor ZGA in mice.
机译:摘要父母基因组重新编程,例如protamine-offerope和全局DNA去甲基化,对于受精胚胎的发展至关重要。此前,我们的研究表明,小鼠父族基因组中的表观遗传重编程是必需的组蛋白精氨酸甲基化,非对称二甲基化的组蛋白H3R17(H3R17ME2A)中的一种。然而,施肥后,组蛋白精氨酸甲基化在重编程中的作用仍然不知所决。在这里,我们报告H3R2ME2S促进1细胞阶段的全局转录,称为次要的受精基因组激活(ZGA)。通过表达组蛋白H3.3突变体H3.3R2a的抑制通过表达组蛋白H3.3突变体H3.3R2a从2细胞到4细胞阶段的胚胎发育,并显着降低全球RNA合成和RNA聚合酶II(POL II)活性。通过该结果一致,通过强制表达H3.3R2a的强制表达降低了Muerv-L作为次要ZGA转录物的表达水平。此外,用抑制剂和共注射siRNA的治疗方法也导致转录活性的转录活性衰减,并在Zygotes的前核中还原H3R2ME2。有趣的是,通过表达H3.3k4m的H3K4甲基化的损害导致雄性原核的H3R2ME2S降低。我们的发现表明,H3R2ME2与H3K4甲基化一起参与小鼠次ZGA期间的全局转录。

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