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Recognition of H3K9 methylation by GLP is required for efficient establishment of H3K9 methylation rapid target gene repression and mouse viability

机译:必须通过GLP识别H3K9甲基化才能有效地建立H3K9甲基化快速抑制靶基因并增强小鼠的生存能力

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摘要

GLP and G9a are major H3K9 dimethylases and are essential for mouse early embryonic development. GLP and G9a both harbor ankyrin repeat domains that are capable of binding H3K9 methylation. However, the functional significance of their recognition of H3K9 methylation is unknown. Here, we report that the histone methyltransferase activities of GLP and G9a are stimulated by neighboring nucleosomes that are premethylated at H3K9. These stimulation events function in cis and are dependent on the H3K9 methylation binding activities of ankyrin repeat domains of GLP and G9a. Disruption of the H3K9 methylation-binding activity of GLP in mice causes growth retardation of embryos, ossification defects of calvaria, and postnatal lethality due to starvation of the pups. In mouse embryonic stem cells (ESCs) harboring a mutant GLP that lacks H3K9me1-binding activity, critical pluripotent genes, including Oct4 and Nanog, display inefficient establishment of H3K9me2 and delayed gene silencing during differentiation. Collectively, our study reveals a new activation mechanism for GLP and G9a that plays an important role in ESC differentiation and mouse viability.
机译:GLP和G9a是主要的H3K9二甲基化酶,对于小鼠早期胚胎发育至关重要。 GLP和G9a都带有能够结合H3K9甲基化的锚蛋白重复结构域。但是,他们识别H3K9甲基化的功能意义尚不清楚。在这里,我们报告说,GLP和G9a的组蛋白甲基转移酶活性受到在H3K9预甲基化的邻近核小体的刺激。这些刺激事件顺式起作用,并取决于GLP和G9a锚蛋白重复域的H3K9甲基化结合活性。小鼠中GLP的H3K9甲基化结合活性的破坏导致幼鼠饥饿,导致胚胎发育迟缓,颅骨骨化缺损和产后致死率。在具有缺乏H3K9me1结合活性的突变GLP的小鼠胚胎干细胞(ESC)中,关键的多能基因,包括Oct4和Nanog,显示出H3K9me2的建立效率低下,并在分化过程中延迟了基因沉默。总的来说,我们的研究揭示了GLP和G9a的新激活机制,在ESC分化和小鼠生存力中起重要作用。

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