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首页> 外文期刊>PLoS Genetics >Dynamic Replacement of Histone H3 Variants Reprograms Epigenetic Marks in Early Mouse Embryos
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Dynamic Replacement of Histone H3 Variants Reprograms Epigenetic Marks in Early Mouse Embryos

机译:组蛋白H3变体的动态替换重新编程早期小鼠胚胎中的表观遗传标记。

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Upon fertilization, reprogramming of gene expression is required for embryo development. This step is marked by DNA demethylation and changes in histone variant composition. However, little is known about the molecular mechanisms causing these changes and their impact on histone modifications. We examined the global deposition of the DNA replication-dependent histone H3.1 and H3.2 variants and the DNA replication-independent H3.3 variant after fertilization in mice. We showed that H3.3, a euchromatic marker of gene activity, transiently disappears from the maternal genome, suggesting erasure of the oocyte-specific modifications carried by H3.3. After fertilization, H3.2 is incorporated into the transcriptionally silent heterochromatin, whereas H3.1 and H3.3 occupy unusual heterochromatic and euchromatin locations, respectively. After the two-cell stage, H3.1 and H3.3 variants resume their usual respective locations on heterochromatin and euchromatin. Preventing the incorporation of H3.1 and H3.2 by knockdown of the histone chaperone CAF-1 induces a reciprocal increase in H3.3 deposition and impairs heterochromatin formation. We propose that the deposition of different H3 variants influences the functional organization of chromatin. Taken together, these findings suggest that dynamic changes in the deposition of H3 variants are critical for chromatin reorganization during epigenetic reprogramming.
机译:受精后,胚胎发育需要基因表达的重编程。该步骤的特征是DNA脱甲基和组蛋白变体组成的变化。然而,对于引起这些变化的分子机制及其对组蛋白修饰的影响知之甚少。我们在小鼠受精后检查了依赖DNA复制的组蛋白H3.1和H3.2变体以及依赖DNA复制的H3.3变体的全局沉积。我们表明,H3.3,一种基因活性的常染色体标记,从母体基因组中暂时消失,表明擦除了由H3.3携带的卵母细胞特异性修饰。受精后,H3.2被并入转录沉默异染色质,而H3.1和H3.3分别占据异常的异色和常染色质位置。在两细胞阶段之后,H3.1和H3.3变体在异染色质和常染色质上恢复其通常的位置。通过敲除组蛋白伴侣CAF-1来阻止H3.1和H3.2的引入,会引起H3.3沉积的相互增加并损害异染色质的形成。我们建议,不同的H3变体的沉积影响染色质的功能组织。综上所述,这些发现表明,H3变体沉积的动态变化对于表观遗传重编程期间的染色质重组至关重要。

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