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Global Analysis Reveals the Crucial Roles of DNA Methylation during Rice Seed Development

机译:全局分析揭示了水稻种子发育过程中DNA甲基化的关键作用

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Seed development is an important process of reproductive development and consists of embryo and endosperm development; both comprise several key processes. To determine and investigate the functions of the dynamic DNA methylome during seed development, we profiled the DNA methylation genome wide in a series of developmental stages of rice (Oryza sativa) embryo and endosperm by methylcytosine immunoprecipitation followed by Illumina sequencing. The results showed that embryo is hypermethylated predominantly around non-transposable element (TE) genes, short DNA-TEs, and short interspersed TEs compared with endosperm, and non-TE genes have the most diverse methylation status across seed development. In addition, lowly expressed genes are significantly enriched in hypermethylated genes, but not vice versa, confirming the crucial role of DNA methylation in suppressing gene transcription. Further analysis revealed the significantly decreased methylation at early developing stages (from 2 to 3 d after pollination), indicating a predominant role of demethylation during early endosperm development and that genes with a consistent negative correlation between DNA methylation change and expression change may be potentially directly regulated by DNA methylation. Interestingly, comparative analysis of the DNA methylation profiles revealed that both rice indica and japonica subspecies showed robust fluctuant profiles of DNA methylation levels in embryo and endosperm across seed development, with the highest methylation level at 6 d after pollination (2 d after pollination of endosperm in japonica as well), indicating that a complex and finely controlled methylation pattern is closely associated with seed development regulation. The systemic characterization of the dynamic DNA methylome in developing rice seeds will help us understand the effects and mechanism of epigenetic regulation in seed development.
机译:种子发育是生殖发育的重要过程,包括胚胎和胚乳发育。两者都包含几个关键过程。为了确定和研究动态DNA甲基化组在种子发育过程中的功能,我们通过甲基胞嘧啶免疫沉淀和Illumina测序对水稻(Oryza sativa)胚和胚乳一系列发育阶段的DNA甲基化基因组范围进行了分析。结果表明,与胚乳相比,胚主要在不可转座元件(TE)基因,短DNA-TEs和短穿插TEs周围高度甲基化,并且非TE基因在种子发育过程中具有最多样化的甲基化状态。此外,低表达的基因明显富含高甲基化的基因,反之则不然,这证实了DNA甲基化在抑制基因转录中的关键作用。进一步的分析表明,在发育的早期阶段(授粉后2到3 d)甲基化显着降低,表明脱甲基化在胚乳早期发育中起主要作用,并且DNA甲基化变化与表达变化之间呈负相关的基因可能直接由DNA甲基化调节。有趣的是,对DNA甲基化分布图的比较分析显示,rice稻和粳稻亚种在整个种子发育过程中均表现出强大的胚胎和胚乳DNA甲基化水平波动图,在授粉后6 d(胚乳授粉后2 d)甲基化水平最高。同样在粳稻中也是如此),这表明复杂而精细控制的甲基化模式与种子发育调控密切相关。水稻种子动态DNA甲基化组的系统表征将有助于我们了解表观遗传调控在种子发育中的作用和机制。

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