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首页> 外文期刊>Scientific reports. >Genome-wide profiling of DNA methylation provides insights into epigenetic regulation of fungal development in a plant pathogenic fungus, Magnaporthe oryzae
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Genome-wide profiling of DNA methylation provides insights into epigenetic regulation of fungal development in a plant pathogenic fungus, Magnaporthe oryzae

机译:DNA甲基化的全基因组概况分析为深入了解植物病原真菌 Magnaporthe oryzae 中真菌发育的表观遗传调控提供了见识

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DNA methylation is an important epigenetic modification that regulates development of plants and mammals. To investigate the roles of DNA methylation in fungal development, we profiled genome-wide methylation patterns at single-nucleotide resolution during vegetative growth, asexual reproduction, and infection-related morphogenesis in a model plant pathogenic fungus, Magnaporthe oryzae . We found that DNA methylation occurs in and around genes as well as transposable elements and undergoes global reprogramming during fungal development. Such reprogramming of DNA methylation suggests that it may have acquired new roles other than controlling the proliferation of TEs. Genetic analysis of DNA methyltransferase deletion mutants also indicated that proper reprogramming in methylomes is required for asexual reproduction in the fungus. Furthermore, RNA-seq analysis showed that DNA methylation is associated with transcriptional silencing of transposable elements and transcript abundance of genes in context-dependent manner, reinforcing the role of DNA methylation as a genome defense mechanism. This comprehensive approach suggests that DNA methylation in fungi can be a dynamic epigenetic entity contributing to fungal development and genome defense. Furthermore, our DNA methylomes provide a foundation for future studies exploring this key epigenetic modification in fungal development and pathogenesis.
机译:DNA甲基化是重要的表观遗传修饰,可调节植物和哺乳动物的发育。为了研究DNA甲基化在真菌发育中的作用,我们在模型植物病原性真菌Magnaporthe oryzae的营养生长,无性繁殖以及与感染相关的形态发生过程中,以单核苷酸分辨率分析了全基因组范围的甲基化模式。我们发现,DNA甲基化发生在基因及其周围以及转座因子中,并且在真菌发育过程中经历了全局重编程。 DNA甲基化的这种重新编程表明,除了控制TE的增殖外,它可能还具有其他作用。 DNA甲基转移酶缺失突变体的遗传分析还表明,对于真菌中的无性繁殖,需要在甲基化组中进行适当的重编程。此外,RNA-seq分析表明,DNA甲基化与转座因子的转录沉默和基因的转录本丰度相关,取决于上下文,从而增强了DNA甲基化作为基因组防御机制的作用。这种全面的方法表明真菌中的DNA甲基化可以是有助于真菌发育和基因组防御的动态表观遗传实体。此外,我们的DNA甲基化组为将来研究真菌发育和发病机理中的关键表观遗传修饰提供了基础。

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