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首页> 外文期刊>Environmental microbiology >The novel bZIP transcription factor Fpo1 negatively regulates perithecial development by modulating carbon metabolism in the ascomycete fungusFusarium graminearum
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The novel bZIP transcription factor Fpo1 negatively regulates perithecial development by modulating carbon metabolism in the ascomycete fungusFusarium graminearum

机译:新型BZIP转录因子FPO1通过调节ascomycete真菌呋喃西米血糖中的碳代谢来负调节差异性发育

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Fungal sexual reproduction requires complex cellular differentiation processes of hyphal cells. The plant pathogenic fungusFusarium graminearumproduces fruiting bodies called perithecia via sexual reproduction, and perithecia forcibly discharge ascospores into the air for disease initiation and propagation. Lipid metabolism and accumulation are closely related to perithecium formation, yet the molecular mechanisms that regulate these processes are largely unknown. Here, we report that a novel fungal specific bZIP transcription factor,F.graminearumperithecium overproducing 1 (Fpo1), plays a role as a global transcriptional repressor during perithecium production and maturation inF.graminearum. Deletion ofFPO1resulted in reduced vegetative growth, asexual sporulation and virulence and overproduced perithecium, which reached maturity earlier, compared with the wild type. Intriguingly, the hyphae of thefpo1mutant accumulated excess lipids during perithecium production. Using a combination of molecular biological, transcriptomic and biochemical approaches, we demonstrate that repression ofFPO1after sexual induction leads to reprogramming of carbon metabolism, particularly fatty acid production, which affects sexual reproduction of this fungus. This is the first report of a perithecium-overproducingF.graminearummutant, and the findings provide comprehensive insight into the role of modulation of carbon metabolism in the sexual reproduction of fungi.
机译:真菌性繁殖需要亚腿细胞的复杂细胞分化过程。植物致病性真菌呋喃西米葡聚糖通过性繁殖和脊柱植物繁殖的脑膜炎的结果体内患者血清孢子进入空气中的疾病引发和繁殖。脂质代谢和积累与骨头形成密切相关,但调节这些过程的分子机制在很大程度上是未知的。在这里,我们报告称,新型真菌特异性Bzip转录因子,F.graminearumperitheCium超过1(FPO1)起到终端生产和成熟inf.gramearum期间的全球转录阻遏物的作用。与野生型相比,缺乏植物生长,无性孢子术和毒力和过度持续的终止性,其达到成熟度。有趣的是,FPO1造型的菌丝在薄层生产过程中累积过量的脂质。使用分子生物学,转录组和生化方法的组合,我们证明了抑制offpo1awter性诱导导致碳代谢的重新编程,特别是脂肪酸产生,这影响了这种真菌的性繁殖。这是PeritheCium-Overprodutef.rammearumbutant的第一个报告,结果可以全面了解碳代谢在真菌性繁殖中的作用。

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