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The Dynamin-Like GTPase FgSey1 Plays a Critical Role in Fungal Development and Virulence in Fusarium graminearum

机译:Dynamin样GTPase Fgsey1在Fusarium Gramearum的真菌发育和毒力中起着关键作用

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Fusarium graminearum , the main pathogenic fungus causing Fusarium head blight (FHB), produces deoxynivalenol (DON), a key virulence factor, which is synthesized in the endoplasmic reticulum (ER). Sey1/atlastin, a dynamin-like GTPase protein, is known to be required for homotypic fusion of ER membranes, but the functions of this protein are unknown in pathogenic fungi. Here, we characterized Sey1/atlastin homologue FgSey1 in F. graminearum . Like Sey1/atlastin, FgSey1 is located in the ER. The FgSEY1 deletion mutant exhibited significantly reduced vegetative growth, asexual development, DON biosynthesis, and virulence. Moreover, the Δ Fgsey1 mutant was impaired in the formation of normal lipid droplets (LDs) and toxisomes, both of which participate in DON biosynthesis. The GTPase, helix bundle (HB), transmembrane segment (TM), and cytosolic tail (CT) domains of FgSey1 are essential for its function, but only the TM domain is responsible for its localization. Furthermore, the mutants FgSey1~(K63A) and FgSey1~(T87A) lacked GTPase activity and failed to rescue the defects of the Δ Fgsey1 mutant. Collectively, our data suggest that the dynamin-like GTPase protein FgSey1 affects the generation of LDs and toxisomes and is required for DON biosynthesis and pathogenesis in F. graminearum .IMPORTANCE Fusarium graminearum is a major plant pathogen that causes Fusarium head blight (FHB) of wheats worldwide. In addition to reducing the plant yield, F. graminearum infection of wheats also results in the production of deoxynivalenol (DON) mycotoxins, which are harmful to humans and animals and therefore cause great economic losses through pollution of food products and animal feed. At present, effective strategies for controlling FHB are not available. Therefore, understanding the regulation mechanisms of fungal development, pathogenesis, and DON biosynthesis is important for the development of effective control strategies of this disease. In this study, we demonstrated that a dynamin-like GTPase protein Sey1/atlastin homologue, FgSey1, is required for vegetative growth, DON production, and pathogenicity in F. graminearum . Our results provide novel information on critical roles of FgSey1 in fungal pathogenicity; therefore, FgSey1 could be a potential target for effective control of the disease caused by F. graminearum .
机译:诱使镰刀菌枯萎(FHB)的主要致病性真菌(FHB),产生脱氧性苯酚(Don),是在内质网(ER)中合成的关键毒力因子。已知Sey1 / Atlastin,一种动发电机样GTPAse蛋白,是ER膜的均型融合所必需的,但是该蛋白质的致病性真菌未知。在这里,我们在F. Graminearum中表征了SEY1 / Atlastin同源物型Fgsey1。像Sey1 / Atlastin一样,Fgsey1位于ER中。 FGSey1缺失突变体表现出显着降低的营养生长,无性发育,DON生物合成和毒力。此外,在形成正常的脂液滴(LDS)和毒素中,δfgsey1突变体损害,两者都参与唐生物合成。 FGSey1的GTP酶,螺旋束(HB),跨膜段(TM)和细胞骨尾(CT)域对其功能至关重要,但只有TM域名责任其本地化。此外,突变体Fgsey1〜(K63a)和Fgsey1〜(t87a)缺乏GTP酶活性,并且未能拯救δfgsey1突变体的缺陷。统称,我们的数据表明,类似的动力学GTPase蛋白FGSey1会影响LDS和毒素的产生,并且在F.Graminearum的唐生物合成和发病机制中所必需的.Importance Fusarium Graminearum是一个主要的植物病原体,导致镰刀菌长枯萎(FHB)麦子全世界。除了降低植物产量外,小麦的F. Graminearum感染还导致脱氧酚蛋白酚(Don)霉菌毒素的产生,这对人类和动物有害,因此通过食品和动物饲料污染造成巨大的经济损失。目前,无效的控制FHB的有效策略不可用。因此,了解真菌发育,发病机制和DON生物合成的调节机制对于开发这种疾病的有效控制策略是重要的。在这项研究中,我们证明了在F.Graminearum的营养生长,唐生产和致病性所必需的一种类似动力学的GTPase蛋白SEY1 / Atlastin同源物。我们的结果提供了关于Fgsey1在真菌致病性中的关键作用的新信息;因此,FGSey1可能是有效控制由F. Graminearum引起的疾病的潜在目标。

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