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Component Interaction of ESCRT Complexes Is Essential for Endocytosis-Dependent Growth, Reproduction, DON Production and Full Virulence in Fusarium graminearum

机译:ESCRT复合物的成分相互作用对于禾谷镰刀菌的内吞作用依赖性生长,繁殖,DON产生和完全毒力至关重要

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Multivesicular bodies (MVBs) are critical intermediates in the trafficking of ubiquitinated endocytosed surface proteins to the lysosome/vacuole for destruction. Recognizing and packaging ubiquitin modified cargoes to the MVB pathway require ESCRT (Endosomal sorting complexes required for transport) machinery, which consists of four core subcomplexes, ESCRT-0, ESCRT-I, ESCRT-II, and ESCRT-III. Fusarium graminearum is an important plant pathogen that causes head blight of major cereal crops. Our previous results showed that ESCRT-0 is essential for fungal development and pathogenicity in Fusarium graminearum . We then, in this study, systemically studied the protein-protein interactions within F. graminearum ESCRT-I, -II or -III complex, as well as between ESCRT-0 and ESCRT-I, ESCRT-I and ESCRT-II, and ESCRT-II and ESCRT-III complexes and found that loss of any ESCRT component resulted in abnormal function in endocytosis. In addition, ESCRT deletion mutants displayed severe defects in growth, deoxynivalenol (DON) production, virulence, sexual, and asexual reproduction. Importantly genetic complementation with corresponding ESCRT genes fully rescued all these defective phenotypes, indicating the essential role of ESCRT machinery in fungal development and plant infection in F. graminearum . Taken together, the protein-protein interactome and biological functions of the ESCRT machinery is first profoundly characterized in F. graminearum , providing a foundation for further exploration of ESCRT machinery in filamentous fungi.
机译:多囊泡小体(MVBs)是泛素化的内吞表面蛋白运输到溶酶体/真空破坏的关键中间体。识别和包装遍在蛋白修饰的货物至MVB途径需要ESCRT(运输所需的内体分拣复合物)机器,该机器由四个核心亚复合物ESCRT-0,ESCRT-I,ESCRT-II和ESCRT-III组成。禾谷镰孢(Fusarium graminearum)是一种重要的植物病原体,可引起主要谷物作物的枯萎病。我们以前的结果表明,ESCRT-0对于禾谷镰刀菌的真菌发育和致病性至关重要。然后,在这项研究中,我们系统地研究了禾谷镰刀菌ESCRT-I,-II或-III复合体以及ESCRT-0和ESCRT-I,ESCRT-I和ESCRT-II之间的蛋白质-蛋白质相互作用,以及ESCRT-II和ESCRT-III复合物,发现任何ESCRT成分的损失都会导致胞吞功能异常。此外,ESCRT缺失突变体在生长,脱氧雪腐烯醇(DON)的生产,毒力,有性和无性繁殖方面显示出严重缺陷。重要的是,与相应的ESCRT基因的遗传互补完全拯救了所有这些缺陷表型,表明ESCRT机制在禾谷镰刀菌的真菌发育和植物感染中的重要作用。综上所述,ESCRT机制的蛋白质相互作用机制和生物学功能首先在禾谷镰刀菌中得到了深刻的表征,为进一步探索丝状真菌中的ESCRT机制提供了基础。

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