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The FgHOG1 Pathway Regulates Hyphal Growth Stress Responses and Plant Infection in Fusarium graminearum

机译:该FgHOG1通路调节菌丝生长应激反应和植物感染在禾谷镰刀菌

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摘要

Fusarium head blight (FHB) caused by Fusarium graminearum is a destructive disease of wheat and barley worldwide. In a previous study of systematic characterization of protein kinase genes in F. graminearum, mutants of three putative components of the osmoregulation MAP kinase pathway were found to have distinct colony morphology and hyphal growth defects on PDA plates. Because the osmoregulation pathway is not known to regulate aerial hyphal growth and branching, in this study we further characterized the functions of the FgHog1 pathway in growth, pathogenesis, and development. The Fghog1, Fgpbs2, and Fgssk2 mutants were all reduced in growth rate, aerial hyphal growth, and hyphal branching angle. These mutants were not only hypersensitive to osmotic stress but also had increased sensitivity to oxidative, cytoplasm membrane, and cell wall stresses. The activation of FgHog1 was blocked in the Fgpbs2 and Fgssk2 mutants, indicating the sequential activation of FgSsk2-FgPbs2-FgHog1 cascade. Interestingly, the FgHog1 MAPK pathway mutants appeared to be sensitive to certain compounds present in PDA. They were female sterile but retained male fertility. We also used the metabolomics profiling approach to identify compatible solutes that were accumulated in the wild type but not in the Fghog1 deletion mutant. Overall, our results indicate that the FgSsk2-FgPbs2-FgHog1 MAPK cascade is important for regulating hyphal growth, branching, plant infection, and hyperosmotic and general stress responses in F. graminearum.
机译:禾谷镰刀菌引起的镰刀菌枯萎病是全世界小麦和大麦的破坏性疾病。在先前对禾谷镰刀菌蛋白激酶基因进行系统表征的研究中,渗透压调节MAP激酶途径的三个假定成分的突变体在PDA平板上具有明显的菌落形态和菌丝生长缺陷。由于渗透调节途径尚不能调节气生菌丝的生长和分支,因此在本研究中,我们进一步表征了FgHog1途径在生长,发病机制和发育中的功能。 Fghog1,Fgpbs2和Fgssk2突变体的生长速度,空中菌丝生长和菌丝分支角均降低。这些突变体不仅对渗透胁迫高度敏感,而且对氧化,细胞质膜和细胞壁胁迫的敏感性增加。 FgHog1的激活在Fgpbs2和Fgssk2突变体中被阻止,表明FgSsk2-FgPbs2-FgHog1级联的顺序激活。有趣的是,FgHog1 MAPK途径突变体似乎对PDA中存在的某些化合物敏感。他们是女性不育的,但保留了男性的生育能力。我们还使用了代谢组学分析方法来鉴定在野生型中积累但在Fghog1缺失突变体中没有积累的相容性溶质。总体而言,我们的结果表明FgSsk2-FgPbs2-FgHog1 MAPK级联对于调节禾本科镰孢菌的菌丝生长,分支,植物感染以及高渗和一般胁迫反应非常重要。

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