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The HDF1 Histone Deacetylase Gene Is Important for Conidiation, Sexual Reproduction, and Pathogenesis in Fusarium graminearum

机译:HDF1组蛋白脱乙酰基酶基因对于禾谷镰刀菌的分生,有性繁殖和发病机理很重要

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Head blight caused by Fusarium graminearum is an important disease of wheat and barley. Its genome contains chromosomal regions with higher genetic variation and enriched for genes expressed in planta, suggesting a role of chromatin modification in the regulation of infection-related genes. In a previous study, the FTL1 gene was characterized as a novel virulence factor in the head blight fungus. FTL1 is homologous to yeast SIF2, which is a component of the Set3 complex. Many members of the yeast Set3 complex, including Hos2 histone deacetylase (HDAC), are conserved in E graminearum. In this study, we characterized the HDF1 gene that is orthologous to HOS2. HDF1 physically interacted with FTL1 in yeast two-hybrid assays. Deletion of HDF1 resulted in a significant reduction in virulence and deoxynivalenol (DON) production. The Delta hdf1 mutant failed to spread from the inoculation site to other parts of wheat heads or corn stalks. It was defective in sexual reproduction and significantly reduced in conidiation. Expression of HDF1 was highest in conidia in comparison with germlings and hyphae. Deletion of HDF1 also resulted in a 60% reduction in HDAC activity. Microarray analysis revealed that 149 and 253 genes were down- and upregulated, respectively, over fivefold in the Delta hdf1 mutant. Consistent with upregulation of putative catalase and peroxidase genes, the Delta hdf1 mutant was more tolerant to H2O2 than the wild type. Deletion of the other two class II HDAC genes had no obvious effect on vegetative growth and resulted in only a minor reduction in conidiation and virulence in the Delta hdf2 mutant. Overall, our results indicate that HDF1 is the major class II HDAC gene in F. graminearum. It may interact with Fill and function as a component in a well-conserved HDAC complex in the regulation of conidiation, DON production, and pathogenesis.
机译:禾谷镰刀菌引起的枯萎病是小麦和大麦的重要病害。它的基因组包含具有较高遗传变异的染色体区域,并且富含在植物中表达的基因,这表明染色质修饰在感染相关基因的调控中的作用。在以前的研究中,FTL1基因被表征为头枯萎真菌中的一种新型毒力因子。 FTL1与酵母SIF2同源,后者是Set3复合物的组成部分。酵母Set3复合物的许多成员,包括Hos2组蛋白脱乙酰基酶(HDAC),在禾本科中都保守。在这项研究中,我们表征了与HOS2同源的HDF1基因。在酵母双杂交测定中,HDF1与FTL1发生了物理相互作用。 HDF1的删除导致毒力和脱氧雪腐烯醇(DON)产量显着降低。 Delta hdf1突变体未能从接种部位传播到小麦头或玉米秸秆的其他部分。它在性生殖方面有缺陷,并且绝育能力大大降低。与种苗和菌丝相比,HDF1在分生孢子中的表达最高。 HDF1的删除还导致HDAC活性降低60%。基因芯片分析显示,在Delta hdf1突变体中,分别有149和253个基因下调和上调了五倍以上。与假定的过氧化氢酶和过氧化物酶基因的上调一致,Delta hdf1突变体比野生型对H2O2的耐受性更高。删除其他两个II类HDAC基因对营养生长没有明显影响,并且仅导致Delta hdf2突变体的分生孢子和毒力降低较小。总体而言,我们的结果表明,HDF1是禾谷镰刀菌中的主要II类HDAC基因。它可能与Fill相互作用,并在保守度,DON产生和发病机理的调节中作为保存良好的HDAC复合物中的成分发挥作用。

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