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Trehalose is required for stress resistance and virulence of the Basidiomycota plant pathogen Ustilago maydis

机译:海藻糖是担子菌植物病原菌Ustilago maydis的抗逆性和毒力所必需的

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Trehalose is an important disaccharide that can be found in bacteria, fungi, invertebrates and plants. In some Ascomycota fungal plant pathogens, the role of trehalose was recently studied and shown to be important for conferring protection against several environmental stresses and for virulence. In most of the fungi studied, two enzymes are involved in the synthesis of trehalose: trehalose-6-phosphate synthase (Tps1) and trehalose-6-phosphate phosphatase (Tps2). To study the role of trehalose in virulence and stress response in the Basidiomycota maize pathogen Ustilago maydis, Δtps2 deletion mutants were constructed. These mutants did not produce trehalose as confirmed by HPLC analysis, showing that the single gene disruption impaired its biosynthesis. The mutants displayed increased sensitivity to oxidative, heat, acid, ionic and osmotic stresses as compared to the wild-type strains. Virulence of Δtps2 mutants to maize plants was extremely reduced compared to wild-type strains, possibly due to reduced capability to deal with the hostile host environment. The phenotypic traits displayed by Δtps2 strains were fully restored to wild-type levels when complemented with the endogenous UmTPS2 gene, or a chimeric construct having the Saccharomyces cerevisiae TPS2 ORF. This report demonstrates the presence of a single biosynthetic pathway for trehalose, and its importance for virulence in this model Basidiomycota plant pathogen.
机译:海藻糖是一种重要的二糖,可在细菌,真菌,无脊椎动物和植物中发现。在一些子囊菌真菌植物病原体中,最近研究了海藻糖的作用,并显示出海藻糖对于赋予抵抗多种环境压力和毒性的作用很重要。在研究的大多数真菌中,海藻糖的合成涉及两种酶:海藻糖6磷酸合酶(Tps1)和海藻糖6磷酸磷酸酶(Tps2)。为了研究海藻糖在玉米担子菌病原体Ustilago maydis中的毒力和应激反应中的作用,构建了Δtps2缺失突变体。如HPLC分析所证实,这些突变体不产生海藻糖,表明单基因破坏损害了其生物合成。与野生型菌株相比,该突变体对氧化,热,酸,离子和渗透胁迫的敏感性更高。与野生型菌株相比,Δtps2突变体对玉米植物的毒性极大地降低了,这可能是由于其应对敌对宿主环境的能力降低了。当与内源性UmTPS2基因或具有酿酒酵母TPS2 ORF的嵌合构建体互补时,由Δtps2菌株显示的表型性状完全恢复为野生型水平。该报告证明了海藻糖的单一生物合成途径的存在,及其在该模型担子菌植物病原体中对毒力的重要性。

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