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首页> 外文期刊>Molecular Microbiology >The MAP kinase MpkA controls cell wall integrity, oxidative stress response, gliotoxin production and iron adaptation in Aspergillus fumigatus.
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The MAP kinase MpkA controls cell wall integrity, oxidative stress response, gliotoxin production and iron adaptation in Aspergillus fumigatus.

机译:MAP激酶MpkA控制烟曲霉中的细胞壁完整性,氧化应激反应,胶质毒素产生和铁适应性。

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摘要

The saprophytic fungus Aspergillus fumigatus is the most important air-borne fungal pathogen. The cell wall of A. fumigatus has been studied intensively as a potential target for development of effective antifungal agents. A major role in maintaining cell wall integrity is played by the mitogen-activated protein kinase (MAPK) MpkA. To gain a comprehensive insight into this central signal transduction pathway, we performed a transcriptome analysis of the DeltampkA mutant under standard and cell wall stress conditions. Besides genes involved in cell wall remodelling, protection against ROS and secondary metabolism such as gliotoxin, pyomelanin and pseurotin A, also genes involved in siderophore biosynthesis were regulated by MpkA. Consistently, northern and western blot analyses indicated that iron starvation triggers phosphorylation and thus activation of MpkA. Furthermore, localization studies indicated that MpkA accumulates in the nucleus under iron depletion. Hence, we report the first connection between a MAPK pathway and siderophore biosynthesis. The measurement of amino acid pools and of the pools of polyamines indicated that arginine was continuously converted into ornithine to fuel the siderophore pool in the DeltampkA mutant strain. Based on our data, we propose that MpkA fine-tunes the balance between stress response and energy consuming cellular processes.
机译:腐生真菌烟曲霉是最重要的空气传播真菌病原体。烟曲霉的细胞壁已被广泛研究作为开发有效抗真菌剂的潜在靶标。有丝分裂原激活的蛋白激酶(MAPK)MpkA在维持细胞壁完整性中起主要作用。为了全面了解这一中央信号转导途径,我们在标准和细胞壁应激条件下对DeltampkA突变体进行了转录组分析。除了参与细胞壁重塑的基因,针对ROS和继发性代谢的保护(例如胶质毒素,pyomelanin和pseurotin A)外,参与铁载体生物合成的基因还受MpkA调控。一致地,Northern和Western印迹分析表明铁饥饿会触发磷酸化,从而激活MpkA。此外,定位研究表明,在铁耗竭下,MpkA聚集在细胞核中。因此,我们报道了MAPK途径与铁载体生物合成之间的第一个联系。氨基酸库和多胺库的测量表明,精氨酸被连续转化为鸟氨酸,以为DeltampkA突变株中的铁载体池提供燃料。根据我们的数据,我们建议MpkA可以微调应力响应和耗能细胞过程之间的平衡。

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