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首页> 外文期刊>Molecular Microbiology >Transcriptome analysis of cyclic AMP-dependent protein kinase A-regulated genes reveals the production of the novel natural compound fumipyrrole by Aspergillus fumigatus
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Transcriptome analysis of cyclic AMP-dependent protein kinase A-regulated genes reveals the production of the novel natural compound fumipyrrole by Aspergillus fumigatus

机译:环状AMP依赖性蛋白激酶A调控基因的转录组分析揭示了由烟曲霉产生的新型天然化合物氟吡咯

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摘要

Aspergillus fumigatus is an opportunistic human pathogenic fungus causing life-threatening infections in immunocompromised patients. Adaptation to different habitats and also virulence of the fungus depends on signal perception and transduction by modules such as the cyclic AMP-dependent protein kinase A (PKA) pathway. Here, by transcriptome analysis, 632 differentially regulated genes of this important signaling cascade were identified, including 23 putative transcriptional regulators. The highest upregulated transcription factor gene was located in a previously unknown secondary metabolite gene cluster, which we named fmp, encoding an incomplete non-ribosomal peptide synthetase, FmpE. Overexpression of the regulatory gene fmpR using the Tet(On) system led to the specific expression of the other six genes of the fmp cluster. Metabolic profiling of wild type and fmpR overexpressing strain by HPLC-DAD and HPLC-HRESI-MS and structure elucidation by NMR led to identification of 5-benzyl-1H-pyrrole-2-carboxylic acid, which we named fumipyrrole. Fumipyrrole was not described as natural product yet. Chemical synthesis of fumipyrrole confirmed its structure. Interestingly, deletion of fmpR or fmpE led to reduced growth and sporulation of the mutant strains. Although fmp cluster genes were transcribed in infected mouse lungs, deletion of fmpR resulted in wild-type virulence in a murine infection model.
机译:烟曲霉是一种机会性人类致病真菌,可在免疫功能低下的患者中造成威胁生命的感染。对不同生境的适应以及真菌的毒性取决于模块(例如依赖于环AMP的蛋白激酶A(PKA)途径)的信号感知和转导。在这里,通过转录组分析,鉴定了该重要信号级联反应的632个差异调节基因,包括23个假定的转录调节子。最高上调的转录因子基因位于一个以前未知的次级代谢产物基因簇中,我们将其命名为fmp,编码一个不完整的非核糖体肽合成酶FmpE。使用Tet(On)系统过度表达调节基因fmpR导致fmp簇中其他六个基因的特异性表达。通过HPLC-DAD和HPLC-HRESI-MS对野生型和fmpR过表达菌株进行代谢谱分析,并通过NMR进行结构解析,从而鉴定出5-苄基-1H-吡咯-2-羧酸,我们将其命名为fumipyrrole。氟吡咯尚未被描述为天然产物。氟吡咯的化学合成证实了其结构。有趣的是,fmpR或fmpE的缺失导致突变菌株的生长减少和孢子形成。尽管在受感染的小鼠肺中转录了fmp簇基因,但在小鼠感染模型中,fmpR的缺失导致了野生型毒力。

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