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氮代谢相关的培养 pH 值变化对镰刀菌产毒基因簇合成调控的影响:多胺胍丁胺和转录因子 AreA 作用的修正。

Impact of nitrogen metabolism-associated culture pH changes on regulation of Fusarium trichothecene biosynthesis: revision of roles of polyamine agmatine and transcription factor AreA.

机构信息

Department of Biological Mechanisms and Functions, Graduate School of Bioagricultural Sciences, Nagoya University, Furo-cho, Chikusa-ku, Nagoya, Aichi, 464-8601, Japan.

Graduate School of Agriculture, Meiji University, 1-1-1 Higashi-Mita, Kawasaki, Kanagawa, 214-8571, Japan.

出版信息

Curr Genet. 2020 Dec;66(6):1179-1190. doi: 10.1007/s00294-020-01102-x. Epub 2020 Aug 18.

DOI:10.1007/s00294-020-01102-x
PMID:32812074
Abstract

Fusarium graminearum produces trichothecene mycotoxins in infected grains and axenic liquid culture. A proposed regulatory model of trichothecene biosynthesis was examined in relation to nitrogen utilization. First, we showed that an important factor for the stimulation of trichothecene biosynthesis was not the occurrence of agmatine as a specific inducer molecule, but rather continuous acidification of the liquid culture medium arising from agmatine catabolism. When the pH of the L-Gln synthetic medium was frequently adjusted to the pH of the agmatine culture, trichothecene productivity of the L-Gln culture was equal to that of the agmatine culture. For efficient trichothecene biosynthesis, the culture pH should be lowered at an appropriate time point during the early growth stage. Second, we re-evaluated the role of the nitrogen regulatory GATA transcription factor AreA in trichothecene biosynthesis. Since Tri6 encodes a transcription factor indispensable for trichothecene biosynthesis, all fifteen AreA-binding consensus sequences in the Tri6 promoter were mutated. The mutant could catabolize L-Phe as the sole nitrogen source; furthermore, the pH profile of the synthetic L-Phe medium (initial pH 4.2) was the same as that of the wild-type (WT) strain. Under such conditions, the promoter mutant exhibited approximately 72% of the trichothecene productivity compared to the WT strain. Thus, F. graminearum AreA (FgAreAp) is dispensable for the functioning of the Tri6 promoter, but it contributes to the increased production of mycotoxin under mildly acidic conditions to some extent. Further investigations on the culture pH revealed that extremely low pH bypasses the function of FgAreAp.

摘要

镰刀菌在感染的谷物和无菌液体培养物中产生单端孢霉烯族毒素。本文研究了与氮利用有关的单端孢霉烯族生物合成的拟议调控模型。首先,我们表明,刺激单端孢霉烯族生物合成的一个重要因素不是胍丁胺作为特定诱导分子的出现,而是胍丁胺分解代谢引起的液体培养物介质的持续酸化。当 L-Gln 合成培养基的 pH 值经常调整为胍丁胺培养物的 pH 值时,L-Gln 培养物的单端孢霉烯族生产力与胍丁胺培养物的生产力相等。为了实现高效的单端孢霉烯族生物合成,在早期生长阶段的适当时间点应降低培养物 pH 值。其次,我们重新评估了氮调节 GATA 转录因子 AreA 在单端孢霉烯族生物合成中的作用。由于 Tri6 编码单端孢霉烯族生物合成所必需的转录因子,因此突变了 Tri6 启动子中所有 15 个 AreA 结合的共有序列。该突变体能代谢 L-Phe 作为唯一氮源;此外,合成 L-Phe 培养基(初始 pH 值 4.2)的 pH 值图谱与野生型(WT)菌株相同。在这种条件下,与 WT 菌株相比,启动子突变体的单端孢霉烯族生产力约为 72%。因此,镰刀菌 AreA(FgAreAp)对于 Tri6 启动子的功能不是必需的,但它在一定程度上有助于在酸性条件下增加真菌毒素的产生。进一步对培养物 pH 值的研究表明,极低的 pH 值绕过了 FgAreAp 的功能。

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