INRA, Centre de Bordeaux-Aquitaine, UR1264 MycSA, Villenave d'Ornon, France.
Food Addit Contam Part A Chem Anal Control Expo Risk Assess. 2010 May;27(5):710-7. doi: 10.1080/19440040903514531.
Reducing production of type B trichothecenes by Fusarium graminearum on cereals is necessary to control contamination, prevent yield reduction and protect human and animal health. Thus, an understanding of how trichothecene biosynthesis is induced is essential. The effect of ambient pH on fungal growth, toxin biosynthesis and expression of TRI genes was studied during in vitro liquid culture of F. graminearum on minimal medium. Fungal development stopped at day 3 after a sharp pH drop in the medium. At the same time, induction of TRI gene expression was observed and toxin began accumulating 1 day later. Acidification seems a determinant of induction, as neither the toxin nor the TRI genes were detected when the pH was maintained neutral. Shifting from neutral to acidic pH by mycelium transfer induced TRI gene expression and toxin accumulation. The regulation of toxin production by ambient pH appears to be specific to some TRI genes since TRI5, located in the core FgTRI5 cluster, showed an immediate induction while TRI101, located elsewhere in the genome, showed a more progressive response. The regulation of trichothecene biosynthesis by the ambient pH appears to be a general mechanism, independent of strain or chemotype, as all tested strains, including F. graminearum and F. culmorum species, showed a regulation of toxin production in response to the ambient pH. We conclude that, in vitro, external acidification is required for induction of TRI gene expression.
减少禾谷镰刀菌在谷物上产生 B 型单端孢霉烯族毒素对于控制污染、防止减产和保护人类和动物健康是必要的。因此,了解单端孢霉烯族毒素生物合成是如何被诱导的至关重要。本研究在最小培养基中体外液体培养禾谷镰刀菌时,研究了环境 pH 值对真菌生长、毒素生物合成和 TRI 基因表达的影响。在培养基中 pH 值急剧下降后第 3 天,真菌发育停止。与此同时,观察到 TRI 基因表达的诱导,毒素在 1 天后开始积累。酸化似乎是诱导的决定因素,因为当 pH 值保持中性时,既检测不到毒素,也检测不到 TRI 基因。通过菌丝转移从中性到酸性 pH 值的转变诱导了 TRI 基因表达和毒素积累。环境 pH 值对毒素产生的调节似乎对一些 TRI 基因是特异的,因为位于核心 FgTRI5 簇中的 TRI5 基因立即被诱导,而位于基因组其他位置的 TRI101 基因则表现出更渐进的反应。环境 pH 值对单端孢霉烯族毒素生物合成的调节似乎是一种普遍机制,与菌株或化学型无关,因为所有测试的菌株,包括禾谷镰刀菌和匐枝根霉,都表现出对环境 pH 值的毒素产生的调节。我们得出结论,在体外,外部酸化是 TRI 基因表达诱导所必需的。