Helmholtz Centre for Infection Research, Research Group Biological Systems Analysis, Inhoffenstr, Braunschweig, Germany.
J Appl Microbiol. 2010 Feb;108(2):462-71. doi: 10.1111/j.1365-2672.2009.04443.x. Epub 2009 Jun 25.
Metabolic pathways, e.g. biosynthesis of ergosterol or carbohydrate metabolism including respiration, are well-known targets of several fungicides. With our study we wanted to prove that metabolite profiles can be used to classify fungicides according to their mode of action and that concentrations of key metabolites are changed even without detectable reduced growth rates.
We exposed the yeasts Candida albicans and Saccharomyces cerevisiae to inhibitors of the electron transport chain and to compounds known to interact with osmotic stress defence pathways. Glycerol and ethanol were chosen as key metabolites of branches of glucose catabolism. Increased glycerol concentrations were observed not only when the osmotic stress response was activated, but also as response to the inhibition of the electron transfer chain, whereas elevated ethanol levels were observed only when the respiratory pathways were blocked.
The treatment of the yeasts Candida albicans and Saccharomyces cerevisiae with antimycotic compounds led to a redirection of metabolic pathways, which could be followed by the quantification of both the metabolites ethanol and glycerol. Only the combination of both concentration profiles allowed the clear distinction between inhibitors of the respiratory chain and effects on the osmotic stress response pathway. IMPACT OF STUDY: The extension of the number of metabolites to a comprehensive quantitative metabolic profile of compound-treated test organisms can be an additional tool in fungicide research allowing the detection of compounds which act on fungi and, moreover, the elucidation of modes of action.
代谢途径,例如麦角固醇的生物合成或包括呼吸作用在内的碳水化合物代谢,是几种杀真菌剂的众所周知的靶标。通过我们的研究,我们想证明代谢物谱可用于根据作用方式对杀真菌剂进行分类,并且即使生长速率没有明显降低,关键代谢物的浓度也会发生变化。
我们使酵母白色念珠菌和酿酒酵母暴露于电子传递链抑制剂和已知与渗透胁迫防御途径相互作用的化合物中。甘油和乙醇被选为葡萄糖分解代谢分支的关键代谢物。不仅在激活渗透胁迫反应时观察到甘油浓度增加,而且在电子传递链被抑制时也观察到甘油浓度增加,而仅当呼吸途径被阻断时才观察到乙醇水平升高。
用抗真菌化合物处理酵母白色念珠菌和酿酒酵母导致代谢途径的重定向,这可以通过定量测定两种代谢物乙醇和甘油来跟踪。只有两种浓度谱的组合才能清楚地区分呼吸链抑制剂和对渗透胁迫反应途径的影响。
将代谢物的数量扩展到被处理化合物的测试生物的综合定量代谢谱,可以成为杀真菌剂研究的另一种工具,从而可以检测作用于真菌的化合物,并且阐明作用方式。