Petitjean Marjorie, Teste Marie-Ange, François Jean M, Parrou Jean-Luc
From the Université de Toulouse; INSA, UPS, INP, LISBP, 135 Avenue de Rangueil, F-31077 Toulouse, France and INRA, UMR792 Ingénierie des Systèmes Biologiques et des Procédés and CNRS, UMR5504, F-31400 Toulouse, France.
From the Université de Toulouse; INSA, UPS, INP, LISBP, 135 Avenue de Rangueil, F-31077 Toulouse, France and INRA, UMR792 Ingénierie des Systèmes Biologiques et des Procédés and CNRS, UMR5504, F-31400 Toulouse, France
J Biol Chem. 2015 Jun 26;290(26):16177-90. doi: 10.1074/jbc.M115.653899. Epub 2015 May 1.
Trehalose is a stable disaccharide commonly found in nature, from bacteria to fungi and plants. For the model yeast Saccharomyces cerevisiae, claims that trehalose is a stress protectant were based indirectly either on correlation between accumulation of trehalose and high resistance to various stresses or on stress hypersensitivity of mutants deleted for TPS1, which encodes the first enzyme in trehalose biosynthetic pathway. Our goal was to investigate more directly which one, between trehalose and/or the Tps1 protein, may serve yeast cells to withstand exposure to stress. By employing an original strategy that combined the use of mutant strains expressing catalytically inactive variants of Tps1, with MAL(+) yeast strains able to accumulate trehalose from an exogenous supply, we bring for the first time unbiased proof that trehalose does not protect yeast cells from dying and that the stress-protecting role of trehalose in this eukaryotic model was largely overestimated. Conversely, we identified the Tps1 protein as a key player for yeast survival in response to temperature, oxidative, and desiccation stress. We also showed by robust RT-quantitative PCR and genetic interaction analysis that the role of Tps1 in thermotolerance is not dependent upon Hsf1-dependent transcription activity. Finally, our results revealed that the Tps1 protein is essential to maintain ATP levels during heat shock. Altogether, these findings supported the idea that Tps1 is endowed with a regulatory function in energy homeostasis, which is essential to withstand adverse conditions and maintain cellular integrity.
海藻糖是一种在自然界中常见的稳定二糖,存在于从细菌到真菌和植物等各类生物中。对于模式酵母酿酒酵母而言,认为海藻糖是一种应激保护剂的说法,要么间接基于海藻糖积累与对各种应激的高抗性之间的相关性,要么基于缺失TPS1(其编码海藻糖生物合成途径中的第一种酶)的突变体的应激超敏反应。我们的目标是更直接地研究在海藻糖和/或Tps1蛋白之间,哪一个可能帮助酵母细胞抵御应激。通过采用一种原创策略,即将表达催化无活性的Tps1变体的突变菌株与能够从外源供应中积累海藻糖的MAL(+)酵母菌株相结合,我们首次提供了无偏证据,证明海藻糖不能保护酵母细胞免于死亡,并且在这个真核模式中,海藻糖的应激保护作用被大大高估了。相反,我们确定Tps1蛋白是酵母在应对温度、氧化和干燥应激时生存的关键因素。我们还通过可靠的RT-定量PCR和遗传相互作用分析表明,Tps1在耐热性中的作用不依赖于Hsf1依赖的转录活性。最后,我们的结果表明,Tps1蛋白在热休克期间对于维持ATP水平至关重要。总之,这些发现支持了这样一种观点,即Tps1在能量稳态中具有调节功能,这对于抵御不利条件和维持细胞完整性至关重要。