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Cellular mechanisms contributing to multiple stress tolerance in Saccharomyces cerevisiae strains with potential use in high-temperature ethanol fermentation

机译:细胞机制有助于酿酒酵母菌株的多重胁迫耐受性,并可能在高温乙醇发酵中使用

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High-temperature ethanol fermentation has several benefits including a reduction in cooling cost, minimizing risk of bacterial contamination, and enabling simultaneous saccharification and fermentation. To achieve the efficient ethanol fermentation at high temperature, yeast strain that tolerates to not only high temperature but also the other stresses present during fermentation, e.g., ethanol, osmotic, and oxidative stresses, is indispensable. The C3253, C3751, and C4377 Saccharomyces cerevisiae strains, which have been previously isolated as thermotolerant yeasts, were found to be multiple stress-tolerant. In these strains, continuous expression of heat shock protein genes and intracellular trehalose accumulation were induced in response to stresses causing protein denaturation. Compared to the control strains, these multiple stress-tolerant strains displayed low intracellular reactive oxygen species levels and effective cell wall remodeling upon exposures to almost all stresses tested. In response to simultaneous multi-stress mimicking fermentation stress, cell wall remodeling and redox homeostasis seem to be the primary mechanisms required for protection against cell damage. Moreover, these strains showed better performances of ethanol production than the control strains at both optimal and high temperatures, suggesting their potential use in high-temperature ethanol fermentation.
机译:高温乙醇发酵具有几个好处,包括降低冷却成本,最大程度降低细菌污染的风险以及实现同时糖化和发酵。为了在高温下实现有效的乙醇发酵,必不可少的酵母菌株不仅要耐受高温,而且还要耐受发酵过程中存在的其他压力,例如乙醇,渗透压和氧化压力。发现以前作为耐热酵母分离的C3253,C3751和C4377酿酒酵母菌株具有多重耐压性。在这些菌株中,响应引起蛋白质变性的胁迫,诱导了热激蛋白基因的连续表达和细胞内海藻糖的积累。与对照菌株相比,这些多重耐胁迫菌株在暴露于几乎所有测试的胁迫下显示出较低的细胞内活性氧种类水平和有效的细胞壁重塑。为了响应模拟发酵压力的同时多重压力,细胞壁重塑和氧化还原稳态似乎是保护免受细胞损伤所需的主要机制。而且,这些菌株在最佳和高温下均显示出比对照菌株更好的乙醇生产性能,表明它们在高温乙醇发酵中的潜在用途。

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