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首页> 外文期刊>Applied Microbiology and Biotechnology >Improving ethanol yields in sugarcane molasses fermentation by engineering the high osmolarity glycerol pathway while maintaining osmotolerance in Saccharomyces cerevisiae
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Improving ethanol yields in sugarcane molasses fermentation by engineering the high osmolarity glycerol pathway while maintaining osmotolerance in Saccharomyces cerevisiae

机译:通过工程高渗透甘油途径改善甘蔗糖蜜发酵的乙醇产量,同时保持酿酒酵母中的渗透压术

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The ever-increasing demand of energy has made it imperative to increase the production of renewable fuels like ethanol. Many studies have reported increase in ethanol production by reducing fermentation by-products like glycerol. Deletion of structural genes like gpd1and gpd2 leads to an increase in ethanol by reducing glycerol; however, it makes the yeast osmosensitive that is not desirable for industrial strains. In this study, genes in the HOG pathway which regulates glycerol synthesis in Saccharomyces cerevisiae were targeted for improving ethanol yields in fermentation of sugarcane molasses. Deletion strains of ssk1, hot1, and smp1 were tested and they did not show osmosensitivity. ssk1 and smp1 recombinant strains showed consistent improved ethanol yields. As a result, a double-deletion strain, ssk1smp1, was also constructed, which showed a synergistic effect leading to 6% increase in ethanol yield and 35% decrease in glycerol yield. It was also observed that there was a significant decrease in acetic acid yields of all the recombinant strains. Overall, the study demonstrates an industrially viable technique of engineering the HOG pathway resulting in decrease of glycerol and no loss of osmotolerance. These S. cerevisiae strains showed a significant increase in ethanol yields.
机译:越来越多的能量需求使得增加了乙醇等可再生燃料的生产。许多研究报告通过减少甘油等发酵产物的乙醇生产增加。缺失GPD1和GPD2等结构基因导致通过还原甘油增加乙醇;然而,它使酵母渗透溶剂是工业菌株不希望的。在本研究中,调节酿酒酵母中甘油合成的猪途径中的基因靶向改善甘蔗糖蜜发酵的乙醇产率。测试了SSK1,HOT1和SMP1的删除株,它们没有显示出渗透压。 SSK1和SMP1重组菌株显示出一致的改善乙醇产率。结果,还构建了一种双缺失菌株SSK1SMP1,其表明乙醇产率的增加6%,甘油产率降低35%。还观察到所有重组菌株的乙酸产率显着降低。总体而言,该研究表明,工业上可行的工程技术猪途径导致甘油的减少,不会丧失OsMotolerance。这些S.酿酒酵母菌株显示出乙醇产率显着增加。

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