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Fermentation performance of engineered and evolved xylose-fermenting Saccharomyces cerevisiae strains

机译:工程化和进化木糖发酵酿酒酵母菌株的发酵性能

摘要

Lignocellulose hydrolysate is an abundant substrate for bioethanol production. The ideal microorganism for such a fermentation process should combine rapid and efficient conversion of the available carbon sources to ethanol with high tolerance to ethanol and to inhibitory components in the hydrolysate. A particular biological problem are the pentoses, which are not naturally metabolized by the main industrial ethanol producer Saccharomyces cerevisiae. Several recombinant, mutated, and evolved xylose fermenting S. cerevisiae strains have been developed recently. We compare here the fermentation performance and robustness of eight recombinant strains and two evolved populations on glucose/xylose mixtures in defined and lignocellulose hydrolysate-containing medium. Generally, the polyploid industrial strains depleted xylose faster and were more resistant to the hydrolysate than the laboratory strains. The industrial strains accumulated, however, up to 30% more xylitol and therefore produced less ethanol than the haploid strains. The three most attractive strains were the mutated and selected, extremely rapid xylose consumer TMB3400, the evolved C5 strain with the highest achieved ethanol titer, and the engineered industrial F12 strain with by far the highest robustness to the lignocellulosic hydrolysate. (C) 2004 Wiley Periodicals, Inc.
机译:木质纤维素水解产物是生物乙醇生产的丰富底物。用于这种发酵过程的理想微生物应将可利用的碳源快速有效地转化为乙醇,并对乙醇和水解产物中的抑制成分具有高度耐受性。特定的生物学问题是戊糖,戊糖不能被主要的工业乙醇生产商酿酒酵母自然代谢。最近已经开发了几种重组的,突变的和进化的木糖发酵酿酒酵母菌株。我们在这里比较了八种重组菌株和两个进化群体在确定的和含木质纤维素水解产物的培养基中的葡萄糖/木糖混合物的发酵性能和鲁棒性。通常,与实验室菌株相比,多倍体工业菌株消耗木糖的速度更快,并且对水解产物的抵抗力更高。但是,工业菌株积累的木糖醇最多增加30%,因此产生的乙醇少于单倍体菌株。三种最具吸引力的菌株是突变和选择的,极快的木糖消费者TMB3400,进化后的C5菌株,具有最高的乙醇滴度,以及工程化的工业F12菌株,对木质纤维素水解产物的耐受性最高。 (C)2004年Wiley Periodicals,Inc.

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