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首页> 外文期刊>Applied and Environmental Microbiology >Deletion of FPS1, Encoding Aquaglyceroporin Fps1p, Improves Xylose Fermentation by Engineered Saccharomyces cerevisiae
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Deletion of FPS1, Encoding Aquaglyceroporin Fps1p, Improves Xylose Fermentation by Engineered Saccharomyces cerevisiae

机译:FPS1的删除,编码水甘油糖蛋白Fps1p,通过工程酿酒酵母改善木糖发酵。

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Accumulation of xylitol in xylose fermentation with engineered Saccharomyces cerevisiae presents a major problem that hampers economically feasible production of biofuels from cellulosic plant biomass. In particular, substantial production of xylitol due to unbalanced redox cofactor usage by xylose reductase (XR) and xylitol dehydrogenase (XDH) leads to low yields of ethanol. While previous research focused on manipulating intracellular enzymatic reactions to improve xylose metabolism, this study demonstrated a new strategy to reduce xylitol formation and increase carbon flux toward target products by controlling the process of xylitol secretion. Using xylitol-producing S. cerevisiae strains expressing XR only, we determined the role of aquaglyceroporin Fps1p in xylitol export by characterizing extracellular and intracellular xylitol. In addition, when FPS1 was deleted in a poorly xylose-fermenting strain with unbalanced XR and XDH activities, the xylitol yield was decreased by 71% and the ethanol yield was substantially increased by nearly four times. Experiments with our optimized xylose-fermenting strain also showed that FPS1 deletion reduced xylitol production by 21% to 30% and increased ethanol yields by 3% to 10% under various fermentation conditions. Deletion of FPS1 decreased the xylose consumption rate under anaerobic conditions, but the effect was not significant in fermentation at high cell density. Deletion of FPS1 resulted in higher intracellular xylitol concentrations but did not significantly change the intracellular NAD+/NADH ratio in xylose-fermenting strains. The results demonstrate that Fps1p is involved in xylitol export in S. cerevisiae and present a new gene deletion target, FPS1, and a mechanism different from those previously reported to engineer yeast for improved xylose fermentation.
机译:用工程酿酒酵母在木糖发酵中木糖醇的积累提出了一个主要问题,这阻碍了从纤维素植物生物量的经济上可行的生物燃料生产。特别地,由于木糖还原酶(XR)和木糖醇脱氢酶(XDH)对氧化还原辅因子的不平衡使用导致木糖醇的大量生产导致乙醇的低产率。虽然先前的研究集中于操纵细胞内酶促反应以改善木糖代谢,但这项研究表明,通过控制木糖醇的分泌过程,可以减少木糖醇的形成并增加向目标产物的碳通量的新策略。使用仅表达XR的生产木糖醇的酿酒酵母菌株,我们通过表征细胞外和细胞内木糖醇的含量,确定了水甘油卟啉Fps1p在木糖醇出口中的作用。另外,当在具有不平衡的XR和XDH活性的木糖发酵差的菌株中缺失FPS1时,木糖醇收率降低了71%,乙醇收率实际上提高了近四倍。用我们优化的木糖发酵菌株进行的实验还表明,在各种发酵条件下,FPS1缺失可使木糖醇产量降低21%至30%,乙醇产量提高3%至10%。 FPS1的删除降低了厌氧条件下的木糖消耗率,但在高细胞密度发酵中效果不明显。 FPS1的删除导致较高的细胞内木糖醇浓度,但并未显着改变木糖发酵菌株中细胞内NAD + / NADH的比例。结果表明Fps1p参与酿酒酵母中的木糖醇出口,并提供了一个新的基因缺失靶标FPS1,其机制与先前报道的改造酵母以改善木糖发酵的机制不同。

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