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首页> 外文期刊>Energy Conversion & Management >Cell surface engineering of Saccharomyces cerevisiae for simultaneous valorization of corn cob and cheese whey via ethanol production
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Cell surface engineering of Saccharomyces cerevisiae for simultaneous valorization of corn cob and cheese whey via ethanol production

机译:通过乙醇生产同时储存玉米棒和奶酪乳清的酿酒酵母细胞表面工程

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摘要

The viability of 2nd generation bioethanol processes is dependent on achieving high ethanol titers, which requires the use of high solid loadings that will negatively affect the fermentative microorganism besides increasing enzyme-associated costs. To solve this, and also problems of feedstock availability, lignocellulosic biomass can be mixed with dairy by-products to increase carbon content. In this study, industrial strains of Saccharomyces cerevisiae, with improved thermotolerance and stress resistance, were engineered for the cell surface display of cellulolytic enzymes and were evaluated in consolidated bioprocessing of cellulose. Additionally, beta-galactosidase was also displayed to enable lactose consumption, resulting in high ethanol titers (50 g/L) from the simultaneous use of cheese whey and pretreated corn cob as substrate. The multi-feedstock valorization approach together with this lactose-consuming cellulolytic yeast allowed the reduction on materials costs by 60% with a 2.5-fold increase in the annual ethanol production, therefore contributing to the establishment of economic viable ethanol processes.
机译:第2代生物乙醇方法的可行性取决于实现高乙醇滴度,这需要使用除了增加酶相关成本之外的发酵微生物的高固体载体。为了解决这一点,还可以将木质纤维素生物量与乳制品副产品混合以增加碳含量的情况下。在该研究中,为纤维素分解酶的细胞表面显示器设计了酿酒酵母的产业菌株,其具有改善的热能和抗应力性和抗应力性。另外,还显示出β-半乳糖苷酶以使乳糖消耗能够,从同时使用乳酪乳清和预处理的玉米COB作为基质的高乙醇滴度(& 50g / l)。多原料储存方法与这种乳糖消耗的纤维素分解酵母一起允许材料成本降低60%,每年乙醇产量增加2.5倍,因此有助于建立经济活性乙醇过程。

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