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Co-fermentation using Recombinant Saccharomyces cerevisiae Yeast Strains Hyper-secreting Different Cellulases for the Production of Cellulosic Bioethanol

机译:使用酿酒酵母酵母菌株超分泌不同纤维素酶共同发酵生产纤维素生物乙醇

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摘要

To realize the economical production of ethanol and other bio-based chemicals from lignocellulosic biomass by consolidated bioprocessing (CBP), various cellulases from different sources were tested to improve the level of cellulase secretion in the yeast Saccharomyces cerevisiae by screening an optimal translational fusion partner (TFP) as both a secretion signal and fusion partner. Among them, four indispensable cellulases for cellulose hydrolysis, including Chaetomium thermophilum cellobiohydrolase (CtCBH1), Chrysosporium lucknowense cellobiohydrolase (ClCBH2), Trichoderma reesei endoglucanase (TrEGL2), and Saccharomycopsis fibuligera β-glucosidase (SfBGL1), were identified to be highly secreted in active form in yeast. Despite variability in the enzyme levels produced, each recombinant yeast could secrete approximately 0.6–2.0 g/L of cellulases into the fermentation broth. The synergistic effect of the mixed culture of the four strains expressing the essential cellulases with the insoluble substrate Avicel and several types of cellulosic biomass was demonstrated to be effective. Co-fermentation of these yeast strains produced approximately 14 g/L ethanol from the pre-treated rice straw containing 35 g/L glucan with 3-fold higher productivity than that of wild type yeast using a reduced amount of commercial cellulases. This process will contribute to the cost-effective production of bioenergy such as bioethanol and biochemicals from cellulosic biomass.
机译:为了通过整合生物加工(CBP)从木质纤维素生物质中经济地生产乙醇和其他生物基化学品,测试了来自不同来源的各种纤维素酶,以通过筛选最佳翻译融合伴侣来提高酿酒酵母中纤维素酶的分泌水平( TFP)作为分泌信号和融合伴侣。其中,鉴定了嗜热性毛毛球菌纤维二糖水解酶(CtCBH1),勒克氏梭菌纤维二糖水解酶(ClCBH2),里氏木霉内切葡聚糖酶(TrEGL2)和高糖酵母活性小球藻β-葡萄糖在酵母中形成。尽管产生的酶水平存在差异,每个重组酵母仍可以向发酵液中分泌约0.6–2.0μg / L的纤维素酶。已证明,表达必需纤维素酶的四种菌株与不溶性底物Avicel和几种纤维素生物质的混合培养物的协同作用是有效的。这些酵母菌株的共同发酵从含有35μg/ L葡聚糖的预处理稻草中产生了约14μg/ L乙醇,使用的商业纤维素酶量减少,其生产率是野生型酵母的3倍。此过程将有助于从纤维素生物质中经济高效地生产生物能源,例如生物乙醇和生物化学物质。

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