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Efficient direct ethanol production from cellulose by cellulase- and cellodextrin transporter-co-expressing Saccharomyces cerevisiae

机译:通过纤维素酶和纤维糊精转运蛋白共表达啤酒酵母从纤维素中直接生产乙醇

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摘要

Efficient degradation of cellulosic biomass requires the synergistic action of the cellulolytic enzymes endoglucanase, cellobiohydrolase, and β-glucosidase. Although there are many reports describing consolidation of hydrolysis and fermentation steps using recombinant Saccharomyces cerevisiae that express cellulolytic enzymes, the efficiency of cellulose degradation has not been sufficiently improved. Although the yeast S. cerevisiae cannot take up cellooligosaccharide, some fungi can take up and assimilate cellooligosaccharide through a cellodextrin transporter. In this study, a S. cerevisiae strain co-expressing genes for several cell surface display cellulases and the cellodextrin transporter was constructed for the purpose of improving the efficiency of direct ethanol fermentation from phosphoric acid swollen cellulose (PASC). The cellulase/cellodextrin transporter-coexpressing strain produced 1.7-fold more ethanol (4.3 g/L) from PASC during a 72-h fermentation than did a strain expressing cellulase only (2.5 g/L). Direct ethanol production from PASC by the recombinant S. cerevisiae strain was improved by co-expression of cellulase display and cellodextrin transporter genes. These results suggest that cellulase- and cellodextrin transporter-co-expressing S. cerevisiae could be a promising technology for efficient direct ethanol production from cellulose.
机译:纤维素生物质的有效降解需要纤维素分解酶内切葡聚糖酶,纤维二糖水解酶和β-葡萄糖苷酶的协同作用。尽管有许多报道描述了使用表达纤维素分解酶的酿酒酵母合并水解和发酵步骤的方法,但是纤维素降解的效率还没有得到充分提高。尽管酿酒酵母不能吸收纤维寡糖,但某些真菌可以通过纤维糊精转运蛋白吸收和吸收纤维寡糖。在这项研究中,啤酒酵母菌株共表达几个细胞表面展示纤维素酶和纤维糊精转运蛋白的基因,目的是提高磷酸溶胀的纤维素(PASC)直接乙醇发酵的效率。与仅表达纤维素酶的菌株(2.5 g / L)相比,在72小时的发酵过程中,纤维素酶/纤维糊精转运蛋白共表达菌株从PASC产生的乙醇(4.3 g / L)多1.7倍。通过纤维素酶展示和纤维糊精转运蛋白基因的共表达,重组酿酒酵母菌株从PASC直接生产乙醇得到了改善。这些结果表明,纤维素酶和纤维糊精转运蛋白共表达的酿酒酵母可能是从纤维素有效地直接生产乙醇的有前途的技术。

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