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首页> 外文期刊>Journal of industrial microbiology & biotechnology >Co-fermentation of xylose and cellobiose by an engineered Saccharomyces cerevisiae.
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Co-fermentation of xylose and cellobiose by an engineered Saccharomyces cerevisiae.

机译:工程酿酒酵母共同发酵木糖和纤维二糖。

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摘要

We have integrated and coordinately expressed in Saccharomyces cerevisiae a xylose isomerase and cellobiose phosphorylase from Ruminococcus flavefaciens that enables fermentation of glucose, xylose, and cellobiose under completely anaerobic conditions. The native xylose isomerase was active in cell-free extracts from yeast transformants containing a single integrated copy of the gene. We improved the activity of the enzyme and its affinity for xylose by modifications to the 5'-end of the gene, site-directed mutagenesis, and codon optimization. The improved enzyme, designated RfCO*, demonstrated a 4.8-fold increase in activity compared to the native xylose isomerase, with a Km for xylose of 66.7 mM and a specific activity of 1.41 micro mol/min/mg. In comparison, the native xylose isomerase was found to have a Km for xylose of 117.1 mM and a specific activity of 0.29 micro mol/min/mg. The coordinate over-expression of RfCO* along with cellobiose phosphorylase, cellobiose transporters, the endogenous genes GAL2 and XKS1, and disruption of the native PHO13 and GRE3 genes allowed the fermentation of glucose, xylose, and cellobiose under completely anaerobic conditions. Interestingly, this strain was unable to utilize xylose or cellobiose as a sole carbon source for growth under anaerobic conditions, thus minimizing yield loss to biomass formation and maximizing ethanol yield during their fermentation.
机译:我们已经在酿酒酵母中整合并协调表达了黄曲霉球菌的木糖异构酶和纤维二糖磷酸化酶,可在完全厌氧条件下发酵葡萄糖,木糖和纤维二糖。天然木糖异构酶在含有单个整合拷贝基因的酵母转化子的无细胞提取物中具有活性。我们通过修饰基因的5'端,定点诱变和密码子优化,提高了酶的活性及其对木糖的亲和力。与天然木糖异构酶相比,这种改良的酶称为RfCO *,其活性提高了4.8倍,木糖的K m 为66.7 mM,比活性为1.41 micro mol / min /毫克相比之下,发现天然木糖异构酶的木糖K m 为117.1mM,比活性为0.29μmol/ min / mg。 RfCO *与纤维二糖磷酸化酶,纤维二糖转运蛋白,内源基因GAL2和XKS1的协同过度表达,以及天然PHO13和GRE3基因的破坏,使得葡萄糖,木糖和纤维二糖在完全厌氧条件下发酵。有趣的是,该菌株不能利用木糖或纤维二糖作为唯一的碳源在厌氧条件下生长,从而使发酵过程中生物质形成的产量损失最小,乙醇产量最大化。

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