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Optimization of CDT-1 and XYL1 Expression for Balanced Co-Production of Ethanol and Xylitol from Cellobiose and Xylose by Engineered Saccharomyces cerevisiae

机译:工程酿酒酵母从纤维素二糖和木糖中平衡生产乙醇和木糖醇的CDT-1和XYL1表达的优化

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摘要

Production of ethanol and xylitol from lignocellulosic hydrolysates is an alternative to the traditional production of ethanol in utilizing biomass. However, the conversion efficiency of xylose to xylitol is restricted by glucose repression, causing a low xylitol titer. To this end, we cloned genes CDT-1 (encoding a cellodextrin transporter) and gh1-1 (encoding an intracellular β-glucosidase) from Neurospora crassa and XYL1 (encoding a xylose reductase that converts xylose into xylitol) from Scheffersomyces stipitis into Saccharomyces cerevisiae, enabling simultaneous production of ethanol and xylitol from a mixture of cellobiose and xylose (main components of lignocellulosic hydrolysates). We further optimized the expression levels of CDT-1 and XYL1 by manipulating their promoters and copy-numbers, and constructed an engineered S. cerevisiae strain (carrying one copy of PGK1p-CDT1 and two copies of TDH3p-XYL1), which showed an 85.7% increase in xylitol production from the mixture of cellobiose and xylose than that from the mixture of glucose and xylose. Thus, we achieved a balanced co-fermentation of cellobiose (0.165 g/L/h) and xylose (0.162 g/L/h) at similar rates to co-produce ethanol (0.36 g/g) and xylitol (1.00 g/g).
机译:由木质纤维素水解产物生产乙醇和木糖醇是利用生物质的传统乙醇生产的替代方法。但是,木糖向木糖醇的转化效率受到葡萄糖阻抑的限制,导致木糖醇效价低。为此,我们从神经孢子虫中克隆了CDP-1(编码纤维糊精转运蛋白)和gh1-1(编码细胞内β-葡萄糖苷酶)和XYL1(编码将木糖转化为木糖醇的木糖还原酶)的基因。 ,可从纤维二糖和木糖(木质纤维素水解产物的主要成分)的混合物中同时生产乙醇和木糖醇。我们通过操纵其启动子和拷贝数进一步优化了CDT-1和XYL1的表达水平,并构建了工程化的酿酒酵母菌株(携带一个拷贝的PGK1p-CDT1和两个拷贝的TDH3p-XYL1),显示85.7。纤维二糖和木糖的混合物产生的木糖醇产量比葡萄糖和木糖的混合物产生的木糖醇增加%。因此,我们以相似的速率实现了纤维二糖(0.165 g / L / h)和木糖(0.162 g / L / h)的平衡共发酵,以共同生产乙醇(0.36 g / g)和木糖醇(1.00 g / g) )。

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