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首页> 外文期刊>Metabolic engineering >High expression of XYL2 coding for xylitol dehydrogenase is necessary for efficient xylose fermentation by engineered Saccharomyces cerevisiae.
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High expression of XYL2 coding for xylitol dehydrogenase is necessary for efficient xylose fermentation by engineered Saccharomyces cerevisiae.

机译:通过酿酒酵母进行有效的木糖发酵,编码木糖醇脱氢酶的XYL2的高表达是必需的。

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The traditional ethanologenic yeast Saccharomyces cerevisiae cannot metabolize xylose, which is an abundant sugar in non-crop plants. Engineering this yeast for a practicable fermentation of xylose will therefore improve the economics of bioconversion for the production of fuels and chemicals such as ethanol. One of the most widely employed strategies is to express XYL1, XYL2, and XYL3 genes derived from Scheffersomyces stipitis (formerly Pichia stiptis) in S. cerevisiae. However, the resulting engineered strains have been reported to exhibit large variations in xylitol accumulation and ethanol yields, generating many hypotheses and arguments for elucidating these phenomena. Here we demonstrate that low expression levels of the XYL2 gene, coding for xylitol dehydrogenase (XDH), is a major bottleneck in efficient xylose fermentation. Through an inverse metabolic engineering approach using a genomic library of S. cerevisiae, XYL2 was identified as an overexpression target for improving xylose metabolism. Specifically, we performed serial subculture experiments after transforming a genomic library of wild type S. cerevisiae into an engineered strain harboring integrated copies of XYL1, XYL2 and XYL3. Interestingly, the isolated plasmids from efficient xylose-fermenting transformants contained XYL2. This suggests that the integrated XYL2 migrated into a multi-copy plasmid through homologous recombination. It was also found that additional overexpression of XYL2 under the control of strong constitutive promoters in a xylose-fermenting strain not only reduced xylitol accumulation, but also increased ethanol yields. As the expression levels of XYL2 increased, the ethanol yields gradually improved from 0.1 to 0.3g ethanol/g xylose, while the xylitol yields significantly decreased from 0.4 to 0.1g xylitol/g xylose. These results suggest that strong expression of XYL2 is a necessary condition for developing efficient xylose-fermenting strains.
机译:传统的产乙醇酵母啤酒酵母不能代谢木糖,木糖是非农作物中的丰富糖分。因此,对这种酵母进行木糖实际发酵的工程设计将提高生物转化用于生产燃料和化学品(例如乙醇)的经济性。使用最广泛的策略之一是在酿酒酵母中表达源自裂殖酵母(Scheffersomyces stipitis)(原称毕赤酵母)的XYL1,XYL2和XYL3基因。然而,据报道,所得的工程菌株在木糖醇积累和乙醇产量方面表现出很大的差异,从而产生了许多假设和论据来阐明这些现象。在这里,我们证明了低表达水平的XYL2基因,编码木糖醇脱氢酶(XDH),是有效木糖发酵的主要瓶颈。通过使用酿酒酵母基因组文库的逆代谢工程方法,XYL2被鉴定为用于改善木糖代谢的过表达靶标。具体而言,我们将野生型酿酒酵母的基因组文库转化为包含XYL1,XYL2和XYL3完整拷贝的工程菌株后,进行了系列继代培养实验。有趣的是,从有效的木糖发酵转化体分离的质粒含有XYL2。这表明整合的XYL2通过同源重组迁移到多拷贝质粒中。还发现在木糖发酵菌株中在强组成型启动子的控制下,XYL2的额外过表达不仅减少了木糖醇的积累,而且增加了乙醇的产率。随着XYL2表达水平的提高,乙醇产量从0.1克乙醇/克木糖逐渐提高到0.3克乙醇,而木糖醇产量从0.4克/克木糖醇/克木糖显着降低到0.1克。这些结果表明,XYL2的强表达是开发有效的木糖发酵菌株的必要条件。

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