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Efficient, D-glucose insensitive, growth on D-xylose by an evolutionary engineered Saccharomyces cerevisiae strain

机译:高效,D-葡萄糖不敏感,D-木糖的生长通过进化工程化酿酒酵母菌菌株

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摘要

Optimizing D-xylose consumption in Saccharomyces cerevisiae is essential for cost-efficient cellulosic bioethanol production. An evolutionary engineering approach was used to elevate D-xylose consumption in a xylose-fermenting S. cerevisiae strain carrying the D-xylose-specific N367I mutation in the endogenous chimeric Hxt36 hexose transporter. This strain carries a quadruple hexokinase deletion that prevents glucose utilization, and allows for selection of improved growth rates on D-xylose in the presence of high D-glucose concentrations. Evolutionary engineering resulted in D-glucose-insensitive growth and consumption of D-xylose, which could be attributed to glucose insensitive D-xylose uptake via a novel chimeric Hxt37 N367I transporter that emerged from a fusion of the HXT36 and HXT7 genes, and a down regulation of a set of Hxt transporters that mediate glucose sensitive xylose transport. RNA sequencing revealed the downregulation of HXT1 and HXT2 which, together with the deletion of HXT7, resulted in a 21% reduction of the expression of all plasma membrane transporters genes. Morphological analysis showed an increased cell size and corresponding increased cell surface area of the evolved strain, which could be attributed to genome duplication. Mixed strain fermentation of the D-xylose-consuming strain DS71054-evo6 with the D-glucose consuming CEN.PK113-7D strain resulted in decreased residual sugar concentrations and improved ethanol production yields compared to a strain which sequentially consumes D-glucose and D-xylose.
机译:优化Saccharomyces酿酒酵母的D-木糖消耗对于具有成本效益的纤维素生物乙醇生产至关重要。一种进化工程方法用于在内源性嵌合HXT36六糖转运蛋白中携带携带D-木糖特异性N367I突变的木糖 - 发酵的D-木糖消耗。该菌株携带四重六酮酶缺失,其防止葡萄糖利用,并允许在高D-葡萄糖浓度存在下选择D-木糖的改善的生长速率。进化工程导致D-木糖的D-葡萄糖不敏感的生长和消耗,其可归因于通过新嵌合HXT37 N367I转运蛋白的葡萄糖不敏感D-木糖摄取,其从HXT36和HXT7基因的融合中出现,以及下降调节一组HXT转运蛋白介导葡萄糖敏感木糖输送。 RNA测序揭示了HXT1和HXT2的下调,其与HXT7的缺失一起导致所有血浆膜转运蛋白的表达减少21%。形态学分析显示出细胞尺寸增加和相应的进化菌株的细胞表面区域,这可能归因于基因组重复。 D-木糖消耗菌株DS71054-EVO6的混合应变发酵与D-葡萄糖消耗CEN.PK113-7D菌株导致残留糖浓度降低,与依次消耗D-葡萄糖和D-的菌株相比,改善乙醇产量。木糖。

著录项

  • 来源
    《FEMS Yeast Research》 |2019年第8期|共10页
  • 作者单位

    Univ Groningen Dept Mol Microbiol Groningen Biomol Sci &

    Biotechnol GBB Zernike Inst Adv Mat Nijenborgh 7 NL-9747 AG Groningen Netherlands;

    Univ Groningen Dept Mol Syst Biol Groningen Biomol Sci &

    Biotechnol GBB Zernike Inst Adv Mat Nijenborgh 4 NL-9747 AG Groningen Netherlands;

    Univ Groningen Dept Mol Microbiol Groningen Biomol Sci &

    Biotechnol GBB Zernike Inst Adv Mat Nijenborgh 7 NL-9747 AG Groningen Netherlands;

    DSM Biotechnol Ctr Alexander Fleminglaan 1 NL-2613 AX Delft Netherlands;

    Univ Groningen Dept Mol Microbiol Groningen Biomol Sci &

    Biotechnol GBB Zernike Inst Adv Mat Nijenborgh 7 NL-9747 AG Groningen Netherlands;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 微生物学;
  • 关键词

    Sugar transport; D-xylose transporter; bioethanol; co-fermentation; yeast;

    机译:糖转运;D-木糖转运蛋白;生物乙醇;共发酵;酵母;

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