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Engineering of an endogenous hexose transporter into a specific D-xylose transporter facilitates glucose-xylose co-consumption in Saccharomyces cerevisiae

机译:将内源性己糖转运蛋白工程化为特定的D-木糖转运蛋白有助于酿酒酵母中葡萄糖-木糖的共同消耗

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Background Engineering of Saccharomyces cerevisiae for the simultaneous utilization of hexose and pentose sugars is vital for cost-efficient cellulosic bioethanol production. This yeast lacks specific pentose transporters and depends on endogenous hexose transporters for low affinity pentose uptake. Consequently, engineered xylose-fermenting yeast strains first utilize D-glucose before D-xylose can be transported and metabolized. Results We have used an evolutionary engineering approach that depends on a quadruple hexokinase deletion xylose-fermenting S. cerevisiae strain to select for growth on D-xylose in the presence of high D-glucose concentrations. This resulted in D-glucose-tolerant growth of the yeast of D-xylose. This could be attributed to mutations at N367 in the endogenous chimeric Hxt36 transporter, causing a defect in D-glucose transport while still allowing specific uptake of D-xylose. The Hxt36-N367A variant transports D-xylose with a high rate and improved affinity, enabling the efficient co-consumption of D-glucose and D-xylose. Conclusions Engineering of yeast endogenous hexose transporters provides an effective strategy to construct glucose-insensitive xylose transporters that are well integrated in the carbon metabolism regulatory network, and that can be used for efficient lignocellulosic bioethanol production.
机译:背景技术酿酒酵母用于同时利用己糖和戊糖的工程对于生产具有成本效益的纤维素生物乙醇至关重要。该酵母缺乏特异性戊糖转运蛋白,并且依赖内源性己糖转运蛋白来吸收低亲和力的戊糖。因此,工程木糖发酵酵母菌株首先利用D-葡萄糖,然后才能运输和代谢D-木糖。结果我们使用了一种进化工程学方法,该方法取决于在高D-葡萄糖浓度下在D-木糖上生长的四倍己糖激酶缺失木糖发酵酿酒酵母菌株。这导致D-木糖酵母的D-葡萄糖耐受性生长。这可能归因于内源嵌合Hxt36转运蛋白N367处的突变,导致D-葡萄糖转运的缺陷,同时仍允许D-木糖的特异性摄取。 Hxt36-N367A变体以高速率和更高的亲和力运输D-木糖,从而能够有效地共同消耗D-葡萄糖和D-木糖。结论酵母内源性己糖转运蛋白的工程化为构建葡萄糖不敏感的木糖转运蛋白提供了有效的策略,该葡萄糖不敏感的木糖转运蛋白已很好地整合在碳代谢调节网络中,可用于有效的木质纤维素生物乙醇生产。

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