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首页> 外文期刊>BMC Biotechnology >Fine-tuning of NADH oxidase decreases byproduct accumulation in respiration deficient xylose metabolic Saccharomyces cerevisiae
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Fine-tuning of NADH oxidase decreases byproduct accumulation in respiration deficient xylose metabolic Saccharomyces cerevisiae

机译:NADH氧化酶的微调减少了呼吸不足的木糖代谢酿酒酵母中副产物的积累

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Background Efficiently utilizing all available carbon from lignocellulosic feedstock presents a major barrier to the production of economically feasible biofuel. Previously, to enable xylose utilization, we introduced a cofactor-dependent xylose reductase (XR) and xylitol dehydrogenase (XDH) pathway, or a cofactor-independent xylose isomerase (XI) pathway, into Saccharomyces cerevisiae . The resulting strains metabolized xylose with high efficiency. However, in both pathway recombinant strains, the cofactor imbalance caused accumulation of the byproducts glycerol and/or xylitol and reduced the ethanol production efficiency. Results In this study, we introduced NADH oxidase from Lactococcus lactis into both XI and XR-XDH pathway recombinant strains. To reduce byproduct accumulation while maintaining xylose metabolism, we optimized the expression level of NADH oxidase by comparing its expression under the control of different promoters and plasmids. In recombinant XI strains, NADH oxidase was expressed at different levels, regulated by the GPD2 promoter or TEF1 promoter in the 2?μ plasmid. The expression under the control of GPD2 promoter decreased glycerol production by 84% and increased the ethanol yield and specific growth rate by 8% and 12%, respectively. In contrast, in the recombinant XR-XDH strains, such expression level was not efficient enough to decrease the byproduct accumulation. Therefore, higher NADH oxidase expression levels were tested. In the strain expressing NADH oxidase under the control of the TEF1 promoter in the centromeric plasmids, xylitol and glycerol production were reduced by 60% and 83%, respectively, without significantly affecting xylose consumption. Conclusions By fine-tuning NADH oxidase expression, we decreased the glycerol or/and xylitol production in both recombinant XI and XR-XDH xylose-metabolizing yeast strains. The optimal NADH oxidase expression levels depend on metabolic pathways. Similar cofactor engineering strategies could maximize the production of other redox dependent metabolites.
机译:背景技术有效地利用来自木质纤维素原料的所有可用碳对生产经济上可行的生物燃料构成了主要障碍。以前,为了能够利用木糖,我们在酿酒酵母中引入了辅因子依赖性木糖还原酶(XR)和木糖醇脱氢酶(XDH)途径,或辅因子非依赖性木糖异构酶(XI)途径。所得菌株高效地代谢木糖。然而,在两种途径的重组菌株中,辅因子失衡引起副产物甘油和/或木糖醇的积累并降低了乙醇生产效率。结果在这项研究中,我们将乳酸乳球菌的NADH氧化酶引入到XI和XR-XDH途径重组菌株中。为了减少副产物积累,同时保持木糖代谢,我们通过比较在不同启动子和质粒控制下的NADH氧化酶的表达来优化其表达水平。在重组XI菌株中,NADH氧化酶以不同水平表达,受2?μ质粒中的GPD2启动子或TEF1启动子调控。在GPD2启动子控制下的表达使甘油产量降低了84%,乙醇产量和比增长率分别提高了8%和12%。相反,在重组XR-XDH菌株中,这种表达水平不足以减少副产物的积累。因此,测试了更高的NADH氧化酶表达水平。在着丝粒质粒中,在TEF1启动子的控制下表达NADH氧化酶的菌株,木糖醇和甘油的产量分别降低了60%和83%,而没有显着影响木糖的消耗。结论通过微调NADH氧化酶的表达,我们降低了重组XI和XR-XDH木糖代谢酵母菌株中甘油或/和木糖醇的产生。最佳的NADH氧化酶表达水平取决于代谢途径。类似的辅助因子工程设计策略可以使其他氧化还原依赖性代谢产物的产生最大化。

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