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首页> 外文期刊>Bioresource Technology: Biomass, Bioenergy, Biowastes, Conversion Technologies, Biotransformations, Production Technologies >Fermentation of xylose/glucose mixtures by metabolically engineered Saccharomyces cerevisiae strains expressing XYL1 and XYL2 from Pichia stipitis with and without overexpression of TAL1
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Fermentation of xylose/glucose mixtures by metabolically engineered Saccharomyces cerevisiae strains expressing XYL1 and XYL2 from Pichia stipitis with and without overexpression of TAL1

机译:代谢工程改造的啤酒酵母表达XYL1和XYL2的酿酒酵母菌株发酵木糖/葡萄糖混合物的实验

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Anaerobic xylose conversion by two metabolically engineered Saccharomyces cerevisiae strains in the presence and absence of simultaneous glucose metabolism was investigated. One strain expressed XYL1 encoding xylose reductase (XR) and XYL2 encoding xylitol dehydrogenase (XDH) from Pichia stipitis, whereas the other additionally overexpressed TAL1 encoding transaldolase (TAL). Both strains formed xylitol as the main product of xylose metabolism. The TAL1-overexpressing strain gave a higher biomass yield and produced less carbon dioxide and somewhat less xylitol compared with the XYL1+XYL2 strain, indicating that TAL limited xylose metabolism in the latter. The ethanol yield was similar with both strains. The simultaneous metabolism of glucose enhanced xylose metabolism by causing a higher rate of xylose consumption and less xylitol and xyulose excretion, compared with xylose metabolism alone. Simultaneous xylose and glucose metabolism affected the growth rate negatively compared with growth on glucose alone. Additionally, comparison of the specified growth rate of the host strain, a reference strain with a plasmid without XYL1, XYL2 or TAL1, the XYL1+XYL2 strain and the XYL1+XYL2+ATL1 strain on glucose, showed that the presence of plasmids and expression of genes on the plasmids caused a decrease in specific growth rates related to the number of plasmids present and the number of structural genes on the plasmids. Both strains exhibited high XR and XDH activities in batch cultivation, but rapidly lost the activities in chemostat cultivation. Limitations in the xylose-metabolising pathway and further improvement of recombinant xylose-metabolising S. cerevisiae are discussed.
机译:研究了两种代谢工程酿酒酵母菌株在存在和不存在同时葡萄糖代谢的情况下的厌氧木糖转化率。一株菌株表达了来自毕赤酵母的XYL1编码木糖还原酶(XR)和XYL2编码木糖醇脱氢酶(XDH),而另一株过表达TAL1编码转醛缩酶(TAL)。两种菌株均形成木糖醇作为木糖代谢的主要产物。与XYL1 + XYL2菌株相比,过表达TAL1的菌株产生了更高的生物量产量,并产生了更少的二氧化碳和更少的木糖醇,表明TAL限制了后者的木糖代谢。两种菌株的乙醇产率相似。与单独的木糖代谢相比,葡萄糖的同时代谢通过引起更高的木糖消耗速率以及更少的木糖醇和木糖排泄来增强木糖代谢。与仅葡萄糖生长相比,木糖和葡萄糖同时代谢对生长速率产生负面影响。此外,通过比较宿主菌株的指定生长速率,具有不含XYL1,XYL2或TAL1质粒的参考菌株,XYL1 + XYL2菌株和XYL1 + XYL2 + ATL1菌株在葡萄糖上的生长,可以看出质粒的存在和表达质粒上基因的突变导致特异性生长速率的下降,该速率与存在的质粒数量和质粒上的结构基因数量有关。两种菌株在分批培养中均表现出较高的XR和XDH活性,但在恒化器培养中迅速丧失了活性。讨论了木糖代谢途径的局限性和重组木糖代谢酿酒酵母的进一步改进。

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