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首页> 外文期刊>Metabolic engineering >Energetic benefits and rapid cellobiose fermentation by Saccharomyces cerevisiae expressing cellobiose phosphorylase and mutant cellodextrin transporters.
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Energetic benefits and rapid cellobiose fermentation by Saccharomyces cerevisiae expressing cellobiose phosphorylase and mutant cellodextrin transporters.

机译:表达纤维二糖磷酸化酶和突变型纤维糊精转运蛋白的酿酒酵母的能量优势和快速的纤维二糖发酵。

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摘要

Anaerobic bacteria assimilate cellodextrins from plant biomass by using a phosphorolytic pathway to generate glucose intermediates for growth. The yeast Saccharomyces cerevisiae can also be engineered to ferment cellobiose to ethanol using a cellodextrin transporter and a phosphorolytic pathway. However, strains with an intracellular cellobiose phosphorylase initially fermented cellobiose slowly relative to a strain employing an intracellular β-glucosidase. Fermentations by the phosphorolytic strains were greatly improved by using cellodextrin transporters with elevated rates of cellobiose transport. Furthermore under stress conditions, these phosphorolytic strains had higher biomass and ethanol yields compared to hydrolytic strains. These observations suggest that, although cellobiose phosphorolysis has energetic advantages, phosphorolytic strains are limited by the thermodynamics of cellobiose phosphorolysis (ΔG°=+3.6kJmol(-1)). A thermodynamic "push" from the reaction immediately upstream (transport) is therefore likely to be necessary to achieve high fermentation rates and energetic benefits of phosphorolysis pathways in engineered S. cerevisiae.
机译:厌氧细菌通过使用磷酸分解途径产生葡萄糖中间体来生长,从而从植物生物质中吸收纤维糊精。还可以使用纤维糊精转运蛋白和磷酸化途径将酵母酿酒酵母(Saccharomyces cerevisiae)改造为将纤维二糖发酵为乙醇。然而,相对于使用细胞内β-葡萄糖苷酶的菌株,具有细胞内纤维二糖磷酸化酶的菌株最初缓慢发酵纤维二糖。通过使用纤维二糖转运速率提高的纤维糊精转运蛋白,可以大大改善磷酸解菌株的发酵。此外,在胁迫条件下,与水解菌株相比,这些磷解菌株具有更高的生物量和乙醇产率。这些观察结果表明,尽管纤维二糖磷酸水解具有能量优势,但是磷酸二氢解菌株受到纤维二糖磷酸水解的热力学的限制(ΔG°= + 3.6kJmol(-1))。因此,在工程改造的酿酒酵母中,可能需要从上游直接反应(传输)进行热力学“推动”,以实现高发酵速率和磷酸分解途径的能量优势。

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