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Metabolomic and 13C-metabolic flux analysis of a xylose-consuming Saccharomyces cerevisiae strain expressing xylose isomerase

机译:表达木糖异构酶的消耗木糖的酿酒酵母菌株的代谢组学和13C代谢通量分析

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摘要

Over the past two decades, significant progress has been made in the engineering of xylose-consuming Saccharomyces cerevisiae strains for production of lignocellulosic biofuels. However, the ethanol productivities achieved on xylose are still significantly lower than those observed on glucose for reasons that are not well understood. We have undertaken an analysis of central carbon metabolite pool sizes and metabolic fluxes on glucose and on xylose under aerobic and anaerobic conditions in a strain capable of rapid xylose assimilation via xylose isomerase in order to investigate factors that may limit the rate of xylose fermentation. We find that during xylose utilization the flux through the non-oxidative Pentose Phosphate Pathway (PPP) is high but the flux through the oxidative PPP is low, highlighting an advantage of the strain employed in this study. Furthermore, xylose fails to elicit the full carbon catabolite repression response that is characteristic of glucose fermentation in S. cerevisiae. We present indirect evidence that the incomplete activation of the fermentation program on xylose results in a bottleneck in lower glycolysis, leading to inefficient re-oxidation of NADH produced in glycolysis.
机译:在过去的二十年中,用于生产木质纤维素生物燃料的消耗木糖的酿酒酵母菌株的工程设计已经取得了重大进展。然而,由于尚未充分理解的原因,在木糖上获得的乙醇生产率仍显着低于在葡萄糖上观察到的乙醇生产率。为了研究可能限制木糖发酵速率的因素,我们在有氧和厌氧条件下对能够通过木糖异构酶快速吸收木糖的葡萄糖和木糖上的中央碳代谢物库大小和代谢通量进行了分析。我们发现,在木糖利用期间,通过非氧化磷酸戊糖途径(PPP)的通量较高,但是通过氧化PPP的通量较低,这突出表明了本研究中所用菌株的优势。此外,木糖不能引起酿酒酵母中葡萄糖发酵所特有的全碳分解代谢物阻遏反应。我们目前提供间接证据表明,木糖发酵程序的不完全激活会导致糖酵解降低的瓶颈,从而导致糖酵解产生的NADH的重新氧化效率低下。

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