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利用重组酿酒酵母的 NADPH 池生产木糖醇。

Exploiting the NADPH pool for xylitol production using recombinant Saccharomyces cerevisiae.

机构信息

DBT-ICT Centre for Energy Biosciences, Institute of Chemical Technology, Mumbai, India.

Department of Chemical Engineering, Institute of Chemical Technology, Mumbai, India.

出版信息

Biotechnol Prog. 2020 May;36(3):e2972. doi: 10.1002/btpr.2972. Epub 2020 Feb 3.

DOI:10.1002/btpr.2972
PMID:31990139
Abstract

Xylitol is a five-carbon sugar alcohol that has a variety of uses in the food and pharmaceutical industries. In xylose assimilating yeasts, NAD(P)H-dependent xylose reductase (XR) catalyzes the reduction of xylose to xylitol. In the present study, XR with varying cofactor specificities was overexpressed in Saccharomyces cerevisiae to screen for efficient xylitol production. Xylose consumption and xylitol yields were higher when NADPH-dependent enzymes (Candida tropicalis XR and S. cerevisiae Gre3p aldose reductase) were expressed, indicating that heterologous enzymes can utilize the intracellular NADPH pool more efficiently than the NADH pool, where they may face competition from native enzymes. This was confirmed by overexpression of a NADH-preferring C. tropicalis XR mutant, which led to decreased xylose consumption and lower xylitol yield. To increase intracellular NADPH availability for xylitol production, the promoter of the ZWF1 gene, coding for the first enzyme of the NADPH-generating pentose phosphate pathway, was replaced with the constitutive GPD promoter in a strain expressing C. tropicalis XR. This change led to a ~12% increase in xylitol yield. Deletion of XYL2 and SOR1, whose gene products can use xylitol as substrate, did not further increase xylitol yield. Using wheat stalk hydrolysate as source of xylose, the constructed strain efficiently produced xylitol, demonstrating practical relevance of this approach.

摘要

木糖醇是一种五碳糖醇,在食品和制药行业中有多种用途。在木糖同化酵母中,NAD(P)H 依赖性木糖还原酶(XR)催化木糖还原为木糖醇。在本研究中,过量表达了具有不同辅因子特异性的 XR,以筛选高效生产木糖醇的酵母。当表达 NADPH 依赖性酶(热带假丝酵母 XR 和酿酒酵母 Gre3p 醛还原酶)时,木糖消耗和木糖醇产率更高,表明异源酶可以更有效地利用细胞内 NADPH 池,而不是 NADH 池,在 NADH 池中,它们可能面临来自天然酶的竞争。通过过表达 NADH 偏好型热带假丝酵母 XR 突变体证实了这一点,这导致木糖消耗减少和木糖醇产率降低。为了增加细胞内 NADPH 用于木糖醇生产的可用性,用组成型 GPD 启动子替换表达热带假丝酵母 XR 的菌株中 NADPH 生成戊糖磷酸途径的第一酶 ZWF1 基因的启动子。这一变化导致木糖醇产率提高了约 12%。删除 XYL2 和 SOR1,其基因产物可以使用木糖醇作为底物,不会进一步提高木糖醇产率。使用小麦秸秆水解物作为木糖来源,构建的菌株能够有效地生产木糖醇,证明了这种方法的实际意义。

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引用本文的文献

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Sustain Energy Fuels. 2021 Oct 26;6(1):29-65. doi: 10.1039/d1se00927c. eCollection 2021 Dec 21.
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The Pentose Phosphate Pathway in Yeasts-More Than a Poor Cousin of Glycolysis.酵母中的戊糖磷酸途径——不仅仅是糖酵解的穷亲戚。
Biomolecules. 2021 May 12;11(5):725. doi: 10.3390/biom11050725.
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Biological and Pharmacological Potential of Xylitol: A Molecular Insight of Unique Metabolism.
木糖醇的生物学和药理学潜力:独特代谢的分子见解
Foods. 2020 Nov 2;9(11):1592. doi: 10.3390/foods9111592.