Guowei Li, Xinlei Wei, Ranran Wu, Wei Zhou, Yunjie Li, Zhiguang Zhu, Chun You
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引用次数: 2
摘要
麦芽糖是一种天然的α-(1,4)连接二糖,在食品工业和微生物发酵中有着广泛的应用。然而,麦芽糖几乎没有被用于体外生物合成,可能是因为它被麦芽糖磷酸化酶(MP)磷酸化产生的β-葡萄糖1-磷酸(β-G1P)不能被我们小组先前构建的体外合成酶生物系统中常见的α-磷酸葡糖变位酶(α-PGM)利用。在此,我们设计了一个由MP、β-磷酸葡萄糖变位酶(β-PGM)和多磷酸葡萄糖激酶(PPGK)组成的体外合成酶促反应模块,用于将每个麦芽糖分子化学计量转化为两个葡萄糖-6-磷酸(G6P)分子。在这个合成模块的基础上,我们进一步构建了两个体外合成生物系统,分别产生生物电和1,6-二磷酸果糖(FDP)。14酶生物电池实现了96.4%的法拉第效率和0.6的最大功率密度 mW/cm2,而5-酶体外产生FDP的生物系统产生187.0 mM FDP,50 g/L(139 mM)麦芽糖。我们的研究不仅提出了麦芽糖的新应用场景,还为高效生产生物电和增值生物化学品提供了新的策略。
Stoichiometric Conversion of Maltose for Biomanufacturing by In Vitro Synthetic Enzymatic Biosystems.
Maltose is a natural α-(1,4)-linked disaccharide with wide applications in food industries and microbial fermentation. However, maltose has scarcely been used for in vitro biosynthesis, possibly because its phosphorylation by maltose phosphorylase (MP) yields β-glucose 1-phosphate (β-G1P) that cannot be utilized by α-phosphoglucomutase (α-PGM) commonly found in in vitro synthetic enzymatic biosystems previously constructed by our group. Herein, we designed an in vitro synthetic enzymatic reaction module comprised of MP, β-phosphoglucomutase (β-PGM), and polyphosphate glucokinase (PPGK) for the stoichiometric conversion of each maltose molecule to two glucose 6-phosphate (G6P) molecules. Based on this synthetic module, we further constructed two in vitro synthetic biosystems to produce bioelectricity and fructose 1,6-diphosphate (FDP), respectively. The 14-enzyme biobattery achieved a Faraday efficiency of 96.4% and a maximal power density of 0.6 mW/cm2, whereas the 5-enzyme in vitro FDP-producing biosystem yielded 187.0 mM FDP from 50 g/L (139 mM) maltose by adopting a fed-batch substrate feeding strategy. Our study not only suggests new application scenarios for maltose but also provides novel strategies for the high-efficient production of bioelectricity and value-added biochemicals.