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表达的环麦芽七糖酶和麦芽寡糖海藻糖合酶的通透化的全细胞有利于从β-环糊精合成非还原性麦芽七糖(N-G7)。

Permeabilized whole cells containing co-expressed cyclomaltodextrinase and maltooligosyltrehalose synthase facilitate the synthesis of nonreducing maltoheptaose (N-G7) from β-cyclodextrin.

机构信息

State Key Laboratory of Food Science and Resources, Jiangnan University, Wuxi, China.

International Joint Laboratory on Food Safety, Jiangnan University, Wuxi, China.

出版信息

J Sci Food Agric. 2023 Nov;103(14):7061-7069. doi: 10.1002/jsfa.12792. Epub 2023 Jul 5.

DOI:10.1002/jsfa.12792
PMID:37337412
Abstract

BACKGROUND

Maltodextrin is an important bulk ingredient in food and other industries; however, drawbacks such as uneven polymerization and high reducibility limit its utilization. Nonreducing maltoheptaose (N-G7) is a good substitute for maltodextrin owing to its single degree of polymerization and its nonreducing properties. In this study, in vitro cell factory biotransformation of β-cyclodextrin (β-CD) to N-G7 is demonstrated using coexpressed cyclomaltodextrinase (CDase, EC 3.2.1.54) and maltooligosyltrehalose synthase (MTSase, EC 5.4.99.15). However, the cell membrane prevents β-CD from entering the cell owing to its large diameter.

RESULTS

The amylase-deficient permeabilized host ΔycjM-ΔmalS-ΔlpxM is utilized for the coexpression of recombinant CDase and MTSase. Deletion of lpxM effectively allows the entry of β-cyclodextrin into the cell, despite its large diameter, without requiring any relevant cell membrane permeability-promoting reagent. This results in a 28.44% increase in the efficiency of β-CD entry into the cell, thus enabling intracellular N-G7 synthesis without the extracellular secretion of recombinant CDase and MTSase. After reacting for 5.5 h, the highest purity of N-G7 (65.50%) is obtained. However, hydrolysis decreases the purity of N-G7 to 49.30%, thus resulting in a conversion rate of 40.16% for N-G7 when the reaction lasts 6 h. Precise control of reaction time is crucial for obtaining high-purity N-G7.

CONCLUSION

Whole-cell catalysis avoids cell fragmentation and facilitates the creation of an eco-friendly, energy-efficient biotransformation system; thus, it is a promising approach for N-G7 synthesis. © 2023 Society of Chemical Industry.

摘要

背景

麦芽糊精是食品和其他行业的重要大宗原料,但由于聚合不均匀和还原度高,其应用受到限制。由于聚合度单一且不具有还原性质,非还原麦芽七糖(N-G7)是麦芽糊精的良好替代品。在本研究中,通过共表达环麦芽寡糖酶(CDase,EC 3.2.1.54)和麦芽寡糖基海藻糖合酶(MTSase,EC 5.4.99.15),展示了体外细胞工厂将β-环糊精(β-CD)转化为 N-G7 的生物转化。然而,由于其大直径,细胞膜会阻止β-CD 进入细胞。

结果

利用缺乏淀粉酶的通透化宿主ΔycjM-ΔmalS-ΔlpxM 进行重组 CDase 和 MTSase 的共表达。删除 lpxM 可有效地允许β-环糊精进入细胞,尽管其直径较大,但无需任何相关的细胞膜通透性促进剂。这使得β-CD 进入细胞的效率提高了 28.44%,从而可以在没有细胞外分泌重组 CDase 和 MTSase 的情况下在细胞内合成 N-G7。反应 5.5 h 后,获得了最高纯度的 N-G7(65.50%)。然而,水解会降低 N-G7 的纯度至 49.30%,因此当反应持续 6 h 时,N-G7 的转化率为 40.16%。精确控制反应时间对于获得高纯度的 N-G7 至关重要。

结论

全细胞催化避免了细胞破碎,并有利于创建环保、节能的生物转化系统;因此,这是合成 N-G7 的一种很有前途的方法。 © 2023 化学工业协会。

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