Production, purification, characterization, and safety evaluation of constructed recombinant D-psicose 3-epimerase.

IF 4.3 2区 生物学 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Microbial Cell Factories Pub Date : 2024-07-30 DOI:10.1186/s12934-024-02487-x
Nisit Watthanasakphuban, Pimsiriya Srila, Phitsanu Pinmanee, Charatda Punvittayagul, Nopphon Petchyam, Boontiwa Ninchan
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引用次数: 0

Abstract

Background: D-psicose 3-epimerase (DPEase) is a potential catalytic enzyme for D-psicose production. D-psicose, also known as D-allulose, is a low-calorie sweetener that has gained considerable attention as a healthy alternative sweetener due to its notable physicochemical properties. This research focused on an in-depth investigation of the expression of the constructed DPEase gene from Agrobacterium tumefaciens in Escherichia coli for D-psicose synthesis. Experimentally, this research created the recombinant enzyme, explored the optimization of gene expression systems and protein purification strategies, investigated the enzymatic characterization, and then optimized the D-psicose production. Finally, the produced D-psicose syrup underwent acute toxicity evaluation to provide scientific evidence supporting its safety.

Results: The optimization of DPEase expression involved the utilization of Mn2+ as a cofactor, fine-tuning isopropyl β-D-1-thiogalactopyranoside induction, and controlling the induction temperature. The purification process was strategically designed by a nickel column and an elution buffer containing 200 mM imidazole, resulting in purified DPEase with a notable 21.03-fold increase in specific activity compared to the crude extract. The optimum D-psicose conversion conditions were at pH 7.5 and 55 °C with a final concentration of 10 mM Mn2+ addition using purified DPEase to achieve the highest D-psicose concentration of 5.60% (w/v) using 25% (w/v) of fructose concentration with a conversion rate of 22.42%. Kinetic parameters of the purified DPEase were Vmax and Km values of 28.01 mM/min and 110 mM, respectively, which demonstrated the high substrate affinity and efficiency of DPEase conversion by the binding site of the fructose-DPEase-Mn2+ structure. Strategies for maintaining stability of DPEase activity were glycerol addition and storage at -20 °C. Based on the results from the acute toxicity study, there was no toxicity to rats, supporting the safety of the mixed D-fructose-D-psicose syrup produced using recombinant DPEase.

Conclusions: These findings have direct and practical implications for the industrial-scale production of D-psicose, a valuable rare sugar with a broad range of applications in the food and pharmaceutical industries. This research should advance the understanding of DPEase biocatalysis and offers a roadmap for the successful scale-up production of rare sugars, opening new avenues for their utilization in various industrial processes.

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生产、纯化、表征和安全评估构建的重组 D-半乳糖 3-epimerase。
背景:D-sicose 3-epimerase (DPEase)是一种潜在的催化D-糙米糖生产的酶。D- 菊糖又称 D- 阿洛酮糖,是一种低热量甜味剂,因其显著的理化特性而作为一种健康的替代甜味剂受到广泛关注。本研究的重点是深入研究农杆菌的 DPEase 基因在大肠杆菌中合成 D-麦角糖的表达。在实验方面,本研究创建了重组酶,探索了基因表达系统和蛋白质纯化策略的优化,研究了酶学特征,然后优化了 D-麦角糖的生产。最后,对生产出的 D-车前子糖浆进行了急性毒性评估,为其安全性提供了科学依据:结果:DPEase表达的优化包括利用Mn2+作为辅助因子、微调异丙基β-D-1-硫代吡喃半乳糖苷诱导和控制诱导温度。纯化过程采用镍柱和含 200 mM 咪唑的洗脱缓冲液进行策略性设计,纯化后的 DPEase 比粗提取物的比活性显著提高了 21.03 倍。在 pH 值为 7.5、温度为 55 °C、最终浓度为 10 mM Mn2+ 的条件下,使用纯化的 DPEase,在果糖浓度为 25% (w/v) 的情况下,D-车前子糖的转化率为 22.42%,达到了 5.60% (w/v)的最高浓度。纯化的 DPEase 的动力学参数 Vmax 和 Km 值分别为 28.01 mM/min 和 110 mM,这表明果糖-DPEase-Mn2+结构的结合位点具有较高的底物亲和力和 DPEase 转化效率。保持 DPEase 活性稳定性的策略是添加甘油和在 -20 °C 下储存。根据急性毒性研究的结果,大鼠无毒性反应,这证明使用重组 DPEase 生产的 D-果糖-D-葡糖混合糖浆是安全的:这些发现对工业规模生产 D-车前子糖具有直接和实际的意义,D-车前子糖是一种珍贵的稀有糖类,在食品和制药行业有着广泛的应用。这项研究将加深人们对 DPEase 生物催化的理解,并为稀有糖的成功放大生产提供路线图,为在各种工业过程中利用稀有糖开辟新的途径。
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来源期刊
Microbial Cell Factories
Microbial Cell Factories 工程技术-生物工程与应用微生物
CiteScore
9.30
自引率
4.70%
发文量
235
审稿时长
2.3 months
期刊介绍: Microbial Cell Factories is an open access peer-reviewed journal that covers any topic related to the development, use and investigation of microbial cells as producers of recombinant proteins and natural products, or as catalyzers of biological transformations of industrial interest. Microbial Cell Factories is the world leading, primary research journal fully focusing on Applied Microbiology. The journal is divided into the following editorial sections: -Metabolic engineering -Synthetic biology -Whole-cell biocatalysis -Microbial regulations -Recombinant protein production/bioprocessing -Production of natural compounds -Systems biology of cell factories -Microbial production processes -Cell-free systems
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