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糖基水解酶在非常规介质中催化糖基化反应。

Glycosyl hydrolase catalyzed glycosylation in unconventional media.

机构信息

Fermentation Technology Institute, Zhejiang University of Technology, Hangzhou, 310014, China.

College of Biotechnology and Bioengineering, Zhejiang University of Technology, Hangzhou, 310014, China.

出版信息

Appl Microbiol Biotechnol. 2020 Nov;104(22):9523-9534. doi: 10.1007/s00253-020-10924-1. Epub 2020 Oct 9.

Abstract

The reversible hydrolytic property of glycosyl hydrolases (GHs) as well as their acceptance of aglycones other than water has provided the abilities of GHs in synthesizing glycosides. Together with desirable physiochemical properties of glycosides and their high commercial values, research interests have been aroused to investigate the synthetic other than the hydrolytic properties of GHs. On the other hand, just like the esterification processes catalyzed by lipases, GH synthetic effectiveness is strongly obstructed by water both thermodynamically and kinetically. Medium engineering by involving organic solvents can be a viable approach to alleviate the obstacles caused by water. However, as native hydrolyases function in water-enriched environments, most GHs display poor catalytic performance in the presence of organic solvents. Some GHs from thermophiles are more tolerant to organic solvents due to their robust folded structures with strong residue interactions. Other than native sources, immobilization, protein engineering, employment of surfactant, and lyophilization have been proved to enhance the GH stability from the native state, which opens up the possibilities for GHs to be employed in unconventional media as synthases. KEY POINTS: • Unconventional media enhance the synthetic ability but destabilize GHs. • Viable approaches are discussed to improve GH stability from the native state. • GHs robust in unconventional media can be valuable industrial synthases.

摘要

糖苷水解酶(GHs)的可逆水解特性以及它们对水以外的糖苷配基的接受能力,使 GHs 具有了合成糖苷的能力。糖苷具有理想的物理化学性质和高商业价值,这引起了人们对研究 GHs 的合成而非水解特性的兴趣。另一方面,就像脂肪酶催化的酯化过程一样,GH 的合成效率在热力学和动力学上都受到水的强烈阻碍。通过涉及有机溶剂的介质工程可以是一种可行的方法来缓解水造成的障碍。然而,由于天然水解酶在富含水的环境中发挥作用,大多数 GHs 在有机溶剂存在下表现出较差的催化性能。由于其具有强折叠结构和强残基相互作用,一些来自嗜热菌的 GHs 对有机溶剂更耐受。除了天然来源外,固定化、蛋白质工程、表面活性剂的使用和冷冻干燥已被证明可以提高 GH 从天然状态下的稳定性,这为 GH 作为非传统介质中的合成酶的应用开辟了可能性。

关键点

• 非传统介质提高了合成能力,但使 GHs 不稳定。

• 讨论了从天然状态提高 GH 稳定性的可行方法。

• 能够在非传统介质中稳定存在的 GH 可以成为有价值的工业合成酶。

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