Uridine diphosphate glycosyltransferases (UGTs) are among the key rate-limiting enzymes in the biosynthesis of salidroside. Plant-derived UGTs often exhibit poor solubility and low catalytic activity, whereas microbial UGTs typically show insufficient regioselectivity for salidroside production. In this study, we performed stepwise engineering of the UGT from Paenibacillus durus (PdUGT) to generate a highly regioselective biocatalyst for salidroside production. Through stepwise reshaping of the active site and the access tunnel, we progressively enhanced the regioselectivity for tyrosol glycosylation from 81.2 to 99.9%, reaching a level comparable to that of natural plant enzymes. Mutations prioritized by SaProt and ΔΔG calculations further increased the melting temperature by 11.2 °C. The final variant, M4, exhibited a 20-fold increase in catalytic efficiency, with a specific activity of 58.5 U·mg−1. In a UDP-glucose recycling cascade, M4 enabled the production of 193.1 mM salidroside with 99.0% conversion and a space-time yield of 5.7 g·L−1·h−1. Molecular dynamics simulations and substrate docking suggested that the improved performance of M4 is associated with tighter binding of tyrosol, suppression of unproductive tyrosol reorientation, and enhanced protein compactness under thermal stress. Substrate profiling confirmed that PdUGT exhibits broad substrate promiscuity, while M4 displays high specificity toward tyrosol and related aromatic alcohols. This work establishes PdUGT as a valuable microbial UGT scaffold and provides experimentally supported design principles for engineering glycosyltransferases. Moreover, this study lays a solid foundation for the industrial bioproduction of salidroside and other glycosides.
Mogroside VI (Mog VI) is a rare triterpene glycoside from Siraitia grosvenorii with promising bioactivities. However, its biosynthesis is limited by a single rate-limiting glycosylation step converting mogroside V, catalyzed by the inherently low-activity plant glycosyltransferase UGT73-327-2. In this study, we applied...
Dong Guo, Yan Zhang, Xupeng Guo et al.· Journal of Agricultural and...· 0 citations
Regioselective glycosylation of polyhydroxylated natural products remains a major bottleneck for deploying glycosyltransferases in sustainable biomanufacturing. Herein, we developed a function-guided substrate tunnel remodeling strategy to redesign a microbial UDP-glycosyltransferase from Bacillus paralicheniformis (...
De He, Han-Lin Zhang, Wen-Kai Liu et al.· ACS Sustainable Chemistry &a...· 0 citations
Enzyme engineering serves as a powerful tool in biocatalysis, enabling the development of enzymes with improved stability, activity, and specificity for a range of academic, industrial, and pharmaceutical applications. However, a limited understanding of sequence–structure–function relationships in terpene synthases, t...
This study achieves simultaneous enhancement of catalytic efficiency and stability of a 1,2-rhamnosyltransferase by a distal mutational engineering strategy and provides a promising biocatalyst for rhamnosylated natural product biosynthesis.
Wenjuan Dai, Chao-Rong Guo, Hongyan Yang et al.· Journal of Agricultural and...· 0 citations
A structure-guided rational design to invert the coenzyme specificity of GDH by targeting a single residue within the conserved GXXXGXG motif of the Rossmann fold provides a generalizable framework for engineering cofactor preference in short-chain dehydrogenase/reductase family enzymes.
Y. Shen, Keju Jing· International Journal of Fro...· 0 citations
Trehalose is a nonreducing disaccharide widely used for its biomolecule-protective properties. However, multienzyme cascade production remains limited by low enzyme expression and suboptimal catalytic performance. To address this, thermostable maltooligosyltrehalose synthase (TreY) and trehalohydrolase (TreZ) from Arth...
Haidong Huang, Yang-Yang Li, Jin-Song Song et al.· Journal of Agricultural and...· 1 citation
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