DOI: 10.1021/acs.jafc.5c17370 ISSN: 0021-8561

Structure-Guided Engineering of Glycosyltransferase UGT73–327–2 Coupled with UDP-Glucose Regeneration Enables Highly Efficient Biosynthesis of Mogroside VI

Dong Guo, Yan Zhang, Xupeng Guo, Zhiwei Deng, Yilin Chen, Changmei Liu, Zhenbo Yuan, Yijian Rao, Zhengshan Luo

Abstract

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 a structure-guided engineering strategy to overcome this catalytic bottleneck. By combining substrate-channel expansion with catalytic pocket remodeling, the double mutant W192F/K206E was generated, showing a 22.2-fold increase in catalytic activity. Molecular dynamics simulations and kinetic analyses indicated that the enhanced performance results from an enlarged substrate-access channel, improved substrate-binding stability, and a more favorable active-site geometry that reduces key catalytic distances. Furthermore, coupling the engineered UGT with Arabidopsis thaliana sucrose synthase enabled an in situ UDP-glucose regeneration system, achieving a Mog VI titer of 5.6 g·L–1 with a 76.8% molar conversion. This work establishes an efficient biocatalytic route for Mog VI production and highlights the potential of structure-based glycosyltransferase engineering for the synthesis of rare natural glycosides.

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