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Rational Engineering of a Sucrose Phosphorylase for Switchable Regioselective Synthesis of Antioxidant Gallic Acid
Zhiwei Li1,2, Zijian Wang1, Jingwei Guo1
1School of Food and Biological Engineering, Hefei University of Technology, Hefei230000, Anhui, P. R. China.
Abstract:
Gallic acid is a bioactive polyphenol with poor solubility and stability. Enzymatic α-glucosylation can address these limitations, but regioselective synthesis among multiple phenolic hydroxyls remains challenging. Here, we engineer a sucrose phosphorylase from Bifidobacterium adolescentis (BaSP) for the switchable synthesis of gallic acid 4-O- and 3-O-α-d-glucopyranosides. Structure-guided rational design identifies four key regions controlling substrate orientation. The double mutant I231A/D400E achieves >90% selectivity for the 4-O isomer with 82% yield in 2 h. Strikingly, the mutant L341 V/T157G completely reverses regioselectivity, producing the 3-O isomer with >98% yield and >99% selectivity. Molecular docking reveals that these mutations remodel the active pocket and substrate channel, positioning the target hydroxyl group adjacent to the catalytic center. The resulting α-glucosides show up to 12-fold improved water solubility and superior cytoprotective, anti-inflammatory (IL-1β), and antioxidant (HO-1/NQO1) activities compared to gallic acid. This work provides two high-performance, regiocomplementary biocatalysts for green synthesis of pharmaceutically relevant gallic acid glycosides and offers mechanistic insights into regioselectivity control in sucrose phosphorylases.
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