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Immobilization of Multi-biocatalysts in Alginate Beads for Cofactor Regeneration and Improved Reusability
Published on: April 22, 2016
A multi-dimensional engineering strategy integrating computational design, self-cyclization and whole cell
Shengjie Sun1,2, Jiaming Liu1,2, Xiaolong Gao1,3
1School of Life Sciences and Medicine, Shandong University of Technology, Zibo 255000, China.
None:
Epilactose is a promising functional disaccharide, but its biomanufacturing is limited by insufficient enzyme activity, poor thermostability, and costly catalyst preparation. We first used the REME platform to computationally evaluate candidate enzymes. Among them, cellobiose 2-epimerase from Caldicellulosiruptor saccharolyticus (CsCE) showed the highest epilactose synthesis activity. We therefore developed an integrated strategy combining computational design, SpyTag/SpyCatcher-mediated cyclization, and ethanol-permeabilized whole-cell catalysis. By combining enzyme ligand binding energy analysis, protein stability prediction, and catalytic constant prediction, the V52N variant was obtained. Its epilactose synthesis activity was 3.45 times that of the wild type, while lactulose formation was reduced to 14.8% of the wild-type level. Cyclized CCT increased the optimum temperature to 80 °C and extended the half-life at 85 °C by 5.52-fold. The optimized whole-cell process produced 65.81 g/L epilactose from 200 g/L lactose within 20 min, corresponding to 32.90% conversion. This strategy provides a practical route for efficient epilactose biomanufacturing.
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