Highly Efficient Display of Oligomeric Enzymes on Yeast Surface for Enhanced Glycyrrhizin Hydrolysis and Cellulosic Ethanol Production

Qibin Wang, Qiuyan Sun, Jing Wang, Hu Liu*, Chun Li*

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

Abstract

The subunit dissociation of oligomeric enzymes is a major challenge that limits their practical applications. In this study, yeast-surface-displayed tetrameric β-glucuronidase with a C-terminal anchor protein fusion was found partially dissociated into dimers. The coexpression of free and anchored subunits significantly improved the display efficiency and catalytic activity. Given that oligomeric enzymes may adopt a non-native conformation on the cell surface, the subunit interfaces of surface-displayed β-glucuronidase were in situ characterized using a Förster resonance energy transfer (FRET) strategy, and the tetrameric structure was well maintained in the coexpressed β-glucuronidases. Finally, the coexpression strategy was applied to yeast-surface-displayed oligomeric cellulases, significantly enhancing the activities of tetrameric endoglucanase and dimeric β-glucosidase and the concentration of cellulosic ethanol for the two-enzyme codisplaying strain. This work provides insights into the structure-activity relationship and the efficient utilization of surface-displayed oligomeric enzymes.

Original languageEnglish
JournalACS Synthetic Biology
DOIs
Publication statusAccepted/In press - 2025

Keywords

  • Förster resonance energy transfer
  • cellulosic ethanol production
  • genetic code expansion
  • oligomeric enzyme
  • subunit dissociation
  • yeast surface display

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