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Engineering Adherent Bacteria by Creating a Single Synthetic Curli Operon
Published on: November 16, 2012
Escherichia coli immobilized fermentation for continuous 3-fucosyllactose production via manipulating biofilm
Jing Leng1, Weiqiang Yang1, Qingyuan Yao1
1College of Biotechnology and Pharmaceutical Engineering, National Engineering Technique Research Center for Biotechnology, State Key Laboratory of Materials-Oriented Chemical Engineering, Nanjing Tech University, Nanjing 211816, China.
Abstract:
3-Fucosyllactose (3-FL), a representative human milk oligosaccharide, is witnessing rapidly increasing demand. Establishing an immobilized fermentation system using microbial cell factories presents a promising strategy for continuous 3-FL production. In this study, the effects of nine biofilm-related genes on biofilm-forming capacity and 3-FL synthesis in Escherichia coli were systematically evaluated. Among them, pslA from Pseudomonas aeruginosa driven by a constitutive promoter demonstrated the best performance. Subsequently, the strategy of "prioritizing biofilm formation, following product synthesis" was implemented to develop an E. coli biofilm-based immobilized fermentation based on cotton fiber. In repeated-batch fermentation, BZJP05-JpslA exhibited higher cell density, improved cellular viability, and a 38.4% increase in average 3-FL yield. Furthermore, transcriptional level analysis revealed that pslA overexpression promoted glycerol metabolism, TCA cycle, fluxes toward 3-FL biosynthesis pathway, and expression of key genes involved in stress response. These findings provide an effective strategy and mechanism insights for optimizing E. coli cell-factory platforms.

