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Updated: Jan 20, 2026

Hierarchical and Programmable One-Pot Oligosaccharide Synthesis
Published on: September 6, 2019
LDOB: multi-dimensional programmable lactose-derived oligosaccharide biosensors.
Li-Hua Liu1, Bo Xu2, Ying Huang3
1School of Basic Medical Sciences, Hubei University of Science and Technology, Xianning, 437100, PR China; Bio-Fermentation Research Center, Xiamen Yuanzhidao Biotechnology Co., Ltd., EYOSON Group Co., Ltd., Xiamen, 361028, PR China; Guangdong Provincial Key Laboratory of Marine Biotechnology, Guangdong Provincial Key Laboratory of Marine Disaster Prediction and Prevention, STU-UNIVPM Joint Algal Research Center, College of Science, Shantou University, Shantou, 515063, Guangdong, PR China.
Researchers developed lactose-derived oligosaccharide biosensors (LDOB) for real-time monitoring of human milk oligosaccharides (HMOs) production. This tool accelerates the screening of high-yield HMO-producing microbial strains for biomanufacturing.
Area of Science:
- Biotechnology
- Microbial Engineering
- Synthetic Biology
Background:
- Human milk oligosaccharides (HMOs) possess crucial health benefits but their scalable production via microbial synthesis is hindered by a lack of efficient analytical tools.
- Strain improvement for HMOs production requires rapid and universal methods to assess biosynthesis efficiency.
Purpose of the Study:
- To develop a novel whole-cell biosensor system for real-time monitoring and high-throughput screening of HMO-producing microbial strains.
- To engineer Escherichia coli with a lactose-derived oligosaccharide biosensor (LDOB) for efficient strain selection.
Main Methods:
- Construction of genetically engineered Escherichia coli strains expressing lactose-derived oligosaccharide biosensors (LDOB).
- Integration of multidimensional negative-feedback modules (multi-repression, targeted protein degradation, oRBS) into the LDOB sensing circuit.
- Validation of LDOB signal correlation with HMO yields (2'-FL, LNnT) and coupling with fluorescence-activated droplet sorting (FADS) for high-throughput screening.
Main Results:
- LDOB systems translate lactose consumption into inversely correlated biomass and fluorescence read-outs, enabling real-time HMO synthesis monitoring.
- LDOB signals showed strong consistency with yields of key HMOs like 2'-fucosyllactose (2'-FL) and lacto-N-neotetraose (LNnT).
- High-throughput screening using LDOB and FADS resulted in significant titer enhancements: 42.8% for 2'-FL and 86.4% for LNnT.
Conclusions:
- LDOB provides a superior tool for monitoring HMO synthesis and screening high-yield producing strains, overcoming previous bottlenecks in microbial biomanufacturing.
- This engineered biosensor system significantly advances the field of HMO biomanufacturing by enabling efficient strain improvement and accelerating production processes.
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