Related Experiment Video
Updated: Sep 23, 2026

Methods for Electroporation and Transformation Confirmation in Limosilactobacillus reuteri DSM20016
Published on: June 23, 2023
Development of a lactose-complemented antibiotic-free host-vector platform for stable enzyme expression in
Ruize Xu1,2, Junlin Li1,2, Fangyu Guo1,2
1State Key Laboratory of Green Papermaking and Resource Recycling, Qilu University of Technology, Shandong Academy of Science, Jinan, 250353, P. R. China.
Abstract:
Food-grade microbial bioprocessing requires genetically stable and antibiotic-free host-vector systems that are compatible with food-related applications. However, the use of Limosilactobacillus fermentum as a biomanufacturing chassis is limited by inefficient DNA delivery and the lack of strain-adapted food-grade selection strategies. In this study, a proof-of-concept, lactose-complemented antibiotic-free host-vector framework was established in L. fermentum 217 - 82. An efficient electrotransformation protocol was first established as an enabling step for host engineering, yielding a transformation efficiency of 7.50 × 10⁵ CFU/µg DNA. The genes lacM and lacLM were individually targeted to validate their involvement in lactose utilization, and subsequent gene inactivation experiments confirmed their utility as effective markers for metabolic complementation. Antibiotic-free shuttle vectors were constructed by combining lacZα-assisted plasmid screening in E. coli with host-specific lacM/lacLM-mediated lactose complementation in L. fermentum. The resulting recombinant strains maintained plasmid stability during serial passage and supported functional heterologous expression of cis-proline 4-hydroxylase. Functional validation using cis-proline 4-hydroxylase confirmed that the platform supported whole-cell L-proline-to-hydroxyproline bioconversion, with hydroxyproline production reaching 147.62 µg/mL. These findings demonstrate the feasibility of integrating lactose-dependent selection, stable antibiotic-free plasmid maintenance, functional heterologous enzyme expression, and whole-cell bioconversion within a strain-adapted host-vector framework in L. fermentum 217 - 82. Although broader applicability remains to be validated using additional heterologous proteins and process conditions, the established framework provides a methodological basis for the future development of more generally applicable antibiotic-free expression platforms in L. fermentum.
More Related Videos
Related Concept Videos
Production of Antibiotics
Upstream Processing
Microbes in Food Production
Production of Pharmaceuticals

