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Homogeneous Glycoconjugate Produced by Combined Unnatural Amino Acid Incorporation and Click-Chemistry for Vaccine Purposes
Published on: December 19, 2020
Engineering Escherichia coli to biosynthesize O-polysaccharide-derived recombinant glycoconjugate vaccines against
Ziyu Li1, Guozhen Ma2, Ruiying Liu2
1National Key Laboratory of Intelligent Tracking and Forecasting for Infectious Diseases, TEDA Institute of Biological Sciences and Biotechnology, Nankai University, Tianjin, China; Key Laboratory of Molecular Microbiology and Technology, Ministry of Education, Nankai University, Tianjin, China; Nankai International Advanced Research Institute, Nankai University, Shenzhen, China.
Abstract:
The development of effective vaccines against extraintestinal pathogenic Escherichia coli (ExPEC) serotypes O8 and O9a remains an unmet medical need. We established a sustainable biomanufacturing platform for glycoconjugate vaccines by engineering an E. coli chassis strain with optimized nucleotide sugar precursor supply and enhanced O-polysaccharide (OPS) biosynthesis. Genes related to competitive and catabolic pathways (gnd-rfbB, wcaM-wcaJ and wcaI-wza, glgC, ushA, pfkA/B) were systematically deleted using CRISPR-Cas9 and λ-RED genome editing, while the phosphotransferase system gene ptsA was overexpressed, yielding chassis strain EG01. This rational metabolic engineering increased O8- and O9a-OPS yields by 2.11-fold and 2.4-fold, respectively. Co-expression of Neisseria meningitidis glycosyltransferase PglL and carrier protein CTB enabled efficient protein glycosylation, improving conjugate yields by 2.59-fold (O8) and 4.18-fold (O9a) versus wild-type. Mass spectrometry confirmed site-specific O-glycosylation at CTB Thr19 with preserved OPS repeat-unit structure. The vaccine candidate demonstrated a favorable safety profile in mice, inducing only transient cytokine responses without systemic toxicity. Immunization elicited robust, durable Th1-biased IgG responses, conferring 80-90% protection against lethal challenge and significantly reducing bacterial loads in vivo. This work establishes an efficient, scalable glycoconjugate vaccine production platform, highlighting a promising metabolic engineering strategy to combat ExPEC infections.
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