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Host-pathogen interactions frequently depend on key components of the bacterial cell surface, such as capsules and lipopolysaccharides in Gram-negative bacteria. The first step in the synthesis of lipid-linked polysaccharides is the substitution of a uridine diphosphate (UDP)-sugar by a lipid monophosphate catalysed by a phosphoglycosyl transferase (PGT). We report the 3.0 Å cryo-electron microscopy apo-structure of the PGT enzyme WbaP from Escherichia coli, a UDP-galactose:undecaprenolphosphate galactose-1-phosphoryl transferase. The structure is a dimer with each monomer formed of four N-terminal transmembrane helices, a small α/β domain with a distinctive β-hairpin that inserts into the other monomer, and a catalytic domain, which sits perpendicular to the transmembrane domain. A complex of WbaP with the UDP-galactose substrate shows binding of the UDP moiety by R319 and R377. Mutations of R319 and R377, along with K331 and R401, highlighted the essential nature of these residues for the catalytic activity of the protein, as confirmed by an in vivo functional assay. Our results provide new insights into the PGT family of enzymes.

More information Original publication

DOI

10.1098/rsob.250369

Type

Journal article

Publication Date

2026-08-19T00:00:00+00:00

Volume

16

Keywords

cell wall, cryo-electron microscopy, membrane protein, oligosaccharides, phosphoglycosyl transferase, Escherichia coli, Cryoelectron Microscopy, Escherichia coli Proteins, Models, Molecular, Catalytic Domain, Mutation, Protein Conformation, Protein Binding, Protein Multimerization, Uridine Diphosphate Galactose, Glycosyltransferases