Characterization of Two β-1,3-Glucosyltransferases from Escherichia coli Serotypes O56 and O152

Author:

Brockhausen Inka1,Hu Bo2,Liu Bin2,Lau Kenneth1,Szarek Walter A.3,Wang Lei245,Feng Lu245

Affiliation:

1. Department of Medicine and Department of Biochemistry, Queen's University, Kingston, Ontario K7L 3N6, Canada

2. TEDA School of Biological Sciences and Biotechnology, Nankai University, 23 Hongda Street, TEDA, Tianjin 300457, People's Republic of China

3. Department of Chemistry, Queen's University, Kingston, Ontario K7L 3N6, Canada

4. Tianjin Key Laboratory of Microbial Functional Genomics, People's Republic of China

5. Key Laboratory of Molecular Microbiology and Technology, Ministry of Education, People's Republic of China

Abstract

ABSTRACT The O antigens of outer membrane-bound lipopolysaccharides (LPS) in gram-negative bacteria are oligosaccharides consisting of repeating units with various structures and antigenicities. The O56 and O152 antigens of Escherichia coli both contain a Glc-β1-3-GlcNAc linkage within the repeating unit. We have cloned and identified the genes ( wfaP in O56 and wfgD in O152) within the two O-antigen gene clusters that encode glucosyltransferases involved in the synthesis of this linkage. A synthetic substrate analog of the natural acceptor substrate undecaprenol-pyrophosphate-lipid [GlcNAc-α-PO 3 -PO 3 -(CH 2 ) 11 -O-phenyl] was used as an acceptor and UDP-Glc as a donor substrate to demonstrate that both wfgD and wfaP encode glucosyltransferases. Enzyme products from both glucosyltransferases were isolated by high-pressure liquid chromatography and analyzed by nuclear magnetic resonance. The spectra showed the expected Glc-β1-3-GlcNAc linkage in the products, confirming that both WfaP and WfgD are forms of UDP-Glc: GlcNAc-pyrophosphate-lipid β-1,3-glucosyltransferases. Both WfaP and WfgD have a DxD sequence, which is proposed to interact with phosphate groups of the nucleotide donor through the coordination of a metal cation, and a short hydrophobic sequence at the C terminus that may help to associate the enzymes with the inner membrane. We showed that the enzymes have similar properties and substrate recognition. They both require a divalent cation (Mn 2+ or Mg 2+ ) for activity, are deactivated by detergents, have a broad pH optimum, and require the pyrophosphate-sugar linkage in the acceptor substrate for full activity. Substrates lacking phosphate or pyrophosphate linked to GlcNAc were inactive. The length of the aliphatic chain of acceptor substrates also contributes to the activity.

Publisher

American Society for Microbiology

Subject

Molecular Biology,Microbiology

Reference37 articles.

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2. Barreras, M., P. L. Abdian, and L. Ielpi. 2004. Functional characterization of GumK, a membrane-associated beta-glucuronosyltransferase from Xanthomonas campestris required for xanthan polysaccharide synthesis. Glycobiology 14 : 233-241.

3. Bastin, D. A., and P. R. Reeves. 1995. Sequence and analysis of the O antigen gene (rfb) cluster of Escherichia coli O111. Gene 164 : 17-23.

4. Breton, C., L. Snajdrova, C. Jeanneau, J. Koca, and A. Imberty. 2006. Structures and mechanisms of glycosyltransferases. Glycobiology 16 : 29R-37R.

5. Brockhausen, I. 2007. Structure and function of glycosyltransferases specific for O-glycan processing, p. 217-234. In C. Sanson and O. Markman (ed.), Glycobiology. Scion Publishing Ltd., Woodbury NY.

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