Structural characterization of a nonhydrolyzing UDP-GlcNAc 2-epimerase fromNeisseria meningitidisserogroup A
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Published:2020-10-29
Issue:11
Volume:76
Page:557-567
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ISSN:2053-230X
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Container-title:Acta Crystallographica Section F Structural Biology Communications
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language:
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Short-container-title:Acta Cryst Sect F
Author:
Hurlburt Nicholas K.ORCID, Guan JasperORCID, Ong HoonsanORCID, Yu HaiORCID, Chen XiORCID, Fisher Andrew J.ORCID
Abstract
Bacterial nonhydrolyzing UDP-N-acetylglucosamine 2-epimerases catalyze the reversible interconversion of UDP-N-acetylglucosamine (UDP-GlcNAc) and UDP-N-acetylmannosamine (UDP-ManNAc). UDP-ManNAc is an important intermediate in the biosynthesis of certain cell-surface polysaccharides, including those in some pathogenic bacteria, such asNeisseria meningitidisandStreptococcus pneumoniae. Many of these epimerases are allosterically regulated by UDP-GlcNAc, which binds adjacent to the active site and is required to initiate UDP-ManNAc epimerization. Here, two crystal structures of UDP-N-acetylglucosamine 2-epimerase fromNeisseria meningitidisserogroup A (NmSacA) are presented. One crystal structure is of the substrate-free enzyme, while the other structure contains UDP-GlcNAc substrate bound to the active site. Both structures form dimers as seen in similar epimerases, and substrate binding to the active site induces a large conformational change in which two Rossmann-like domains clamp down on the substrate. Unlike other epimerases, NmSacA does not require UDP-GlcNAc to instigate the epimerization of UDP-ManNAc, although UDP-GlcNAc was found to enhance the rate of epimerization. In spite of the conservation of residues involved in binding the allosteric UDP-GlcNAc observed in similar UDP-GlcNAc 2-epimerases, the structures presented here do not contain UDP-GlcNAc bound in the allosteric site. These structural results provide additional insight into the mechanism and regulation of this critical enzyme and improve the structural understanding of the ability of NmSacA to epimerize modified substrates.
Funder
National Institutes of Health National Institute of Food and Agriculture
Publisher
International Union of Crystallography (IUCr)
Subject
Condensed Matter Physics,Genetics,Biochemistry,Structural Biology,Biophysics
Reference28 articles.
1. Aye, A. M. M., Bai, X., Borrow, R., Bory, S., Carlos, J., Caugant, D. A., Chiou, C.-S., Dai, V. T. T., Dinleyici, E. C., Ghimire, P., Handryastuti, S., Heo, J. Y., Jennison, A., Kamiya, H., Tonnii Sia, L., Lucidarme, J., Marshall, H., Putri, N. D., Saha, S., Shao, Z., Sim, J. H. C., Smith, V., Taha, M.-K., Van Thanh, P., Thisyakorn, U., Tshering, K., Vazquez, J., Veeraraghavan, B., Yezli, S. & Zhu, B. (2020). J. Infect., https://doi.org/10.1016/j.jinf.2020.07.025. 2. Energy landscape of the domain movement in Staphylococcus aureus UDP-N-acetylglucosamine 2-epimerase 3. Structural analysis of a set of proteins resulting from a bacterial genomics project 4. The Structure of UDP-N-Acetylglucosamine 2-Epimerase Reveals Homology to Phosphoglycosyl Transferases, 5. Crystal structures of the archaeal UDP-GlcNAc 2-epimerase from Methanocaldococcus jannaschii
reveal a conformational change induced by UDP-GlcNAc
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