Please use this identifier to cite or link to this item: http://hdl.handle.net/10362/93081
Title: Chemical Genetic Analysis and Functional Characterization of Staphylococcal Wall Teichoic Acid 2-Epimerases Reveals Unconventional Antibiotic Drug Targets
Author: Mann, Paul A.
Müller, Anna
Wolff, Kerstin A.
Fischmann, Thierry
Wang, Hao
Reed, Patricia
Hou, Yan
Li, Wenjin
Müller, Christa E.
Xiao, Jianying
Murgolo, Nicholas
Sher, Xinwei
Mayhood, Todd
Sheth, Payal R.
Mirza, Asra
Labroli, Marc
Xiao, Li
McCoy, Mark
Gill, Charles J.
Pinho, Mariana G.
Schneider, Tanja
Roemer, Terry
Keywords: Microbiology
Parasitology
Virology
Immunology
Genetics
Molecular Biology
Issue Date: 1-May-2016
Abstract: Here we describe a chemical biology strategy performed in Staphylococcus aureus and Staphylococcus epidermidis to identify MnaA, a 2-epimerase that we demonstrate interconverts UDP-GlcNAc and UDP-ManNAc to modulate substrate levels of TarO and TarA wall teichoic acid (WTA) biosynthesis enzymes. Genetic inactivation of mnaA results in complete loss of WTA and dramatic in vitro β-lactam hypersensitivity in methicillin-resistant S. aureus (MRSA) and S. epidermidis (MRSE). Likewise, the β-lactam antibiotic imipenem exhibits restored bactericidal activity against mnaA mutants in vitro and concomitant efficacy against 2-epimerase defective strains in a mouse thigh model of MRSA and MRSE infection. Interestingly, whereas MnaA serves as the sole 2-epimerase required for WTA biosynthesis in S. epidermidis, MnaA and Cap5P provide compensatory WTA functional roles in S. aureus. We also demonstrate that MnaA and other enzymes of WTA biosynthesis are required for biofilm formation in MRSA and MRSE. We further determine the 1.9Å crystal structure of S. aureus MnaA and identify critical residues for enzymatic dimerization, stability, and substrate binding. Finally, the natural product antibiotic tunicamycin is shown to physically bind MnaA and Cap5P and inhibit 2-epimerase activity, demonstrating that it inhibits a previously unanticipated step in WTA biosynthesis. In summary, MnaA serves as a new Staphylococcal antibiotic target with cognate inhibitors predicted to possess dual therapeutic benefit: as combination agents to restore β-lactam efficacy against MRSA and MRSE and as non-bioactive prophylactic agents to prevent Staphylococcal biofilm formation.
Peer review: yes
URI: http://hdl.handle.net/10362/93081
DOI: https://doi.org/10.1371/journal.ppat.1005585
ISSN: 1553-7366
Appears in Collections:Home collection (ITQB)

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