Invasive Staphylococcus epidermidis uses a unique processive wall teichoic acid glycosyltransferase to evade immune recognition

Author:

Guo Yinglan12ORCID,Du Xin234ORCID,Krusche Janes234ORCID,Beck Christian234ORCID,Ali Sara5,Walter Axel26ORCID,Winstel Volker34ORCID,Mayer Christoph26ORCID,Codée Jeroen D. C.5ORCID,Peschel Andreas234ORCID,Stehle Thilo12ORCID

Affiliation:

1. Interfaculty Institute of Biochemistry, University of Tübingen, Tübingen, Germany.

2. Cluster of Excellence “Controlling Microbes to Fight Infections (CMFI)”, University of Tübingen, Tübingen, Germany.

3. Interfaculty Institute of Microbiology and Infection Medicine Tübingen, Infection Biology, University of Tübingen, Tübingen, Germany.

4. German Centre for Infection Research (DZIF), Partner Site Tübingen, Tübingen, Germany.

5. Leiden Institute of Chemistry, Leiden University, Leiden, Netherlands.

6. Interfaculty Institute of Microbiology and Infection Medicine Tübingen, Organismic Interactions/Glycobiology, University of Tübingen, Tübingen, Germany.

Abstract

Staphylococcus epidermidis expresses glycerol phosphate wall teichoic acid (WTA), but some health care–associated methicillin-resistant S. epidermidis (HA-MRSE) clones produce a second, ribitol phosphate (RboP) WTA, resembling that of the aggressive pathogen Staphylococcus aureus . RboP-WTA promotes HA-MRSE persistence and virulence in bloodstream infections. We report here that the TarM enzyme of HA-MRSE [TarM(Se)] glycosylates RboP-WTA with glucose, instead of N -acetylglucosamine (GlcNAc) by TarM(Sa) in S. aureus . Replacement of GlcNAc with glucose in RboP-WTA impairs HA-MRSE detection by human immunoglobulin G, which may contribute to the immune-evasion capacities of many invasive S. epidermidis . Crystal structures of complexes with uridine diphosphate glucose (UDP-glucose), and with UDP and glycosylated poly(RboP), reveal the binding mode and glycosylation mechanism of this enzyme and explain why TarM(Se) and TarM(Sa) link different sugars to poly(RboP). These structural data provide evidence that TarM(Se) is a processive WTA glycosyltransferase. Our study will support the targeted inhibition of TarM enzymes, and the development of RboP-WTA targeting vaccines and phage therapies.

Publisher

American Association for the Advancement of Science (AAAS)

Subject

Multidisciplinary

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