The basal and major pilins in the Corynebacterium diphtheriaeSpaA pilus adopt similar structures that competitively react with the pilin polymerase

Author:

Sue Christopher K.12ORCID,Cheung Nicole A.23ORCID,Mahoney Brendan J.12ORCID,McConnell Scott A.12ORCID,Scully Jack M.12ORCID,Fu Janine Y.12ORCID,Chang Chungyu34ORCID,Ton‐That Hung34ORCID,Loo Joseph A.123ORCID,Clubb Robert T.123ORCID

Affiliation:

1. Department of Chemistry and Biochemistry University of California Los Angeles California USA

2. UCLA‐DOE Institute for Genomics and Proteomics, University of California Los Angeles California USA

3. Molecular Biology Institute, University of California Los Angeles California USA

4. Division of Oral and Systemic Health Sciences, School of Dentistry University of California Los Angeles California USA

Abstract

AbstractMany species of pathogenic gram‐positive bacteria display covalently crosslinked protein polymers (called pili or fimbriae) that mediate microbial adhesion to host tissues. These structures are assembled by pilus‐specific sortase enzymes that join the pilin components together via lysine‐isopeptide bonds. The archetypal SpaA pilus from Corynebacterium diphtheriae is built by the CdSrtA pilus‐specific sortase, which crosslinks lysine residues within the SpaA and SpaB pilins to build the shaft and base of the pilus, respectively. Here, we show that CdSrtA crosslinks SpaB to SpaA via a K139(SpaB)‐T494(SpaA) lysine‐isopeptide bond. Despite sharing only limited sequence homology, an NMR structure of SpaB reveals striking similarities with the N‐terminal domain of SpaA (NSpaA) that is also crosslinked by CdSrtA. In particular, both pilins contain similarly positioned reactive lysine residues and adjacent disordered AB loops that are predicted to be involved in the recently proposed “latch” mechanism of isopeptide bond formation. Competition experiments using an inactive SpaB variant and additional NMR studies suggest that SpaB terminates SpaA polymerization by outcompeting NSpaA for access to a shared thioester enzyme–substrate reaction intermediate.

Funder

National Institutes of Health

National Science Foundation

Publisher

Wiley

Subject

Organic Chemistry,Biomaterials,Biochemistry,General Medicine,Biophysics

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