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Updated: Sep 26, 2025

Constructing Mutants in Serotype 1 Streptococcus pneumoniae strain 519/43
Published on: September 11, 2020
Evolution of Streptococcus pyogenes has maximized the efficiency of the Sortase A cleavage motif for cell wall
Bradley M Readnour1, Yetunde A Ayinuola2, Brady T Russo1
1W. M. Keck Center for Transgene Research, University of Notre Dame, Notre Dame, Indiana, USA; Department of Chemistry and Biochemistry, University of Notre Dame, Notre Dame, Indiana, USA.
Abstract:
Trafficking of M-protein (Mprt) from the cytosol of Group A Streptococcus pyogenes (GAS) occurs via Sec translocase membrane channels that associate with Sortase A (SrtA), an enzyme that catalyzes cleavage of Mprt at the proximal C-terminal [-LPST355∗GEAA-] motif and subsequent transpeptidation of the Mprt-containing product to the cell wall (CW). These steps facilitate stable exposure of the N-terminus of Mprt to the extracellular milieu where it interacts with ligands. Previously, we found that inactivation of SrtA in GAS cells eliminated Mprt CW transpeptidation but effected little reduction in its cell surface exposure, indicating that the C-terminus of Mprt retained in the cytoplasmic membrane (CM) extends its N-terminus to the cell surface. Herein, we assessed the effects of mutating the Thr355 residue in the WT SrtA consensus sequence (LPST355∗GEAA-) in a specific Mprt, PAM. In vitro, we found that synthetic peptides with mutations (LPSX355GEAA) in the SrtA cleavage site displayed slower cleavage activities with rSrtA than the WT peptide. Aromatic residues at X had the lowest activities. Nonetheless, PAM/[Y355G] still transpeptidated the CW in vivo. However, when using isolated CMs from srtA-inactivated GAS cells, rapid cleavage of PAM/[LPSY355GEAA] occurred at E357∗ but transpeptidation did not take place. These results show that another CM-resident enzyme nonproductively cleaved PAM/[LPSYGE357∗AA]. However, SrtA associated with the translocon channel in vivo cleaved and transpeptidated PAM/[LPSX355∗GEAA] variants. These CM features allow diverse cleavage site variants to covalently attach to the CW despite the presence of other potent nonproductive CM proteases.
Insights
Group A Streptococcus M-protein (Mprt) anchors to the cell wall via Sortase A (SrtA) and translocase channels. Even with altered cleavage sites, Mprt attaches to the cell wall, resisting other proteases.
Area of Science:
- Microbiology
- Molecular Biology
- Biochemistry
Background:
- Group A Streptococcus pyogenes (GAS) utilizes Sortase A (SrtA) for M-protein (Mprt) cell wall anchoring.
- Mprt trafficking involves Sec translocase channels and SrtA-mediated cleavage and transpeptidation.
- Previous studies indicated Mprt cell surface exposure independent of SrtA-mediated transpeptidation.
Purpose of the Study:
- Investigate the impact of mutations in the SrtA cleavage motif of Mprt.
- Determine the role of specific residues within the SrtA consensus sequence.
- Elucidate the mechanism of Mprt cell wall attachment in the presence of alternative proteases.
Main Methods:
- In vitro cleavage assays with recombinant SrtA (rSrtA) and synthetic Mprt peptides.
- In vivo transpeptidation assays using mutated Mprt in GAS.
- Analysis of isolated cytoplasmic membranes (CMs) from srtA-inactivated GAS cells.
Main Results:
- Mutations in the SrtA cleavage site (LPST355GEAA) reduced in vitro cleavage by rSrtA, particularly with aromatic residues at position 355.
- Despite mutations, Mprt variants like PAM/[Y355G] still transpeptidated to the cell wall in vivo.
- Isolated CMs showed nonproductive cleavage of PAM/[LPSY355GEAA] by a different protease at E357, while SrtA associated with translocons mediated productive cleavage and transpeptidation.
Conclusions:
- SrtA, in conjunction with translocon channels, efficiently cleaves and anchors diverse Mprt cleavage site variants to the cell wall.
- The cytoplasmic membrane harbors proteases that can nonproductively cleave Mprt, but SrtA's activity ensures cell wall attachment.
- This mechanism allows for robust Mprt display on the GAS cell surface, crucial for host-pathogen interactions.
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