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Conjugative Mating Assays for Sequence-specific Analysis of Transfer Proteins Involved in Bacterial Conjugation
Published on: January 4, 2017
Mode of expression and functional characterization of FCT-3 pilus region-encoded proteins in Streptococcus pyogenes
Masanobu Nakata1, Thomas Köller, Karin Moritz
1Institute of Medical Microbiology, Virology and Hygiene, Schillingallee 70, 18055 Rostock, Germany.
Abstract:
The human pathogen Streptococcus pyogenes (group A streptococcus [GAS]) pilus components, suggested to play a role in pathogenesis, are encoded in the variable FCT (fibronectin- and collagen-binding T-antigen) region. We investigated the functions of sortase A (SrtA), sortase C2 (SrtC2), and the FctA protein of the most prevalent type 3 FCT region from a serotype M49 strain. Although it is considered a housekeeping sortase, SrtA's activity is involved in pilus formation in addition to its essentiality for GAS extracellular matrix protein binding, host cell adherence/internalization, survival in human blood, and biofilm formation. SrtC2 activity is crucial for pilus formation but dispensable for the other phenotypes tested in vitro. FctA is the major pilus backbone protein, simultaneously acting as the M49 T antigen, and requires SrtC2 and LepA, a signal peptidase I homologue, for monomeric surface expression and polymerization, respectively. Collagen-binding protein Cpa expression supports pilus formation at the pilus base. Immunofluorescence microscopy and fluorescence-activated cell sorting analysis revealed several unexpected expression patterns, as follows: (i) the monomeric pilus protein FctA was found exclusively at the old poles of GAS cells, (ii) FctA protein expression increased with lower temperatures, and (iii) FctA protein expression was restricted to 20 to 50% of a given GAS M49 population, suggesting regulation by a bistability mode. Notably, disruption of pilus assembly by sortase deletion rendered GAS serotype M49 significantly more aggressive in a dermonecrotic mouse infection model, indicating that sortase activity and, consequently, pilus expression allow a subpopulation of this GAS serotype to be less aggressive. Thus, pilus expression may not be a virulence attribute of GAS per se.
Insights
Streptococcus pyogenes pilus formation, regulated by sortase enzymes and FctA protein, surprisingly reduces virulence in a mouse model. This suggests pilus expression may not be a direct virulence factor for this pathogen.
Area of Science:
- Microbiology
- Molecular Biology
- Pathogenesis
Background:
- Streptococcus pyogenes (group A streptococcus, GAS) utilizes pilus components encoded in the FCT region for pathogenesis.
- Sortase enzymes (SrtA, SrtC2) and FctA protein are key factors in GAS pilus assembly and function.
Purpose of the Study:
- To investigate the specific roles of SrtA, SrtC2, and FctA in Streptococcus pyogenes pilus formation and virulence.
- To elucidate the expression patterns and regulation of FctA, the major pilus backbone protein.
Main Methods:
- Investigated sortase A (SrtA), sortase C2 (SrtC2), and FctA protein functions in a serotype M49 strain.
- Utilized immunofluorescence microscopy and fluorescence-activated cell sorting (FACS) to analyze protein expression patterns.
- Assessed bacterial virulence in a dermonecrotic mouse infection model.
Main Results:
- SrtA is essential for pilus formation, extracellular matrix binding, host cell interaction, and biofilm formation.
- SrtC2 is crucial for pilus formation but not for other tested in vitro phenotypes.
- FctA, the M49 T antigen, requires SrtC2 and LepA for surface expression and polymerization.
- Unexpected FctA expression patterns observed: localized to old poles, increased at lower temperatures, and restricted to a subpopulation (bistability).
- Disruption of pilus assembly increased GAS M49 virulence in mice.
Conclusions:
- Pilus expression, mediated by SrtA, SrtC2, and FctA, is not a direct virulence attribute of Streptococcus pyogenes.
- A subpopulation of GAS M49 with active pilus expression appears less aggressive, suggesting a complex regulatory role in pathogenesis.
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