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SCM, the M Protein of Streptococcus canis Binds Immunoglobulin G
Simone Bergmann1, Inga Eichhorn2, Thomas P Kohler3
1Department of Medical Microbiology, Helmholtz Center for Infection Research Braunschweig, Germany.
Abstract:
The M protein of Streptococcus canis (SCM) is a virulence factor and serves as a surface-associated receptor with a particular affinity for mini-plasminogen, a cleavage product of the broad-spectrum serine protease plasmin. Here, we report that SCM has an additional high-affinity immunoglobulin G (IgG) binding activity. The ability of a particular S. canis isolate to bind to IgG significantly correlates with a scm-positive phenotype, suggesting a dominant role of SCM as an IgG receptor. Subsequent heterologous expression of SCM in non-IgG binding S. gordonii and Western Blot analysis with purified recombinant SCM proteins confirmed its IgG receptor function. As expected for a zoonotic agent, the SCM-IgG interaction is species-unspecific, with a particular affinity of SCM for IgGs derived from human, cats, dogs, horses, mice, and rabbits, but not from cows and goats. Similar to other streptococcal IgG-binding proteins, the interaction between SCM and IgG occurs via the conserved Fc domain and is, therefore, non-opsonic. Interestingly, the interaction between SCM and IgG-Fc on the bacterial surface specifically prevents opsonization by C1q, which might constitute another anti-phagocytic mechanism of SCM. Extensive binding analyses with a variety of different truncated SCM fragments defined a region of 52 amino acids located in the central part of the mature SCM protein which is important for IgG binding. This binding region is highly conserved among SCM proteins derived from different S. canis isolates but differs significantly from IgG-Fc receptors of S. pyogenes and S. dysgalactiae sub. equisimilis, respectively. In summary, we present an additional role of SCM in the pathogen-host interaction of S. canis. The detailed analysis of the SCM-IgG interaction should contribute to a better understanding of the complex roles of M proteins in streptococcal pathogenesis.
Insights
The Streptococcus canis M protein (SCM) binds to immunoglobulin G (IgG), acting as a virulence factor. This interaction prevents bacterial opsonization and phagocytosis, aiding S. canis survival.
Area of Science:
- Microbiology
- Immunology
- Molecular Biology
Background:
- Streptococcus canis M protein (SCM) is a known virulence factor and receptor for mini-plasminogen.
- The role of SCM in pathogen-host interactions, particularly its potential immunomodulatory functions, remains incompletely understood.
- Understanding SCM's interactions with host immune components is crucial for deciphering Streptococcus canis pathogenesis.
Purpose of the Study:
- To investigate the potential of SCM as an immunoglobulin G (IgG) binding protein.
- To characterize the molecular mechanism and species-specificity of the SCM-IgG interaction.
- To identify the specific region of SCM responsible for IgG binding and its implications in host-pathogen interactions.
Main Methods:
- Correlation analysis between SCM-positive phenotype and IgG binding in S. canis isolates.
- Heterologous expression of SCM in Streptococcus gordonii and Western Blot analysis with purified recombinant SCM.
- Binding assays with various animal IgGs and truncated SCM fragments to map the IgG-binding domain.
Main Results:
- SCM exhibits high-affinity, species-unspecific binding to IgG from humans, cats, dogs, horses, mice, and rabbits.
- The SCM-IgG interaction occurs via the conserved Fc domain, is non-opsonic, and inhibits C1q-mediated opsonization.
- A 52-amino acid central region of SCM was identified as critical for IgG binding, distinct from other streptococcal IgG-Fc receptors.
Conclusions:
- SCM functions as a novel IgG receptor in Streptococcus canis, contributing to its virulence.
- The non-opsonic binding of IgG by SCM represents an anti-phagocytic mechanism, enhancing bacterial survival.
- Detailed characterization of the SCM-IgG interaction provides insights into streptococcal pathogenesis and M protein diversity.
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