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M1 protein from group A Streptococcus affects fibrin clot formation, structure, and fibrinolytic potential
Sophie Cherrington1, Lewis J Hardy2, Azhar Maqbool2
1Standards Lifecycle, Science Research and Innovation, Medicines and Healthcare Products Regulatory Agency, South Mimms, United Kingdom.
Abstract:
M1 protein is a major virulence determinant of group A Streptococcus (GAS). During infection, M1 is cleaved from the cell surface by host and bacterial proteases resulting in soluble M1 at the site of infection. M1 forms a supramolecular complex with host fibrinogen. We hypothesize that this supramolecular complex affects the formation of fibrin clots. Fibrin formation is an essential part of innate immunity, sealing off infections to limit bacteria spreading. The effects of recombinant M1 (rM1) were assessed in fibrin clots made from whole blood, plasma, or purified fibrinogen incubated in thrombin by a semiautomated coagulation analyzer, permeation studies, confocal microscopy, and scanning electron microscopy. Clotting and lysis profiles (with plasminogen activators and plasminogen) were investigated using microtiter plate assays and kinetically with rotational thromboelastography. Factor XIII crosslinking was quantified using commercial kits and sodium dodecyl sulfate-polyacrylamide gel electrophoresis densitometry analysis. This study demonstrated that rM1-bound (0.47-60 μg/mL) fibrinogen produced clots with remarkably different structures and properties compared with clots without rM1. Inclusion of rM1 formed heterogeneous clots with irregular fiber bundles and compacted fibrin. Formation of the protective fibrin film was disrupted by rM1. Furthermore, mechanical strength of fibrin clots was reduced, and the fibrin networks were more porous with increased fluid permeability. Fibrin clots formed using whole blood incorporating rM1 were more susceptible to lysis by plasmin. GAS strains of M1 type are often associated with invasive infections; the impact of M1 on fibrin structure could contribute to the severity of GAS infection by compromising the fibrin barrier that limits bacterial proliferation and migration.
Insights
Group A Streptococcus M1 protein disrupts fibrin clot formation, weakening the immune barrier. This molecular interaction may increase the severity of invasive streptococcal infections by compromising clot structure and promoting bacterial spread.
Area of Science:
- Microbiology
- Immunology
- Biochemistry
Background:
- Group A Streptococcus (GAS) M1 protein is a key virulence factor.
- M1 protein is released as soluble M1 during infection and binds to host fibrinogen.
- Fibrin clot formation is crucial for innate immunity, limiting pathogen spread.
Purpose of the Study:
- To investigate the effects of M1 protein on fibrin clot formation and structure.
- To determine how M1-fibrinogen complexes influence clot properties and host defense.
Main Methods:
- Recombinant M1 (rM1) was used to form fibrin clots from whole blood, plasma, or purified fibrinogen.
- Assays included coagulation analysis, permeation studies, microscopy (confocal and scanning electron), thromboelastography, and Factor XIII crosslinking quantification.
Main Results:
- rM1 significantly altered fibrin clot structure, creating heterogeneous clots with irregular fibers and compacted fibrin.
- Inclusion of rM1 disrupted protective fibrin film formation, reduced mechanical strength, and increased clot porosity and permeability.
- Fibrin clots containing rM1 were more susceptible to lysis by plasmin.
Conclusions:
- M1 protein binding to fibrinogen fundamentally changes fibrin clot properties.
- Compromised fibrin barrier integrity due to M1 may contribute to the severity of invasive GAS infections by facilitating bacterial migration and proliferation.
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