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Resistance to both complement activation and phagocytosis in type 3 pneumococci is mediated by the binding of
C Neeleman1, S P Geelen, P C Aerts
1Eijkman-Winkler Laboratory of Medical Microbiology, The Netherlands.
Abstract:
To study the role of surface-associated proteins in the virulence of Streptococcus pneumoniae, we used two serotype 3 strains, ATCC 6303 and WU2, and two PspA-negative mutants of WU2, an encapsulated one, JY1123 (Caps(+)/PspA(-)), and an unencapsulated one, DW3.8 (Caps(-)/PspA(-)). ATCC 6303 and WU2 were highly virulent in mice, while the virulence of JY1123 was slightly decreased (50% lethal doses [LD(50)s], 24, 6, and 147 CFU/mouse, respectively); DW3.8 was avirulent (LD(50), 2 x 10(8) CFU). In vitro, ATCC 6303, WU2, and JY1123 (Caps(+)/PspA(-)) strongly resisted complement activation and complement-dependent opsonophagocytosis, whereas DW3.8 (Caps(-)/PspA(-)) was easily phagocytized in fresh serum. Trypsin treatment of ATCC 6303, WU2, and JY1123 (Caps(+)/PspA(-)) resulted in enhanced complement activation and complement-dependent opsonophagocytosis. Trypsin had no deleterious effect on the polysaccharide capsule. In addition, trypsin pretreatment of ATCC 6303 strongly reduced virulence upon intraperitoneal challenge in mice. This indicated that surface proteins play a role in the resistance to complement activation and opsonophagocytosis and contribute to the virulence of type 3 pneumococci. In subsequent experiments, we could show that the modulation of complement activation was associated with surface components that bind complement regulator factor H; binding is trypsin sensitive and independent of prior complement activation. Immunoblotting of cell wall proteins of the virulent strain ATCC 6303 with anti-human factor H antibody revealed three factor H-binding proteins of 88, 150, and 196 kDa. Immunogold electron microscopy showed a close association of factor H-binding components with the outer surface of the cell wall. The role of these factor H-binding surface proteins in the virulence of pneumococci is interesting and warrants further investigation.
Insights
Surface proteins on Streptococcus pneumoniae are crucial for evading the immune system. These proteins help bacteria resist complement activation and opsonophagocytosis, contributing to virulence in mice.
Area of Science:
- Microbiology
- Immunology
- Pathogenesis
Background:
- Streptococcus pneumoniae is a major cause of bacterial infections.
- Surface-associated proteins play a role in bacterial virulence.
- Understanding these proteins is key to developing new treatments.
Purpose of the Study:
- To investigate the role of surface-associated proteins in Streptococcus pneumoniae virulence.
- To determine how these proteins affect complement activation and opsonophagocytosis.
- To identify specific proteins involved in immune evasion.
Main Methods:
- Used two virulent serotype 3 strains (ATCC 6303, WU2) and PspA-negative mutants.
- Assessed virulence in mice (LD50) and in vitro complement resistance.
- Utilized trypsin treatment to probe protein function and identified factor H-binding proteins via immunoblotting and electron microscopy.
Main Results:
- Encapsulated strains (ATCC 6303, WU2, JY1123) resisted complement activation and opsonophagocytosis.
- Trypsin treatment of these strains enhanced complement activation and opsonophagocytosis, reducing virulence.
- Identified three trypsin-sensitive, factor H-binding proteins (88, 150, 196 kDa) on the bacterial surface.
Conclusions:
- Surface proteins contribute significantly to Streptococcus pneumoniae virulence by resisting complement-mediated immunity.
- Factor H-binding proteins are implicated in modulating complement activation and immune evasion.
- Further research into these surface proteins could reveal novel therapeutic targets.
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