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Microbes bind complement inhibitor factor H via a common site
T Meri1, H Amdahl, M J Lehtinen
1Haartman Institute, Department of Bacteriology and Immunology and Immunobiology Research Program, University of Helsinki, Helsinki, Finland. taru.meri@helsinki.fi
Abstract:
To cause infections microbes need to evade host defense systems, one of these being the evolutionarily old and important arm of innate immunity, the alternative pathway of complement. It can attack all kinds of targets and is tightly controlled in plasma and on host cells by plasma complement regulator factor H (FH). FH binds simultaneously to host cell surface structures such as heparin or glycosaminoglycans via domain 20 and to the main complement opsonin C3b via domain 19. Many pathogenic microbes protect themselves from complement by recruiting host FH. We analyzed how and why different microbes bind FH via domains 19-20 (FH19-20). We used a selection of FH19-20 point mutants to reveal the binding sites of several microbial proteins and whole microbes (Haemophilus influenzae, Bordetella pertussis, Pseudomonas aeruginosa, Streptococcus pneumonia, Candida albicans, Borrelia burgdorferi, and Borrelia hermsii). We show that all studied microbes use the same binding region located on one side of domain 20. Binding of FH to the microbial proteins was inhibited with heparin showing that the common microbial binding site overlaps with the heparin site needed for efficient binding of FH to host cells. Surprisingly, the microbial proteins enhanced binding of FH19-20 to C3b and down-regulation of complement activation. We show that this is caused by formation of a tripartite complex between the microbial protein, FH, and C3b. In this study we reveal that seven microbes representing different phyla utilize a common binding site on the domain 20 of FH for complement evasion. Binding via this site not only mimics the glycosaminoglycans of the host cells, but also enhances function of FH on the microbial surfaces via the novel mechanism of tripartite complex formation. This is a unique example of convergent evolution resulting in enhanced immune evasion of important pathogens via utilization of a "superevasion site."
Insights
Pathogenic microbes evade immune systems by binding to human factor H (FH) using a shared "superevasion site" on domain 20. This binding mimics host cell surfaces and enhances FH
Area of Science:
- Immunology
- Microbiology
- Molecular Biology
Background:
- Innate immunity relies on the complement system to eliminate pathogens.
- The alternative pathway of complement is a crucial defense mechanism.
- Factor H (FH) regulates complement activation on host cells.
Purpose of the Study:
- To investigate the mechanism by which diverse microbes bind factor H (FH) for immune evasion.
- To identify the specific binding sites and functional consequences of microbial FH recruitment.
Main Methods:
- Utilized point mutants of FH domains 19-20 (FH19-20) to map microbial binding sites.
- Tested binding of FH19-20 to various microbial proteins and whole microbes (e.g., *Haemophilus influenzae*, *Candida albicans*).
- Assessed the impact of microbial binding on FH's interaction with C3b and complement activation.
Main Results:
- Seven distinct microbial species utilize a common binding region on FH domain 20.
- This microbial binding site overlaps with the heparin-binding site on FH.
- Microbial recruitment of FH enhances FH binding to C3b, forming a tripartite complex and down-regulating complement activation.
Conclusions:
- Microbes have convergently evolved to exploit a conserved FH binding site for immune evasion.
- This
- Meta_Description='Microbes use a common
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