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Published on: June 24, 2016
Identification of OprF as a complement component C3 binding acceptor molecule on the surface of Pseudomonas
Meenu Mishra1, Adam Ressler2, Larry S Schlesinger3
1Department of Microbial Infection and Immunity, The Ohio State University, Columbus, Ohio, USA Center for Microbial Interface Biology, The Ohio State University, Columbus, Ohio, USA.
Abstract:
Pseudomonas aeruginosa is a versatile opportunistic pathogen that can cause devastating persistent infections. Complement is a highly conserved pathway of the innate immune system, and its role in the first line of defense against pathogens is widely appreciated. One of the earliest events in the complement cascade is the conversion of C3 to C3a and C3b, the latter typically binds to one or more acceptor molecules on the pathogen surface. We previously demonstrated that complement C3b binding acceptors exist on the P. aeruginosa surface. In the current study, we utilized either C3 polyclonal or C3b monoclonal antibodies in a far-Western technique followed by mass spectroscopy to identify the C3b acceptor molecule(s) on the P. aeruginosa surface. Our data provide evidence that OprF (an outer membrane porin, highly conserved in the Pseudomonadaceae) binds C3b. An oprF-deficient P. aeruginosa strain exhibits reduced C3 deposition compared to the wild type. We observed reduced internalization of oprF-deficient bacteria by neutrophils after opsonization compared with wild-type P. aeruginosa. Heterologous expression of OprF significantly enhanced C3b binding and increased serum-mediated bactericidal effects in complement-susceptible Escherichia coli. Furthermore, the predicted secondary structure of the C-terminal, surface-exposed region of OprF has high structural identity to the OmpA domain of several other Gram-negative bacteria, one of which is known to bind C3b. Therefore, these findings provide new insights into the biology of complement interactions with P. aeruginosa and other Gram-negative bacteria.
Insights
Pseudomonas aeruginosa outer membrane porin F (OprF) binds complement C3b, a key immune molecule. This interaction impacts bacterial persistence and neutrophil interactions, offering new therapeutic targets for Gram-negative infections.
Area of Science:
- Immunology
- Microbiology
- Structural Biology
Background:
- The complement system is crucial for innate immunity against pathogens.
- Pseudomonas aeruginosa causes persistent infections, and its interaction with complement is not fully understood.
- Complement C3b opsonization is vital for pathogen clearance.
Purpose of the Study:
- To identify the specific molecule on Pseudomonas aeruginosa that binds complement C3b.
- To investigate the functional significance of C3b binding to P. aeruginosa.
- To explore the potential role of OprF in complement interactions with Gram-negative bacteria.
Main Methods:
- Far-Western blotting with C3/C3b antibodies followed by mass spectrometry to identify C3b-binding proteins.
- Construction and analysis of an oprF-deficient P. aeruginosa strain.
- Opsonization assays and neutrophil phagocytosis studies.
- Heterologous expression of OprF in E. coli to assess C3b binding and bactericidal activity.
Main Results:
- Outer membrane protein F (OprF) was identified as a direct binding molecule for C3b on P. aeruginosa.
- An oprF-deficient strain showed reduced C3 deposition and impaired neutrophil uptake after opsonization.
- Heterologous OprF expression in E. coli enhanced C3b binding and serum-mediated killing.
- OprF's C-terminal region shares structural similarity with other C3b-binding domains.
Conclusions:
- OprF is a significant C3b-binding protein on P. aeruginosa, influencing innate immune responses.
- Targeting OprF may offer a strategy to enhance complement-mediated clearance of P. aeruginosa.
- OprF represents a conserved mechanism for complement evasion or interaction in Gram-negative bacteria.
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