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Peptide Scanning-assisted Identification of a Monoclonal Antibody-recognized Linear B-cell Epitope
Published on: March 24, 2017
Structural basis for antibody binding to adenylate cyclase toxin reveals RTX linkers as neutralization-sensitive
Jory A Goldsmith1, Andrea M DiVenere2, Jennifer A Maynard2
1Department of Molecular Biosciences, The University of Texas at Austin, Austin, Texas, United States of America.
Abstract:
RTX leukotoxins are a diverse family of prokaryotic virulence factors that are secreted by the type 1 secretion system (T1SS) and target leukocytes to subvert host defenses. T1SS substrates all contain a C-terminal RTX domain that mediates recruitment to the T1SS and drives secretion via a Brownian ratchet mechanism. Neutralizing antibodies against the Bordetella pertussis adenylate cyclase toxin, an RTX leukotoxin essential for B. pertussis colonization, have been shown to target the RTX domain and prevent binding to the αMβ2 integrin receptor. Knowledge of the mechanisms by which antibodies bind and neutralize RTX leukotoxins is required to inform structure-based design of bacterial vaccines, however, no structural data are available for antibody binding to any T1SS substrate. Here, we determine the crystal structure of an engineered RTX domain fragment containing the αMβ2-binding site bound to two neutralizing antibodies. Notably, the receptor-blocking antibodies bind to the linker regions of RTX blocks I-III, suggesting they are key neutralization-sensitive sites within the RTX domain and are likely involved in binding the αMβ2 receptor. As the engineered RTX fragment contained these key epitopes, we assessed its immunogenicity in mice and showed that it elicits similar neutralizing antibody titers to the full RTX domain. The results from these studies will support the development of bacterial vaccines targeting RTX leukotoxins, as well as next-generation B. pertussis vaccines.
Insights
Researchers determined the structure of RTX leukotoxin fragments bound by neutralizing antibodies. This reveals key antibody binding sites crucial for developing new vaccines against bacterial infections like whooping cough.
Area of Science:
- Microbiology and Immunology
- Structural Biology
- Vaccine Development
Background:
- RTX leukotoxins are bacterial virulence factors secreted via the type 1 secretion system (T1SS).
- These toxins target leukocytes, subverting host defenses and are essential for pathogens like Bordetella pertussis.
- Neutralizing antibodies against RTX leukotoxins target the C-terminal RTX domain, preventing receptor binding.
Purpose of the Study:
- To elucidate the structural basis of antibody neutralization of RTX leukotoxins.
- To inform the structure-based design of novel bacterial vaccines targeting RTX leukotoxins.
- To investigate the immunogenicity of key RTX domain epitopes.
Main Methods:
- Determined the crystal structure of an engineered RTX domain fragment bound to two neutralizing antibodies.
- Identified antibody binding sites within the RTX domain fragment.
- Assessed the immunogenicity of the engineered RTX fragment in a mouse model.
Main Results:
- The crystal structure revealed that receptor-blocking antibodies bind to linker regions within RTX blocks I-III.
- These binding sites are critical for αMβ2 integrin receptor interaction and neutralization.
- The engineered RTX fragment elicited neutralizing antibody titers comparable to the full RTX domain in mice.
Conclusions:
- The linker regions of RTX blocks I-III are key neutralization-sensitive sites.
- The findings support the development of RTX leukotoxin-targeting vaccines.
- This work contributes to next-generation Bordetella pertussis vaccines.
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