C-Terminal Invariable Domain of VlsE May Not Serve as Target for Protective Immune Response againstBorrelia burgdorferi
- 1 March 2001
- journal article
- Published by American Society for Microbiology in Infection and Immunity
- Vol. 69 (3), 1337-43
- https://doi.org/10.1128/iai.69.3.1337-1343.2001
Abstract
VlsE, the variable surface antigen of the Lyme disease spirochete,Borrelia burgdorferi, contains two invariable domains, at the amino and carboxyl termini, respectively, which collectively account for approximately one-half of the entire molecule's length and remain unchanged during antigenic variation. It is not known if these two invariable domains are exposed at the surface of either the antigen or the spirochete. If they are exposed at the spirochete's surface, they may elicit a protective immune response againstB. burgdorferiand serve as vaccine candidates. In this study, a 51-mer synthetic peptide that reproduced the entire sequence of the C-terminal invariable domain of VlsE was conjugated to the carrier keyhole limpet hemocyanin and used to immunize mice. Generated mouse antibody was able to immunoprecipitate native VlsE extracted from culturedB. burgdorferiB31 spirochetes, indicating that the C-terminal invariable domain was exposed at the antigen's surface. However, this domain was inaccessible to antibody binding at the surface of cultured intact spirochetes, as demonstrated by both an immunofluorescence experiment and an in vitro killing assay. Mouse antibody to the C-terminal invariable domain was not able to confer protection againstB. burgdorferiinfection, indicating that this domain was unlikely exposed at the spirochete's surface in vivo. We concluded that the C-terminal invariable domain was exposed at the antigen's surface but not at the surface of either cultured or in vivo spirochetes and thus cannot elicit protection againstB. burgdorferiinfection.Keywords
This publication has 20 references indexed in Scilit:
- A new animal model for studying Lyme disease spirochetes in a mammalian host-adapted state.Journal of Clinical Investigation, 1998
- Direct demonstration of antigenic substitution of Borrelia burgdorferi ex vivo: exploration of the paradox of the early immune response to outer surface proteins A and C in Lyme disease.The Journal of Experimental Medicine, 1996
- Antigenic variation in African trypanosomesTrends in Genetics, 1992
- Molecular genetics of antigenic variationImmunology Today, 1991
- Antigenic variation is associated with DNA rearrangements in a relapsing fever borreliaCell, 1985
- Variable major proteins of Borrelia hermsii. Epitope mapping and partial sequence analysis of CNBr peptides.The Journal of Experimental Medicine, 1985
- Antigenic variation of Borrelia hermsii.The Journal of Experimental Medicine, 1982
- Molecular basis for trypanosome antigenic variationCell, 1982
- Electrophoretic transfer of proteins from polyacrylamide gels to nitrocellulose sheets: procedure and some applications.Proceedings of the National Academy of Sciences, 1979
- Crossreacting determinants in the C-terminal region of trypanosome variant surface antigensNature, 1979