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Sequence and Immunologic Conservation of Anaplasma Marginale OmpA Within Strains from Ghana As Compared to the Predominant OmpA Variant

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Journal PLoS One
Date 2019 Jul 11
PMID 31291256
Citations 4
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Abstract

A primary challenge in developing effective vaccines against obligate, intracellular, bacterial tick-borne pathogens that establish persistent infection is the identification of antigens that cross protect against multiple strains. In the case of Anaplasma marginale, the most prevalent tick-borne pathogen of cattle found worldwide, OmpA is an adhesin and thus a promising vaccine candidate. We sequenced ompA from cattle throughout Ghana naturally infected with A. marginale in order to determine the degree of variation in this gene in an area of suspected high genetic diversity. We compared the Ghanaian sequences with those available from N. America, Mexico, Australia and Puerto Rico. When considering only amino acid changes, three unique Ghanaian OmpA variants were identified. In comparison, strains from all other geographic regions, except one, shared a single OmpA variant, Variant 1, which differed from the Ghanaian variants. Next, using recombinant OmpA based on Variant 1, we determined that amino acid differences in OmpA in Ghanaian cattle as compared to OmpA Variant 1 did not alter the binding capacity of antibody directed against OmpA Variant 1, supporting the value of OmpA as a highly conserved vaccine candidate.

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References
1.
Brayton K, Knowles D, McGuire T, Palmer G . Efficient use of a small genome to generate antigenic diversity in tick-borne ehrlichial pathogens. Proc Natl Acad Sci U S A. 2001; 98(7):4130-5. PMC: 31191. DOI: 10.1073/pnas.071056298. View

2.
Tebele N, McGuire T, Palmer G . Induction of protective immunity by using Anaplasma marginale initial body membranes. Infect Immun. 1991; 59(9):3199-204. PMC: 258153. DOI: 10.1128/iai.59.9.3199-3204.1991. View

3.
Noh S, Zhuang Y, Futse J, Brown W, Brayton K, Palmer G . The immunization-induced antibody response to the Anaplasma marginale major surface protein 2 and its association with protective immunity. Vaccine. 2010; 28(21):3741-7. PMC: 2877794. DOI: 10.1016/j.vaccine.2010.02.067. View

4.
Noh S, Brayton K, Knowles D, Agnes J, Dark M, Brown W . Differential expression and sequence conservation of the Anaplasma marginale msp2 gene superfamily outer membrane proteins. Infect Immun. 2006; 74(6):3471-9. PMC: 1479288. DOI: 10.1128/IAI.01843-05. View

5.
Palmer G, Rurangirwa F, Kocan K, Brown W . Molecular basis for vaccine development against the ehrlichial pathogen Anaplasma marginale. Parasitol Today. 1999; 15(7):281-6. DOI: 10.1016/s0169-4758(99)01469-6. View