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Genetic basis for GPI-anchor merozoite surface antigen polymorphism of Babesia and resulting antigenic diversity
Bernard Carcy1, Eric Précigout, Theo Schetters
1Laboratoire de Biologie Cellulaire et Moléculaire, EA MESR 2413, ERT 1038 Vaccination antiparasitaire, UFR des Sciences Pharmaceutiques et Biologiques, BP 14491, F-34093 Montpellier Cedex 5, France. bcarcy@ww3.pharma.univ-montp1.fr
Abstract:
Glycosyl-phosphatidylinositol anchor merozoite surface antigens (GPI-anchor MSA) are proposed to act in the invasion process of infective merozoites of Babesia into host erythrocytes. Because of their essential function in the survival of Babesia parasites, they constitute good candidates for the development of vaccines against babesiosis and they have been extensively analyzed. These include Babesia bovis variable MSA (VMSA) and Babesia bigemina gp45/gp55 proteins of the agents of bovine babesiosis from tropical and subtropical countries, and the Babesia divergens Bd37 and Babesia canis Bc28 proteins of the main agents of bovine and canine babesiosis in Europe, respectively. However, these are very polymorphic antigens and Babesia parasites have evolved molecular mechanisms that enable these antigens to evade the host immune system as a survival strategy. This review focuses on the genetic basis of GPI-anchor MSA polymorphism and the antigenic diversity of B-cell epitopes that might be generated in each of these Babesia species. The picture is incomplete and no Babesia genome sequence is yet available. However, the available sequences suggest that two distinct, non cross-reactive GPI-anchor MSA (i.e., with unique B-cell epitopes) may be required by all Babesia species for invasion, and that these two distinct GPI-anchor MSA would be encoded by a multigene family. Furthermore, the data are consistent with the ability of biological clones from Babesia to use these multigene families for the expression of GPI-anchor MSA, either conserved (B. canis and B. bovis) or polymorphic (B. divergens and B. bigemina) in their amino acid sequence. Moreover, as a consequence for successful parasitism, the data suggest that both conserved and polymorphic GPI-anchor MSA would present unique B-cell epitopes.
Insights
Glycosyl-phosphatidylinositol anchor merozoite surface antigens (GPI-anchor MSA) are crucial for Babesia parasite invasion and survival. Understanding their genetic basis and antigenic diversity is key for developing effective vaccines against babesiosis.
Area of Science:
- Parasitology
- Immunology
- Molecular Biology
Background:
- Glycosyl-phosphatidylinositol anchor merozoite surface antigens (GPI-anchor MSA) are vital for Babesia parasite invasion of host erythrocytes.
- These antigens are key targets for vaccine development against babesiosis, a significant disease in livestock and companion animals.
- Babesia parasites exhibit significant GPI-anchor MSA polymorphism, enabling immune evasion and posing challenges for vaccine design.
Purpose of the Study:
- To review the genetic basis of GPI-anchor MSA polymorphism in Babesia species.
- To explore the antigenic diversity of B-cell epitopes within these essential parasitic antigens.
- To assess the implications of GPI-anchor MSA diversity for vaccine development against babesiosis.
Main Methods:
- Literature review of existing studies on Babesia GPI-anchor MSA.
- Analysis of available genetic sequences to understand polymorphism and gene families.
- Comparative analysis of conserved and polymorphic GPI-anchor MSA across different Babesia species.
Main Results:
- Available data suggest all Babesia species may require two distinct, non-cross-reactive GPI-anchor MSA for invasion, encoded by a multigene family.
- Babesia clones utilize these multigene families to express either conserved or polymorphic GPI-anchor MSA.
- Both conserved and polymorphic GPI-anchor MSA present unique B-cell epitopes, influencing host immune responses.
Conclusions:
- GPI-anchor MSA polymorphism is a critical survival strategy for Babesia parasites.
- Understanding the genetic diversity and epitope landscape of GPI-anchor MSA is essential for developing broadly protective babesiosis vaccines.
- Further research, including genome sequencing, is needed to fully elucidate the complexity of GPI-anchor MSA in Babesia.
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