Discovery of GAMA, a Plasmodium falciparum Merozoite Micronemal Protein, as a Novel Blood-Stage Vaccine Candidate Antigen

Author:

Arumugam Thangavelu U.1,Takeo Satoru1,Yamasaki Tsutomu1,Thonkukiatkul Amporn2,Miura Kazutoyo3,Otsuki Hitoshi4,Zhou Hong3,Long Carole A.3,Sattabongkot Jetsumon5,Thompson Jennifer6,Wilson Danny W.6,Beeson James G.7,Healer Julie6,Crabb Brendan S.7,Cowman Alan F.6,Torii Motomi89,Tsuboi Takafumi1109

Affiliation:

1. Cell-Free Science and Technology Research Center, Ehime University, Matsuyama, Ehime 790-8577, Japan

2. Department of Biology, Faculty of Science, Burapha University, Chonburi 20131, Thailand

3. Laboratory of Malaria and Vector Research, National Institute of Allergy and Infectious Diseases, National Institutes of Health, Rockville, Maryland

4. Division of Medical Zoology, Faculty of Medicine, Tottori University, Yonago, Tottori 683-8503, Japan

5. Entomology Department, Armed Forces Research Institute of Medical Sciences, Bangkok 10400, Thailand

6. The Walter and Eliza Hall Institute for Medical Research, Melbourne, Victoria 3052, Australia

7. Burnet Institute, Melbourne, Victoria 3004, Australia

8. Department of Molecular Parasitology, Ehime University Graduate School of Medicine, Toon, Ehime 791-0295, Japan

9. Ehime Proteo-Medicine Research Center, Ehime University, Toon, Ehime 791-0295, Japan

10. Venture Business Laboratory, Ehime University, Matsuyama, Ehime 790-8577, Japan

Abstract

ABSTRACT One of the solutions for reducing the global mortality and morbidity due to malaria is multivalent vaccines comprising antigens of several life cycle stages of the malarial parasite. Hence, there is a need for supplementing the current set of malaria vaccine candidate antigens. Here, we aimed to characterize glycosylphosphatidylinositol (GPI)-anchored micronemal antigen (GAMA) encoded by the PF08_0008 gene in Plasmodium falciparum . Antibodies were raised against recombinant GAMA synthesized by using a wheat germ cell-free system. Immunoelectron microscopy demonstrated for the first time that GAMA is a microneme protein of the merozoite. Erythrocyte binding assays revealed that GAMA possesses an erythrocyte binding epitope in the C-terminal region and it binds a nonsialylated protein receptor on human erythrocytes. Growth inhibition assays revealed that anti-GAMA antibodies can inhibit P. falciparum invasion in a dose-dependent manner and GAMA plays a role in the sialic acid (SA)-independent invasion pathway. Anti-GAMA antibodies in combination with anti-erythrocyte binding antigen 175 exhibited a significantly higher level of invasion inhibition, supporting the rationale that targeting of both SA-dependent and SA-independent ligands/pathways is better than targeting either of them alone. Human sera collected from areas of malaria endemicity in Mali and Thailand recognized GAMA. Since GAMA in P. falciparum is refractory to gene knockout attempts, it is essential to parasite invasion. Overall, our study indicates that GAMA is a novel blood-stage vaccine candidate antigen.

Publisher

American Society for Microbiology

Subject

Infectious Diseases,Immunology,Microbiology,Parasitology

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