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Use of an Influenza Antigen Microarray to Measure the Breadth of Serum Antibodies Across Virus Subtypes
Published on: July 26, 2019
Humoral immune response to mixed PfAMA1 alleles; multivalent PfAMA1 vaccines induce broad specificity
Kwadwo A Kusi1, Bart W Faber, Alan W Thomas
1Department of Parasitology, Biomedical Primate Research Centre, Rijswijk, The Netherlands.
Abstract:
Apical Membrane Antigen 1 (AMA1), a merozoite protein essential for red cell invasion, is a candidate malaria vaccine component. Immune responses to AMA1 can protect in experimental animal models and antibodies isolated from AMA1-vaccinated or malaria-exposed humans can inhibit parasite multiplication in vitro. The parasite is haploid in the vertebrate host and the genome contains a single copy of AMA1, yet on a population basis a number of AMA1 molecular surface residues are polymorphic, a property thought to be primarily as a result of selective immune pressure. After immunisation with AMA1, antibodies more effectively inhibit strains carrying homologous AMA1 genes, suggesting that polymorphism may compromise vaccine efficacy. Here, we analyse induction of broad strain inhibitory antibodies with a multi-allele Plasmodium falciparum AMA1 (PfAMA1) vaccine, and determine the relative importance of cross-reactive and strain-specific IgG fractions by competition ELISA and in vitro parasite growth inhibition assays. Immunisation of rabbits with a PfAMA1 allele mixture yielded an increased proportion of antibodies to epitopes common to all vaccine alleles, compared to single allele immunisation. Competition ELISA with the anti-PfAMA1 antibody fraction that is cross-reactive between FVO and 3D7 AMA1 alleles showed that over 80% of these common antibodies were shared with other PfAMA1 alleles. Furthermore, growth inhibition assays revealed that for any PfAMA1 allele (FVO or 3D7), the cross-reactive fraction alone, on basis of weight, had the same functional capacity on homologous parasites as the total affinity-purified IgGs (cross-reactive+strain-specific). By contrast, the strain-specific IgG fraction of either PfAMA1 allele showed slightly less inhibition of red cell invasion by homologous strains. Thus multi-allele immunisation relatively increases the levels of antibodies to common allele epitopes. This explains the broadened cross inhibition of diverse malaria parasites, and suggests multi-allele approaches warrant further clinical investigation.
Insights
A multi-allele malaria vaccine targeting Apical Membrane Antigen 1 (AMA1) elicits broader antibody responses. This approach increases antibodies to common epitopes, enhancing inhibition of diverse malaria parasite strains.
Area of Science:
- Malariology
- Immunology
- Vaccine Development
Background:
- Apical Membrane Antigen 1 (AMA1) is crucial for malaria parasite invasion of red blood cells and a key vaccine candidate.
- AMA1 exhibits polymorphism across parasite strains, potentially limiting the efficacy of single-allele vaccines due to strain-specific immune responses.
- Antibodies targeting AMA1 can inhibit parasite growth, but strain-specific responses may hinder broad protection.
Purpose of the Study:
- To investigate if a multi-allele Plasmodium falciparum AMA1 (PfAMA1) vaccine can induce broader strain-inhibitory antibodies.
- To determine the relative contributions of cross-reactive and strain-specific IgG antibodies in inhibiting parasite growth.
- To assess the efficacy of multi-allele immunization compared to single-allele immunization.
Main Methods:
- Rabbits were immunized with a mixture of PfAMA1 alleles or single alleles.
- Competition ELISA was used to quantify cross-reactive and strain-specific antibody fractions.
- In vitro parasite growth inhibition assays were performed using different PfAMA1 alleles.
Main Results:
- Multi-allele immunization increased the proportion of antibodies targeting common epitopes shared across AMA1 alleles.
- Over 80% of cross-reactive antibodies between FVO and 3D7 AMA1 alleles were shared with other alleles.
- The cross-reactive antibody fraction demonstrated functional capacity comparable to total IgGs in inhibiting homologous parasite growth.
Conclusions:
- Multi-allele immunization with PfAMA1 effectively broadens antibody responses by increasing antibodies to conserved epitopes.
- This approach enhances cross-inhibition of diverse malaria parasite strains, suggesting improved vaccine efficacy.
- Multi-allele vaccine strategies warrant further clinical investigation for malaria control.
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