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High Yield Purification of Plasmodium falciparum Merozoites For Use in Opsonizing Antibody Assays
Published on: July 17, 2014
Protective human immunity as a vaccine discovery tool for falciparum malaria
Christian P Nixon1, Jennifer F Friedman, Paul M Knopf
1International Health Institute, Department of Pediatrics, Brown University, Providence, Rhode Island 02912, USA.
Insights
Naturally acquired antibodies targeting rhoptry-associated membrane antigen (RAMA-pr) indicate resistance to Plasmodium falciparum malaria. This finding identifies RAMA-pr as a promising vaccine candidate for malaria control.
Area of Science:
- Immunology
- Infectious Diseases
- Vaccinology
Background:
- Plasmodium falciparum malaria causes significant morbidity and mortality, particularly severe anemia in children.
- Severe anemia in children is a primary driver of blood transfusion needs in malaria-endemic regions.
Purpose of the Study:
- To identify targets of naturally acquired protective antibodies against P. falciparum malaria.
- To evaluate rhoptry-associated membrane antigen (RAMA-pr) as a potential malaria vaccine candidate.
Main Methods:
- Screened a P. falciparum cDNA expression library using plasma pools from malaria-resistant and susceptible individuals.
- Identified antibody targets unique to resistant individuals through differential screening of 550,000 clones.
- Quantified immunoglobulin G(1) anti-RAMA-pr antibody levels in relation to parasitemia.
Main Results:
- Identified two clones encoding RAMA-pr recognized by resistant individuals' antibodies.
- Individuals with detectable anti-RAMA-pr antibodies showed significantly fewer positive blood films (p < 0.003).
- Anti-RAMA-pr antibody presence correlated with 43% lower parasitemia density (p < 0.02).
Conclusions:
- RAMA-pr is a rationally identified vaccine candidate for falciparum malaria.
- Antibodies targeting RAMA-pr are preferentially produced by individuals with natural resistance.
- Naturally acquired protective antibody responses are valuable for identifying malaria vaccine candidates.
Background:
Plasmodium falciparum malaria remains a leading cause of morbidity and mortality in developing countries, and malaria-associated severe anemia is the major factor driving the high transfusion requirements in pediatric populations living in endemic areas.
Study Design And Methods:
In this report, we identify and evaluate the targets of naturally acquired protective antibody responses in a cohort of n = 143 male volunteers residing in a P. falciparum holoendemic area of western Kenya. Volunteers were drug-cured of current malaria infection, blood was collected 2 weeks after treatment, and blood smears were collected weekly for 18 weeks. We identified and pooled plasma from the 10 most resistant (RP) and the 7 most susceptible individuals (SP) and utilized these pools in a differential screen of a P. falciparum cDNA expression library. We screened 550,000 clones and identified 7 clones that were uniquely recognized by RP but not by SP. Two clones encoded a C-terminal region polypeptide from rhoptry-associated membrane antigen (RAMA-pr), a recently described rhoptry-associated membrane antigen.
Results:
We measured RAMA-pr antibody levels in plasma obtained 2 weeks after treatment. Individuals with detectable immunoglobulin G(1) anti-RAMA-pr (n = 24) had fewer positive blood films (p < 0.003) and 43 percent lower density of parasitemia (p < 0.02) than individuals with undetectable (n = 115) antibody levels.
Conclusion:
RAMA-pr is a rationally identified vaccine candidate preferentially recognized by antibodies produced by humans with a high level of naturally acquired resistance to P. falciparum infection. Our results demonstrate that naturally acquired protective antibody responses are useful tools to identify vaccine candidates for falciparum malaria.
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