Completed Infection & Immunity Brain & Nervous System

Accelerating the development of next generation malaria vaccines through development of innovative trial designs in malaria-endemic areas.

In plain English

AI plain-English summary

Malaria parasites are still slipping past the only licensed vaccine, which only targets the early liver stage of infection. This project aims to speed up development of a more effective vaccine that attacks the parasite at multiple points in its life cycle—in the liver, in the blood, and during transmission to mosquitoes. The core problem is that researchers lack efficient ways to test which of hundreds of potential vaccine targets actually work in people who have already been exposed to malaria. The team will use controlled human malaria infection (CHMI) in semi-immune adults to solve this. They will characterise immunity to malaria using more than 100 antigens in thousands of semi-immune adults, then select 200 with different immunological profiles for CHMI studies. They will also vary the parasite dose and use low doses of anti-malarial drugs to produce gametocytes—the sexual stage that infects mosquitoes—and test whether vaccinated people can still transmit the parasite. If successful, this approach could dramatically shorten the timeline for developing a multi-stage malaria vaccine. Instead of waiting years for large field trials to fail, researchers would have a rapid, controlled way to prioritise the most promising antigens and discard weak candidates early. A more effective vaccine could reduce the hundreds of thousands of child deaths malaria still causes each year.

View original technical description
Malaria remains a public health emergency despite a partially effective pre-erythrocytic malaria vaccine. There is an urgent need to accelerate the development of a more effective multi-stage vaccine. We will use controlled human malaria infection in semi-immune adults (CHMI) to overcome two critical blocks in vaccine development: a) a comprehensive prioritization of antigens associated with blood-stage immunity for vaccine development and b) an adaption of CHMI to test proof-of-concept for tr ansmission blocking vaccines in vivo. We will comprehensively characterize immunity to malaria using >100 antigens in thousands of semi-immune adults, then select 200 with a range of different immunological profiles, and conduct CHMI studies with serial quantitative PCR to measure the parasite growth rate in vivo and relate this to host immunity. In addition we will vary the parasite dose in CHMI and use low-doses of anti-malarial drugs if necessary to produce gametocytes in vivo and demon strate transmissibility to mosquitoes fed on participants blood. We will use the CHMI studies to test candidate pre-erythrocytic vaccines, blood-stage vaccines and transmission-blocking vaccines.

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Researchers

Philip Bejon (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

. Osier, KEMRI-CGMRC, Defining the merozoite targets of protective immunity against Plasmodium falciparum malaria through multi-centre cohort studies
Commitment, maturation and infectivity of sexual stage malaria parasites in natural infections
Clinical Evaluation of "Prime-Target" Immunisation
CHMI-transmission models for evaluating P.vivax and P.falciparum transmission-blocking interventions
Experimentally induced blood-stage malaria in Kenyan adults: understanding disease mechanisms and protection in the context of background immunity

Original classification

Strategic Award - Science

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