Completed Infection & Immunity Public Health & Healthcare

MICA: Development and GMP manufacture of a PfRH5 protein vaccine to induce strain-transcending immunity against blood-stage Plasmodium falciparum.

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Malaria parasites use a protein called PfRH5 to invade human red blood cells, and this vaccine aims to block that interaction. Existing malaria vaccines, including the most advanced one, target other parasite proteins that are highly variable, allowing the parasite to evade immunity. That vaccine has shown limited protection. The PfRH5 protein, by contrast, is nearly identical across different parasite strains, meaning antibodies raised against it should work against all of them. The research team has already shown that even low levels of antibody can block the PfRH5-basigin binding step. This three-year programme will turn that discovery into a clinical-grade vaccine. Working with a Danish biotechnology company, the researchers will optimise production of the PfRH5 protein in insect cells, then transfer the process to a manufacturing facility at the University of Oxford. The final output will be a batch of vaccine ready for early-phase human trials. If those trials succeed, this could become a second-generation malaria vaccine that overcomes the variability problem that has stalled blood-stage vaccine development for years.

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Plasmodium falciparum is the parasite that causes the most deadly form of human malaria. Current estimates suggest P. falciparum malaria affects 200-300 million people annually, resulting in the death of about 0.8 million individuals. Thus, despite increasing implementation of control measures, the burden of this devastating disease remains far too high. It remains unlikely that vaccines based on the whole parasite organism will be deployable, and therefore most efforts focus on vaccines encoding malaria proteins - so called 'subunit vaccines'. The most advanced malaria subunit vaccine, called RTS,S/AS01 and encoding a protein from the parasite called CSP, is currently in Phase III clinical trials across Africa, with early indications suggesting only 35% efficacy against severe disease in young children. Calls have been made for a second generation vaccine to exert 80% efficacy over four years. If this ambitious rhetoric is to be realised, new approaches to malaria subunit vaccine design are required. Vaccines that elicit functional antibodies formed the foundation of success for 20th century vaccinology - with almost all licensed human products to date protecting individuals through the induction of antibodies. The malaria parasite has a number of complex life-cycle stages, and it is known that numerous stages of this cycle are susceptible to antibodies. These include the infectious sporozoite-stage which infects the liver (targeted by RTS,S), as well as the subsequent blood-stage infection which causes disease as well as the sexual cells that are taken up by mosquitoes in the infected bloodmeal thus leading to further transmission. However, with the exception of RTS,S, antibody-inducing subunit vaccine development for malaria has faced over a decade of disappointment in the clinic. One central reason for this is likely to have been a narrow focus upon malaria proteins which are highly recognised by the immune system in natural infection. As a consequence they have evolved to cope with immune pressure and are highly variable. Similarly, extremely large amounts of antibody are required to neutralise the parasite, and these levels have been difficult to achieve following human vaccination. We have recently identified a potential solution to this problem. A protein called PfRH5 appears to perform a function that is essential in order for a parasite to invade red blood cells. It binds a protein called Basigin on the red blood cell's surface and this interaction is critical. Importantly, this interaction can be blocked by low levels of antibody, and even more remarkably, the protein is highly conserved, showing limited variation across lots of different parasite strains. This means antibodies induced by a vaccine can function against all the different types of P. falciparum parasite found in endemic areas. The PfRH5-basigin interaction appears to be the first Achilles' heel identified in the blood-stage parasite. This three year programme of work will aim to produce a clinical grade vaccine targeting the PfRH5 protein. We have shown this protein can be made in a system that uses insect cells to make the malaria protein. We will optimise this system, and then develop a production process that is suitable for clinical grade vaccine manufacture. This process will be developed in collaboration with an industrial partner called ExpreS2ion Biotechnologies from Denmark who are world experts in the use of insect cells as a vaccine production system. Once the process has been developed, we will transfer it to a vaccine manufacturing facility at the University of Oxford where the clinical grade material will be produced, put into vials and extensively tested according to stringent quality controls processes. The final output of this research will be a batch of clinical grade PfRH5 protein vaccine. We will subsequently aim to take this new vaccine into early phase clinical trials in healthy adult volunteers in Oxford.

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Researchers

Alexander Douglas (Co-Investigator)Simon Draper (Principal Investigator)

Related Research

Grants with similar aims, by meaning.

MICA: Large-Scale Vaccine Fill and Phase I Clinical Trial of the RH5.1/Matrix-M Vaccine against Blood-Stage Plasmodium falciparum Malaria
Rational design and pre-clinical testing of a PfRH5-based vaccine immunogen
Designing a PfRIPR-based blood stage malaria vaccine: from understanding human antibody responses to structure-guided design
Optimizing a deployable high efficacy malaria vaccine
. Osier, KEMRI-CGMRC, Defining the merozoite targets of protective immunity against Plasmodium falciparum malaria through multi-centre cohort studies

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Research Grant

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