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Updated: Jul 23, 2025

Author Spotlight: Identifying Compensatory Pathways in Malaria Parasites Containing Hypomorphic Allele of Essential Protein Kinases
Published on: November 22, 2024
Accelerated prime-and-trap vaccine regimen in mice using repRNA-based CSP malaria vaccine
Zachary MacMillen1, Kiara Hatzakis1, Adrian Simpson2
1MalarVx, Inc.
Abstract:
Malaria, caused by Plasmodium parasites, remains one of the most devastating infectious diseases worldwide, despite control efforts that have lowered morbidity and mortality. The only P. falciparum vaccine candidates to show field efficacy are those targeting the asymptomatic pre-erythrocytic (PE) stages of infection. The subunit (SU) RTS,S/AS01 vaccine, the only licensed malaria vaccine to date, is only modestly effective against clinical malaria. Both RTS,S/AS01 and the SU R21 vaccine candidate target the PE sporozoite (spz) circumsporozoite (CS) protein. These candidates elicit high-titer antibodies that provide short-term protection from disease, but do not induce the liver-resident memory CD8+ T cells (Trm) that confer strong PE immunity and long-term protection. In contrast, whole-organism (WO) vaccines, employing for example radiation-attenuated spz (RAS), elicit both high antibody titers and Trm, and have achieved high levels of sterilizing protection. However, they require multiple intravenous (IV) doses, which must be administered at intervals of several weeks, complicating mass administration in the field. Moreover, the quantities of spz required present production difficulties. To reduce reliance on WO while maintaining protection via both antibodies and Trm responses, we have developed an accelerated vaccination regimen that combines two distinct agents in a prime-and-trap strategy. While the priming dose is a self-replicating RNA encoding P. yoelii CS protein, delivered via an advanced cationic nanocarrier (LION™), the trapping dose consists of WO RAS. This accelerated regime confers sterile protection in the P. yoelii mouse model of malaria. Our approach presents a clear path to late-stage preclinical and clinical testing of dose-sparing, same-day regimens that can confer sterilizing protection against malaria.
Insights
New malaria vaccines combine RNA and whole-organism approaches for better protection. This prime-and-trap strategy aims to induce strong antibody and T cell responses, offering a path to long-lasting immunity against malaria.
Area of Science:
- Immunology
- Vaccinology
- Infectious Diseases
Background:
- Malaria remains a major global health threat, with current vaccines offering limited efficacy.
- Existing subunit vaccines target pre-erythrocytic stages but fail to induce durable liver-resident memory T cells (Trm).
- Whole-organism vaccines provide sterilizing protection but face challenges in administration and production.
Approach:
- Developed an accelerated vaccination regimen using a prime-and-trap strategy combining self-replicating RNA and whole-organism radiation-attenuated sporozoites.
- The priming dose utilizes a novel LION™ nanocarrier for RNA delivery encoding Plasmodium yoelii circumsporozoite protein.
- The trapping dose consists of whole-organism radiation-attenuated sporozoites.
Key Points:
- The novel regimen elicits both high antibody titers and robust Trm responses.
- This approach aims to overcome the limitations of current malaria vaccine candidates.
- Achieved sterile protection in a P. yoelii mouse model.
Conclusions:
- The prime-and-trap strategy offers a promising path for developing effective, dose-sparing malaria vaccines.
- This accelerated regimen can confer sterilizing protection against malaria.
- Facilitates late-stage preclinical and clinical testing for widespread field application.

