Related Experiment Video
Updated: Aug 15, 2025

HeLa Based Cell Free Expression Systems for Expression of Plasmodium Rhoptry Proteins
Published on: June 10, 2015
Exploring in vitro expression and immune potency in mice using mRNA encoding the Plasmodium falciparum malaria
Ishita N Waghela1,2, Katherine L Mallory1,2, Justin A Taylor1,3
1Malaria Biologics Branch, Walter Reed Army Institute of Research, Silver Spring, MD, United States.
Abstract:
The secreted malarial protein, Cell-Traversal protein for Ookinetes and Sporozoites (CelTOS), is highly conserved among Plasmodium species, and plays a role in the invasion of mosquito midgut cells and hepatocytes in the vertebrate host. CelTOS was identified as a potential protective antigen based on a proteomic analysis, which showed that CelTOS stimulated significant effector T cells producing IFN-γ in peripheral blood mononuclear cells (PBMCs) from radiation attenuated sporozoite-immunized, malaria-naïve human subjects. In a rodent malaria model, recombinant full-length CelTOS protein/adjuvant combinations induced sterile protection, and in several studies, functional antibodies were produced that had hepatocyte invasion inhibition and transmission-blocking activities. Despite some encouraging results, vaccine approaches using CelTOS will require improvement before it can be considered as an effective vaccine candidate. Here, we report on the use of mRNA vaccine technology to induce humoral and cell-mediated immune responses using this antigen. Several pfceltos encoding mRNA transcripts were assessed for the impact on protein translation levels in vitro. Protein coding sequences included those to evaluate the effects of signal sequence, N-glycosylation on translation, and of nucleoside substitutions. Using in vitro transfection experiments as a pre-screen, we assessed the quality of the expressed CelTOS target relative to the homogeneity, cellular localization, and durability of expression levels. Optimized mRNA transcripts, which demonstrated highest protein expression levels in vitro were selected for encapsulation in lipid nanoparticles (LNP) and used to immunize mice to assess for both humoral and cellular cytokine responses. Our findings indicate that mRNA transcripts encoding pfceltos while potent for inducing antigen-specific cellular cytokine responses in mice, were less able to mount PfCelTOS-specific antibody responses using a two-dose regimen. An additional booster dose was needed to overcome low seroconversion rates in mice. With respect to antibody fine specificities, N-glycosylation site mutated immunogens yielded lower immune responses, particularly to the N-terminus of the molecule. While it remains unclear the impact on CelTOS antigen as immunogen, this study highlights the need to optimize antigen design for vaccine development.
Insights
Messenger RNA (mRNA) vaccines targeting the malaria protein CelTOS show promise for inducing cellular immunity but require boosters for antibody responses. Optimizing antigen design is crucial for effective CelTOS-based malaria vaccines.
Area of Science:
- Immunology
- Vaccinology
- Malariology
Background:
- Cell-Traversal protein for Ookinetes and Sporozoites (CelTOS) is a conserved Plasmodium protein crucial for parasite invasion.
- Previous studies showed CelTOS elicits T cell responses and induces protection in rodent models, but vaccine efficacy needs improvement.
- mRNA vaccine technology offers a novel approach to elicit immune responses against CelTOS.
Purpose of the Study:
- To evaluate the efficacy of mRNA vaccine technology in inducing humoral and cell-mediated immune responses against the malaria antigen CelTOS.
- To optimize mRNA transcripts encoding CelTOS for enhanced protein expression and assess the impact of specific sequence modifications.
- To investigate the immune response profiles, including antibody and cellular cytokine production, in mice immunized with optimized CelTOS mRNA vaccines.
Main Methods:
- Designed and synthesized various mRNA transcripts encoding Plasmodium falciparum CelTOS (PfCelTOS), including modifications to signal sequences and N-glycosylation sites.
- Assessed in vitro protein translation levels, homogeneity, cellular localization, and expression durability of different mRNA constructs.
- Encapsulated optimized mRNA in lipid nanoparticles (LNPs) and immunized mice, followed by analysis of humoral (antibody) and cellular (cytokine) immune responses.
Main Results:
- Optimized mRNA transcripts demonstrated high in vitro protein expression levels.
- mRNA vaccination potently induced antigen-specific cellular cytokine responses in mice.
- A two-dose regimen resulted in low seroconversion rates; an additional booster dose was required to improve antibody responses.
- Mutations in N-glycosylation sites led to reduced immune responses, particularly against the N-terminus of CelTOS.
Conclusions:
- mRNA vaccine technology can effectively induce cellular immune responses against the malaria antigen CelTOS.
- Achieving robust humoral immunity (antibody production) against CelTOS using mRNA vaccines may necessitate booster doses and careful antigen design.
- Further optimization of antigen design, considering factors like glycosylation, is essential for developing effective CelTOS-based malaria vaccines.
More Related Videos
09:13Author Spotlight: Identifying Compensatory Pathways in Malaria Parasites Containing Hypomorphic Allele of Essential Protein Kinases
Published on: November 22, 2024
10:38High Yield Purification of Plasmodium falciparum Merozoites For Use in Opsonizing Antibody Assays
Published on: July 17, 2014