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Synthesis and Characterization of mRNA-Loaded PolyBeta Aminoesters Nanoparticles for Vaccination Purposes
Published on: August 13, 2021
Novel Bivalent mRNA-LNP Vaccine for Highly Effective Protection against Pneumonic Plague
Uri Elia1, Yinon Levy1, Hila Cohen1
1Department of Biochemistry and Molecular Genetics, Israel Institute for Biological Research, Ness-Ziona, 76100, Israel.
Abstract:
Yersinia pestis, the causative agent of plague, remains a significant global health hazard and a potential top-tier biothreat despite modern medical advances. Here, two mRNA constructs encoding different versions of the low-calcium response virulence (LcrV) protective antigen, an essential virulence factor of Y. pestis, are designed and evaluated. Next, the immunogenicity and protective efficacy both independently and in combination is assessed with the previously reported F1-encoding mRNA construct in the well-established mouse model of pneumonic plague. The findings reveal that human Fc-conjugated F1 + LcrV combination mRNA vaccination resulted in significant immune activation and substantial protection against intranasal Y. pestis challenge. Notably, the combined vaccine demonstrates protective efficacy against two highly virulent wild-type Y. pestis strains representing distinct biovars and an atypical, unencapsulated strain. This study represents the first comprehensive evaluation of mRNA constructs encoding innovatively designed versions of LcrV and F1 for pneumonic plague prevention, addressing critical gaps in current vaccination approaches. This study establishes the mRNA-lipid nanoparticle (LNP) platform as a promising tool for addressing bacterial pathogens, including those resistant to antibiotics. By broadening its applicability to diverse threats, this technology represents an innovative approach to tackling some of the most pressing challenges in global health.
Insights
New mRNA vaccines combining F1 and low-calcium response virulence (LcrV) antigens show significant protection against pneumonic plague. This platform offers a promising strategy against Yersinia pestis and other bacterial threats.
Area of Science:
- Microbiology
- Immunology
- Vaccinology
Background:
- Yersinia pestis, the bacterium causing plague, poses a significant global health risk and biothreat.
- Existing medical interventions remain insufficient against this pathogen.
Purpose of the Study:
- To design and evaluate novel mRNA constructs encoding Y. pestis virulence factors LcrV and F1.
- To assess the immunogenicity and protective efficacy of these mRNA vaccines against pneumonic plague.
Main Methods:
- Development of two mRNA constructs for LcrV and assessment of a previously developed F1 mRNA construct.
- Evaluation of vaccine efficacy and immunogenicity in a mouse model of pneumonic plague.
- Testing against virulent wild-type and atypical Y. pestis strains.
Main Results:
- Combination mRNA vaccination with human Fc-conjugated F1 + LcrV induced significant immune activation.
- Substantial protection against intranasal Y. pestis challenge was observed.
- The vaccine was effective against diverse Y. pestis strains, including wild-type and unencapsulated variants.
Conclusions:
- This study provides the first comprehensive evaluation of mRNA vaccines for pneumonic plague prevention using novel LcrV and F1 constructs.
- The mRNA-lipid nanoparticle (LNP) platform shows promise for combating bacterial pathogens, including antibiotic-resistant strains.
- This innovative approach addresses critical gaps in current vaccination strategies for global health threats.

