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Principal Investigator: Alexander Bukreyev
Organization: VANDERBILT UNIVERSITY MEDICAL CENTER
Fiscal Year: 2024
Award: $2,727,988
Funding agency: National Institute of Allergy and Infectious Diseases
PROJECT SUMMARY – RP3
RNA vaccines are one of the most promising vaccine platforms available to rapidly deploy in response to
emerging viral infections with pandemic potential. However, mechanistic investigations of how various mRNA
vaccine approaches induce protective immune responses are warranted. The order Bunyavirales comprises
multiple families of viruses causing severe human disease. No FDA-licensed vaccines currently exist for any
Bunyavirales virus, and medical countermeasures for infection are limited. For example, Andes virus (ANDV)
caused a human outbreak with aggressive human-to-human transmission and multiple fatalities in 2019,
highlighting the pandemic potential of hantaviruses. This proposal includes development and preclinical testing
of innovative RNA vaccines against multiple bunyavirales and investigation of mechanisms of protection of three
forms of RNA vaccines against representative New and Old World hantaviruses: ANDV, Sin Nombre virus (SNV)
and Hantaan virus (HTNV). The following Aims will be pursued.
Specific Aim 1. To convert existing DNA/JET vaccines to Hantaviridae, Arenaviridae, and Nairoviridae
viruses to lipid nanoparticle (LNP)-mRNA vaccines (industrial partner, Moderna) and evaluate immunogenicity
and protective efficacy of homologous and heterologous prime-boost vaccination strategies in established in-
house small animal models. This aim will be based on extensive preliminary data, including clinical trials, on
bunyavirales DNA vaccines and unsurpassed LNP-mRNA industrial experience of Moderna.
Specific Aim 2. To generate LNP and polymer nanoparticle (PNP)-formulated vaccines against SNV and
HTNV based on non-modified mRNA, modified mRNA or circular RNA. In addition to the non-modified and
modified mRNA and circular RNA vaccines against ANDV we already developed, we will use these three
platforms to generate vaccines against SNV and HTNV. We will use the platforms to generate the constructs
expressing the N protein of ANDV, SNV and HTNV. The most promising constructs will be selected for
encapsulation in PNP. As PNP formulations are expected to be less stringent for low-temperature requirements,
we will test stability at various temperatures.
Specific Aim 3. To perform an in-depth comparative investigation of the protective efficacy and
immunogenicity of the new RNA vaccine constructs and formulations. We will perform in-depth studies of the
immune response to the three vaccine platforms and two nanoparticle formulations in animal models.
By the end of the funding period, we expect to have developed effective, innovative RNA vaccines against
multiple Bunyavirales viruses and justified their promise to advance to clinical trials. The proposed studies will
result in unparalleled insights into the antibody responses to mRNA vaccines and differences in antibody
responses to vaccines based on modified versus non-modified RNA and linear versus circular RNA platforms.
This knowledge will be critical for developing effective vaccines against emerging viral infections in general.
Terms: <Andes Virus><Animal Model><Animal Models and Related Studies><Animals><Antibody Response><Arenaviridae><Arenavirus><Arenavirus group><BBC1><BCL2-Interacting Killer Gene><BIK><BIK gene><BIP1><BP4><Bik/Nbk Gene><Bunyavirales><Bunyavirus><Clinical Trials><DNA><DNA Vaccines><Data><Deoxyribonucleic Acid><Development><Disease Outbreaks><Encapsulated><Epidemic Hemorrhagic Fever Virus><Family><Family Picornaviridae><Formulation><Four Corners Virus><Four Corners hantavirus><Funding><Hantaan virus><Hantavirus><Hemorrhagic Nephroso-Nephritis Virus><Human><Immune response><Immunological response><Industrialization><Infection><Investigation><Knowledge><Korean Hemorrhagic Fever Virus><Lead><Licensing><Messenger RNA><Modern Man><Muerto Canyon Virus><NBK><Naked DNA Vaccines><Non-Polyadenylated RNA><Nucleic Acid Vaccines><Orthobunyavirus><Outbreaks><Pb element><Picornaviridae><Picornaviruses><Preclinical Testing><Preparedness><Proteins><R-Series Research Projects><R01 Mechanism><R01 Program><RNA><RNA Gene Products><RNA vaccine><RNA-based vaccine><Readiness><Recombinant DNA Vaccines><Research Grants><Research Project Grants><Research Project Summaries><Research Projects><Ribonucleic Acid><Sin Nombre hantavirus><Sin Nombre virus><Temperature><Transmission><Vaccines><Viral Diseases><Virus><Virus Diseases><Work><circular RNA><closed circular RNA><cold temperature><comparative><developmental><efficacy testing><experience><heavy metal Pb><heavy metal lead><host response><human disease><immune response to vaccination><immune response to vaccines><immune system response><immunization strategy><immunogenicity><immunoresponse><industrial partnership><industry partner><industry partnership><innovate><innovation><innovative><insight><knowledge of results><lipid based nanoparticle><lipid nanoparticle><low temperature><mRNA><mRNA lipid nano particle vaccine><mRNA vaccine><mRNA-LNP based vaccine><mRNA-LNP combination vaccines><mRNA-LNP vaccines><mRNA-based vaccine><medical countermeasure><model of animal><nano particle><nano polymer><nano-sized particle><nanoparticle><nanopolymer><nanosized particle><nucleic acid-based vaccine><pandemic concern><pandemic pathogen><pandemic potential><pandemic risk><pandemic threat><pre-clinical testing><protective efficacy><response><stability testing><transmission process><vaccination strategy><vaccine associated immune response><vaccine immune response><vaccine immunogenicity><vaccine induced immune response><vaccine platform><viral infection><virus infection><virus-induced disease>