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Biology subjects

Wisti, P.

Publications and source records attributed to Wisti, P..

2 recordsLinked to original sources

mRNA-1273.251 and mRNA-1283.251 vaccines expressing SARS-CoV-2 variant LP.8.1 antigens broadly neutralize contemporary JN.1-lineage viruses

The continued evolution of the SARS-CoV-2 Omicron JN.1 lineage has led to the emergence of antigenically distinct subvariants including KP.2, KP.3, XEC, and LP.8.1, which became the dominant strains in the Americas and Europe by mid-2025. LP.8.1 was designated a Variant Under Monitoring by the WHO in January 2025 due to its potential to displace prior circulating variants. Informed by early growth modeling and antigenic analysis, we selected LP.8.1 as a candidate strain for the 2025-2026 vaccine season. Here, we describe the development of updated LP.8.1-matched mRNA vaccine compositions encoding either the full-length spike protein for mRNA-1273 (monovalent) or the membrane-anchored receptor-binding and N-terminal domains for the mRNA-1283 vaccine. Initial in vitro characterization, including structural analysis, demonstrated robust antigen expression and intact antigenic features. Immunogenicity of both vaccines were evaluated in murine models following immunization as either a primary series in naive animals or as a booster dose. LP.8.1-matched vaccines elicited strong neutralizing antibody responses against the homologous LP.8.1 strain and more recently emerging JN.1-lineage subvariants, including XFG and NB.1.8.1. Notably, the mRNA-1283 vaccine expressing LP.8.1 induced higher mean neutralization titers than the mRNA-1273 version across multiple variants. These data demonstrate the immunogenicity and breadth of both LP.8.1-based mRNA-1273 and mRNA-1283 vaccines in the context of ongoing JN.1 lineage evolution and support the selection of LP.8.1 as the updated vaccine antigen for the 2025-2026 season.

immunology↗

Functional mRNA delivery to hematopoietic stem and progenitor cells in vivo.

Gene correction of hematopoietic stem cells (HSC) is a promising therapeutic approach for multiple disorders. Current methods, however, require HSC collection from patients, gene correction during ex vivo culture, and re-infusion of corrected HSC into patients conditioned with chemotherapeutic agents. These approaches are complex, and the conditioning creates toxicities. We show that a lipid nanoparticle (LNP) can deliver mRNA encoding a reporter or a gene editing protein to HSC, with one injection transfecting [~]25% of mouse HSC, and repeated doses resulting in higher editing efficiencies. We also demonstrate LNP-driven in vivo mRNA delivery to HSC in non-human primates and humanized mice. These results demonstrate a translatable approach to deliver mRNA encoding therapeutic proteins, or gene correcting tools, to HSC that do not require cell culture or toxic conditioning. One-Sentence SummaryLNP can deliver functional mRNA to mouse, non-human primate, and human HSC.

immunology↗