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McCollum, J.

Publications and source records attributed to McCollum, J..

2 recordsLinked to original sources

A Spray Dried Replicon Vaccine Platform for Pandemic Response

The recent COVID-19 pandemic, as well as the threat of a global pandemic caused by H5N1 avian influenza virus, has highlighted the need for the development of thermostable vaccines that can be manufactured and distributed rapidly to combat the next global pandemic. To address this need, we previously developed a replicon vaccine platform that utilizes a nanostructured lipid carrier (NLC) to protect and efficiently deliver antigen-expressing replicon molecules in vivo. The replicon-NLC vaccine platform uses readily sourced components and can be rapidly manufactured at scale with the potential for stockpiling, thus enhancing pandemic preparedness. Spray drying is a promising method of vaccine desiccation with reduced costs and increased scale-up capabilities compared to lyophilization. As proof of concept, we demonstrate for the first time the successful spray drying of a replicon-NLC vaccine complex designed to protect against H5N1 avian influenza A virus to enhance its long-term thermostability while maintaining vaccine immunogenicity in an in vivo mouse model. Several glass-forming disaccharide excipients were screened for formulation and process compatibility under low-temperature spray drying conditions, and it was determined that a suitable shell-forming excipient, L-leucine, was necessary to prevent excessive accumulation of replicon-NLC vaccine complexes on the dry powder surface and a subsequent loss in process yield. The spray dried replicon-NLC vaccine powders were chemically stable for 1 month of storage at 40{degrees}C. Immunogenicity of the spray dried drug product was also well maintained for at least 3 months of storage at 4{degrees}C when administered intramuscularly into C57BL/6 mice as a reconstituted liquid. Finally, we demonstrate the ability to precisely control the aerodynamic particle size of the spray dried vaccine product to generate dry powders that are theoretically suitable for nasal or pulmonary delivery without reconstitution. This work establishes the feasibility of spray drying a thermostable replicon-NLC vaccine for rapid pandemic response.

immunology↗

Multiple DNA repair pathways prevent acetaldehyde-induced mutagenesis in yeast

Acetaldehyde is the primary metabolite of alcohol and is present in many environmental sources including tobacco smoke. Acetaldehyde is genotoxic, whereby it can form DNA adducts and lead to mutagenesis. Individuals with defects in acetaldehyde clearance pathways have increased susceptibility to alcohol-associated cancers. Moreover, a mutation signature specific to acetaldehyde exposure is widespread in alcohol and smoking-associated cancers. However, the pathways that repair acetaldehyde-induced DNA damage and thus prevent mutagenesis are vaguely understood. Here, we used Saccharomyces cerevisiae to systematically delete genes in each of the major DNA repair pathways to identify those that alter acetaldehyde-induced mutagenesis. We found that deletion of the nucleotide excision repair (NER) genes, RAD1 or RAD14, led to an increase in mutagenesis upon acetaldehyde exposure. Acetaldehyde-induced mutations were dependent on translesion synthesis as well as DNA inter-strand crosslink (ICL) repair in{Delta} rad1 strains. Moreover, whole genome sequencing of the mutated isolates demonstrated an increase in C[->]A changes coupled with an enrichment of gCn[->]A changes in the acetaldehyde-treated{Delta} rad1 isolates. The gCn[->]A mutation signature has been shown to be diagnostic of acetaldehyde exposure in yeast and in human cancers. We also demonstrated that the deletion of the two DNA-protein crosslink (DPC) repair proteases, WSS1 and DDI1, also led to increased acetaldehyde-induced mutagenesis. Defects in base excision repair (BER) led to a mild increase in mutagenesis, while defects in mismatch repair (MMR), homologous recombination repair (HR) and post replicative repair pathways did not impact mutagenesis upon acetaldehyde exposure. Our results in yeast were further corroborated upon analysis of whole exome sequenced liver cancers, wherein, tumors with defects in ERCC1 and ERCC4 (NER), FANCD2 (ICL repair) or SPRTN (DPC repair) carried a higher gCn[->]A mutation load than tumors with no deleterious mutations in these genes. Our findings demonstrate that multiple DNA repair pathways protect against acetaldehyde-induced mutagenesis.

genetics↗