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Shepherd, F. K.

Publications and source records attributed to Shepherd, F. K..

2 recordsLinked to original sources

Dirty mice better recapitulate key features of mRNA vaccine immunogenicity observed in humans

Although specific pathogen free (SPF) mice have traditionally been used to test candidate vaccines, recent work has demonstrated that "dirty" mice with broad microbial exposure more appropriately recapitulate human immune responses. Using a model where lab mice are co-housed with pet store mice, we modeled SARS-CoV-2 mRNA vaccine responses in dirty and traditional SPF models. We found that dirty mice show reduced serum spike-binding antibody titers after prime and require a second booster dose to reach SPF-level spike antibody titers. Additionally, spike antibodies showed faster waning in dirty mice through 5 months post-vaccination, and neutralizing activity of these antibodies were reduced against Omicron variants, directly comparable with observations in humans. We further investigated the seasonality and consistency of pathogens in cohoused mice, and the impact of serial microbial exposure on our animal model system. We found that pathogen exposure and T cell activation remained consistent over time, and that a single co-housing event was sufficient to provide broad microbial exposure. This work demonstrates that the dirty mouse co-housing system is a promising, translationally representative approach to screen candidate mRNA vaccines for efficacy and durability prior to human clinical trials. Significance statementThe development of mRNA vaccines during the COVID-19 pandemic dramatically reduced hospitalization and death rates for infected individuals. However, booster vaccinations were required to achieve full efficacy, and protection waned over time. Our research leveraged a "dirty" mouse model to test whether SARS-CoV-2 mRNA vaccinations in animals with previous microbial exposure better modelled human immune responses. We found that dirty mice require a booster vaccination for full efficacy and experienced waning serum antibody titer over time. We propose this approach as a future model for robust preclinical mRNA vaccine testing.

immunology↗

Mammalian ZAP and KHNYN independently restrict CpG-enriched avian viruses

Zoonotic viruses are an omnipresent threat to global health. Influenza A virus (IAV) transmits between birds, livestock, and humans. Proviral host factors involved in the cross-species interface are well known. Less is known about antiviral mechanisms that suppress IAV zoonoses. We observed CpG dinucleotide depletion in human IAV relative to avian IAV. Notably, human ZAP selectively depletes CpG-enriched viral RNAs with its cofactor KHNYN. ZAP is conserved in tetrapods but we uncovered that avian species lack KHNYN. We found that chicken ZAP may not affect IAV (PR8) or CpG enriched IAV (PR8CG). Human ZAP or KHNYN independently restricted CpG-enriched IAV PR8CG by overexpression in chicken cells and by combined knockout in human cells. Additionally, mammalian ZAP-L and KHNYN also independently restricted an avian retrovirus (ROSV). Curiously, platypus KHNYN, the most divergent from eutherian mammals, was also capable of independent restriction of multiple diverse viruses. We suggest that some mammalian KHNYN can act as a bona fide restriction factor with cell-autonomous activity. Furthermore, we speculate that through repeated contact between avian viruses and mammalian hosts, protein changes may accompany CpG-biased mutations or reassortment to evade mammalian ZAP and KHNYN.

microbiology↗