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Vilander, A.

Publications and source records attributed to Vilander, A..

2 recordsLinked to original sources

Investigation of Powassan virus lineage II pathogenesis and neurotropism in mice

Powassan virus (POWV) is an emerging tick-borne flavivirus that causes disease in humans. POWV has considerable genetic and phenotypic diversity, including highly variable replication in vitro and pathogenesis in mice. This study sought to define the extent of variability in pathogenesis within POWV lineage II in mice and investigate possible viral determinants. Relative to other strains, two New York-derived isolates, NY.19.12 and NY.19.32, caused earlier clinical signs and earlier detection of viral RNA (vRNA) in the spleen and brain compared to mice infected with virus derived from a lineage II infectious clone (WI.97.ic). Sequencing revealed these strains share three amino acid substitutions in envelope, NS1, and NS5 compared to other lineage II strains, which were engineered into a mutant infectious clone. At early time points post-infection, clinical signs, vRNA detection in the cerebellum, and viral distribution in the brain were similar between NY.19.12 and the mutant clone, suggesting these mutations may play a role in disease progression and early neuroinvasion. However, NY.19.12 vRNA was detected in the spleen at significantly higher rates compared to both WI.97.ic and the mutant clone, indicating factors other than these mutations are responsible for increased spleen infection. Importantly, this study highlights the complexity of POWV pathogenesis and suggests that POWV lineage II strains have varying disease phenotypes likely driven by multiple genetic differences. ImportanceTick-borne flaviviruses exhibit considerable genetic and phenotypic diversity in nature, influencing their transmission and pathogenesis. Defining the mechanisms of pathogenesis requires understanding how inter-strain variation translates to phenotypic differences in viral dissemination and neuroinvasion. This study demonstrates that even closely related Powassan virus (POWV) lineage II strains display distinct disease phenotypes that are only partially attributable to nonsynonymous consensus mutations within the viral coding sequence. By highlighting the complexity of POWV infection dynamics in mice, these findings provide valuable insights into how POWV lineage II diversity may shape disease progression and severity in humans.

microbiology↗

SARS-CoV-2 infects multiple species of North American deer mice and causes clinical disease in the California mouse

Severe acute respiratory syndrome coronavirus-2 (SARS-CoV-2), the virus that causes coronavirus disease-19 (COVID-19), emerged in late 2019 in Wuhan, China and its rapid global spread has resulted in millions of deaths. An important public health consideration is the potential for SARS-CoV-2 to establish endemicity in a secondary animal reservoir outside of Asia or acquire adaptations that result in new variants with the ability to evade the immune response and reinfect the human population. Previous work has shown that North American deer mice (Peromyscus maniculatus) are susceptible and can transmit SARS-CoV-2 to naive conspecifics, indicating its potential to serve as a wildlife reservoir for SARS-CoV-2 in North America. In this study, we report experimental SARS-CoV-2 susceptibility of two additional subspecies of the North American deer mouse and two additional deer mouse species, with infectious virus and viral RNA present in oral swabs and lung tissue of infected deer mice and neutralizing antibodies present at 15 days post-challenge. Moreover, some of one species, the California mouse (P. californicus) developed clinical disease, including one that required humane euthanasia. California mice often develop spontaneous liver disease, which may serve as a comorbidity for SARS-CoV-2 severity. The results of this study suggest broad susceptibility of rodents in the genus Peromyscus and further emphasize the potential of SARS-CoV-2 to infect a wide array of North American rodents. ImportanceA significant concern is the spillback of SARS-CoV-2 into North American wildlife species. We have determined that several species of peromyscine rodents, the most abundant mammals in North America, are susceptible to SARS-CoV-2 and that infection is likely long enough that the virus may be able to establish persistence in local rodent populations. Strikingly, some California mice developed clinical disease that suggests this species may be useful for the study of human co-morbidities often associated with severe and fatal COVID-19 disease.

microbiology↗