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McAllister, N.

Publications and source records attributed to McAllister, N..

2 recordsLinked to original sources

Chikungunya virus vaccine candidate incorporating synergistic mutations is attenuated and protects against virulent virus challenge

BackgroundChikungunya virus (CHIKV) is an arbovirus that periodically reemerges to cause large epidemics of arthritic disease. While the robust immunity elicited by live-attenuated virus (LAV) vaccine candidates makes them attractive, CHIKV vaccine development has been hampered by a high threshold for acceptable adverse events. MethodsWe evaluated the vaccine potential of a recently described LAV, SKE, that exhibits diminished replication in skeletal muscle cells due to insertion of target sequences for skeletal muscle-specific miR-206. We also evaluated whether these target sequences could augment safety of a LAV encoding a previously described attenuating mutation, E2 G82R, which on its own was too reactogenic in clinical trials. Attenuation of viruses containing these mutations was compared with a double mutant, SKE G82R. ResultsSKE was attenuated in both immunodeficient and immunocompetent mice and induced a robust neutralizing antibody response, indicating its vaccine potential. However, only SKE G82R elicited diminished swelling in immunocompetent mice at early time points post-inoculation, indicating that these mutations synergistically enhance safety of the vaccine candidate. ConclusionsThese data suggest that restriction of LAV replication in skeletal muscle enhances tolerability of reactogenic vaccine candidates and may improve the rational design of CHIKV vaccines.

microbiology↗

Emerging chikungunya virus variants at the E1-E1 inter-glycoprotein spike interface impact virus attachment and Inflammation

Chikungunya virus (CHIKV) is a re-emerging arthropod-borne alphavirus and a serious threat to human health. Therefore, efforts toward elucidating how this virus causes disease and the molecular mechanisms underlying steps of the viral replication cycle are crucial. Using an in vivo transmission system that allows intra-host evolution, we identified an emerging CHIKV variant carrying a mutation in the E1 glycoprotein (V156A) in the serum of mice and saliva of mosquitoes. E1 V156A has since emerged in humans during an outbreak in Brazil, co-occurring with a second mutation, E1 K211T, suggesting an important role for these residues in CHIKV biology. Given the emergence of these variants, we hypothesized that they function to promote CHIKV infectivity and subsequent disease. Here, we show that E1 V156A and E1 K211T modulate virus attachment and fusion and impact binding to heparin, a homolog of heparan sulfate, a key entry factor on host cells. These variants also exhibit differential neutralization by anti-glycoprotein monoclonal antibodies, suggesting structural impacts on the particle that may be responsible for altered interactions at the host membrane. Finally, E1 V156A and E1 K211T exhibit increased titers in an adult arthritic mouse model and induce increased foot-swelling at the site of injection. Taken together, this work has revealed new roles for E1 where discrete regions of the glycoprotein are able to modulate cell attachment and swelling within the host. IMPORTANCEAlphaviruses represent a growing threat to human health worldwide. Chikungunya virus (CHIKV) has rapidly spread to new geographic regions in the last several decades, causing overwhelming outbreaks of disease, yet there are no approved therapeutics. The CHIKV glycoproteins are key determinants of CHIKV adaptation and virulence. In this study, we characterize the naturally emerging E1 glycoprotein variants, V156A and K211T. We demonstrate that E1 V156A and K211T function in virus attachment to cells, a role that until now has been only attributed to the CHIKV E2 glycoprotein. We also demonstrate E1 V156A and K211T to increase foot-swelling in mice. Observing that these variants and other pathogenic variants occur at the E1-E1 inter-spike interface, we highlight this structurally important region as critical for multiple steps during CHIKV infection. Together, these studies further defines the function of E1 in CHIKV infection and can inform the development of therapeutic or preventative strategies.

microbiology↗