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bioRxiv · 10.64898/2026.05.09.724031

A single PA-X mutation in bovine-origin H5N1 influenza virus reduces pathogenicity in mice

Abstract

Dairy cows have emerged as a reservoir for human infection with highly pathogenic avian influenza (HPAI) H5N1. At the bovine-human interface, H5N1 strains may acquire adaptive mutations that influence their zoonotic potential. Sequence analysis identified a K142E substitution (bovine to human) in the PA and PA-X proteins, with the potential to affect both polymerase activity and host shutoff. Here, we used a loss-of-function approach to investigate how the bovine substitution (E142K) in PA/PA-X impacts viral replication, host shutoff activity, and pathogenicity in the human H5N1 background. Viral growth kinetics demonstrated that the virus containing the E142K substitution is attenuated, with reduced replication compared to wild-type (WT) virus. Consistently, PA-X-mediated host shutoff activity was reduced, resulting in increased induction of interferon (IFN) responses relative to WT. In vivo, mice infected with the E142K mutant virus survived, whereas infection with the WT virus was uniformly lethal. Despite comparable viral titers and inflammation score in mouse lungs, cytokine and chemokine profiling revealed distinct immune responses, with reduced CCL2 and increased CCL5 and IFN-{gamma} in mice infected with the E142K mutant virus compared to mice infected with the WT virus. These findings indicate that increased virulence of the human-adapted strain is driven by a PA-X mutation that modulates inflammatory responses, producing distinct immune signatures linked to host survival or viral lethality rather than changes in polymerase activity by PA. Collectively, these results highlight PA-X as a key determinant of pathogenicity of H5N1 and a potential target for the rational design of antiviral strategies. IMPORTANCEHighly pathogenic avian influenza (HPAI) H5N1 viruses have recently expanded beyond their traditional avian hosts to infect mammals, where they are acquiring mutations associated with mammalian adaptation. These changes raise the concern that influenza H5N1 viruses could evolve the capacity for sustained human infection and human-to-human transmission and pose a pandemic threat. Therefore, it is critical to identify and functionally characterize emerging mutations that influence viral pathogenicity and host interactions. Such studies will enhance our understanding of the requirements for efficient infection and disease in mammalian hosts and inform the rational design of antiviral strategies. In this study, we present data characterizing a bovine-to-human substitution (K142E) in the viral PA-X impacting viral replication, host shutoff activity, and pathogenicity. Our results demonstrate the key role of PA-X in H5N1 viral pathogenicity and the feasibility of targeting PA-X for the rational design of antivirals to control influenza infections.

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Jackson, N., Bayoumi, M., Shivanna, V., Allue-Guardia, A., Gay-Cobb, A., Barre, R., Torrelles, J. B., Ye, C., Mostafa, A., Martinez-Sobrido, L.. 2026-05-10. A single PA-X mutation in bovine-origin H5N1 influenza virus reduces pathogenicity in mice. https://doi.org/10.64898/2026.05.09.724031

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