ABSTRACT Identifying the host factors that mediate avian influenza virus adaptation in mammals is important for monitoring zoonotic potential. Although viral polymerase adaptations are known to influence cross-species transmission, the engagement of specific host factors with divergent viral polymerases remains to be explored. We examined human DEAD-box RNA helicases (DDXs) as potential regulators of influenza polymerase activity. A screen of 16 DDXs identified DDX10 as a factor that selectively enhanced the polymerase activity and replication of human-adapted H1N1 viruses, including the 2009 pandemic strain, but not avian-origin H9N2 viruses. This differential activity was associated with DDX10 showing stronger interaction with human-origin PB1 (Cal04/H1N1) than with avian-origin PB1 (BJ16/H9N2). Strain specificity was mediated by two residues (336 and 364) within the PB1 catalytic domain: introducing H1N1-type residues (I336 and I364) into H9N2-PB1 conferred DDX10 responsiveness, while reciprocal mutations in H1N1-PB1 abolished it. This work defines DDX10 as a potential host factor that differentially supports influenza polymerase activity, revealing a specific molecular interface that contributes to the replication efficiency of distinct viral subtypes in human cells and providing insight into host-adaptive mechanisms. IMPORTANCE This study identifies DDX10 as a strain-specific host factor that differentially regulates influenza A virus replication. By demonstrating that DDX10 selectively enhances human-adapted H1N1 viruses over avian-origin H9N2 viruses through direct interaction with the viral PB1 protein, and by mapping two critical residues (positions 336 and 364) in PB1 that govern this selectivity, our work provides a mechanistic framework for understanding how a single host factor can modulate viral fitness and host adaptation. These findings have important implications for predicting cross-species transmission potential and may guide the development of host-targeted antiviral strategies. This study identifies DDX10 as a strain-specific host factor that differentially regulates influenza A virus replication. By demonstrating that DDX10 selectively enhances human-adapted H1N1 viruses over avian-origin H9N2 viruses through direct interaction with the viral PB1 protein, and by mapping two critical residues (positions 336 and 364) in PB1 that govern this selectivity, our work provides a mechanistic framework for understanding how a single host factor can modulate viral fitness and host adaptation. These findings have important implications for predicting cross-species transmission potential and may guide the development of host-targeted antiviral strategies.
R. Ullah, Wei Chen, Ling-Kai Zhang et al.· Journal of Virology· 0 citations
Although Gasdermin A (GSDMA) drives inflammation by inducing pyroptosis, its specific role in antiviral defense remains unclear. Here we identify GSDMA as an immunomodulatory protein activated in response to coronavirus (CoV) infection. Specifically, CoV-encoded protease nsp5 cleaves GSDMA at two conserved glutamine sites, Q247 and Q187. Cleavage at Q247 liberates an active N-terminal fragment (GSDMA_1-247) that triggers pyroptosis, promotes inflammation, and restricts viral replication. In contrast, cleavage at the alternative site Q187 attenuates this function. Using Gsdma-/- mice, we show that GSDMA deficiency increases viral loads but reduces inflammation, tissue damage, and mortality upon infection. These findings suggest that disease severity is driven more by inflammation than by viral load. Our findings reveal a novel mechanism of antiviral immunity and inflammatory regulation via CoV nsp5-mediated dual cleavage of GSDMA, highlighting a potential target for combined antiviral and anti-inflammatory therapies.
Porcine reproductive and respiratory syndrome virus (PRRSV) is a significant pathogen in swine, causing substantial economic losses globally. The host acute-phase response to PRRSV infection and its role in antiviral defense remain poorly understood. In this study, we identify serum amyloid A2 (SAA2) as a key acute-phase protein that is induced during PRRSV infection and demonstrate its potent antiviral activity against this virus. While both SAA2 and SAA3 were upregulated in PRRSV-infected primary porcine alveolar macrophages, functional analyses revealed that SAA2 exerted anti-PRRSV effects. Both the ectopic expression of SAA2 and treatment with recombinant SAA2 protein significantly inhibited PRRSV replication in cultured cells. Mechanistically, SAA2 directly binds to PRRSV particles through interactions with phosphatidylinositol 4,5-bisphosphate (PIP2), a host-derived lipid membrane component in the virus particles, as well as the major envelope glycoprotein GP5. The anti-PRRSV activity of SAA2 was counteracted by high-density lipoprotein (HDL), revealing a physiological regulatory mechanism. Structure-function analysis further identified the N-terminal α-helix (encoded by exon 1) as essential for SAA2-mediated viral inhibition. Our findings unveil a novel antiviral strategy in which a host acute-phase protein directly targets enveloped virions, highlighting SAA2 as a potential target for intervention against PRRSV.
Shuai Li, Yuanxiang Xiong, L. Fang et al.· Antiviral Research· 0 citations
We use cookies to run the site and, with your consent, for analytics and to show ads.
See our Cookie Policy.