GSDME knockout did not significantly affect weight loss, survival, lung function, viral load, or inflammatory responses compared to wild-type in mice infected with severe H1N1 influenza virus.
Gasdermin E-mediated pyroptosis does not significantly affect lung pathology or survival during severe H1N1 influenza virus infection in mice, indicating that its contribution to influenza pathogenesis is strain-specific.
Effect estimate: No significant differences in weight loss, survival (log-rank Mantel-Cox test: non-significant), viral titers, lung function (Penh and Rpef measurements), histopathology, or cytokine levels (IL-1β, IL-18, TNF, IL-6, IFN-β) between Gsdme-/- and WT mice
p-value: p=>0.05
ABSTRACT Targeting cell death pathways, including pyroptosis and necroptosis, has been shown to mitigate influenza virus infection severity. Here, we examined whether pyroptosis specifically driven by the pore-forming protein gasdermin E (GSDME) is involved in regulating influenza virus infection outcomes. We found that Gsdme -/- mice showed similar weight loss and survival in severe A/PR/8/34 (H1N1) virus infections compared to WT counterparts. Likewise, lung dysfunction, histopathological damage, viral titers, and inflammatory cytokine levels were similar in the two groups. Global transcriptomic analysis also revealed similar inflammatory and antiviral gene expression programs in WT versus Gsdme -/- mouse lungs at baseline and in response to infection. To confirm the generality of these findings, we infected mice with minimally mouse-adapted 2009 pandemic H1N1 virus and again observed similar weight loss, lung dysfunction, and mortality in WT and Gsdme -/- mice. Our results overall demonstrate that GSDME contributes negligibly to the host response against H1N1 influenza virus, refining our understanding of cell death pathways in influenza pathogenesis. IMPORTANCE Influenza virus infection activates multiple cell death pathways that shape disease outcomes. Here, we demonstrate that gasdermin E (GSDME)-mediated pyroptotic cell death does not significantly affect lung pathology or survival during severe H1N1 influenza virus infection. This finding contrasts with prior reports showing that GSDME worsens disease caused by H3N2 or H7N9 strains, as well as studies implicating gasdermin D in exacerbating H1N1 pathology. Thus, our data clarify that gasdermin family members contribute to influenza pathogenesis in a context-specific manner, underscoring the importance of considering viral diversity when evaluating the therapeutic potential of targeting cell death pathways.
Speaks et al. (Thu,) conducted a other in Adult wild-type and Gsdme-/- mice aged 7-10 weeks infected with severe H1N1 influenza A virus strains (A/PR/8/34 and minimally mouse-adapted A/California/04/09) (n=156). GSDME gene knockout (Gsdme-/-) vs. Wild-type (WT) mice was evaluated on Morbidity and mortality including weight loss, survival, lung dysfunction, viral titers, lung histopathology, and inflammatory cytokine levels at day 7 post-infection (No significant differences in weight loss, survival (log-rank Mantel-Cox test: non-significant), viral titers, lung function (Penh and Rpef measurements), histopathology, or cytokine levels (IL-1β, IL-18, TNF, IL-6, IFN-β) between Gsdme-/- and WT mice, p=>0.05). GSDME knockout did not significantly affect weight loss, survival, lung function, viral load, or inflammatory responses compared to wild-type in mice infected with severe H1N1 influenza virus.