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PPARα exacerbates necroptosis, leading to increased mortality in postinfluenza bacterial superinfection
Vincent C Tam1, Rosa Suen2, Piper M Treuting3
1Department of Microbiology and Immunology, Temple University, Philadelphia, PA 19140.
Abstract:
Patients infected with influenza are at high risk of secondary bacterial infection, which is a major proximate cause of morbidity and mortality. We have shown that in mice, prior infection with influenza results in increased inflammation and mortality upon Staphylococcus aureus infection, recapitulating the human disease. Lipidomic profiling of the lungs of superinfected mice revealed an increase in CYP450 metabolites during lethal superinfection. These lipids are endogenous ligands for the nuclear receptor PPARα, and we demonstrate that Ppara-/- mice are less susceptible to superinfection than wild-type mice. PPARα is an inhibitor of NFκB activation, and transcriptional profiling of cells isolated by bronchoalveolar lavage confirmed that influenza infection inhibits NFκB, thereby dampening proinflammatory and prosurvival signals. Furthermore, network analysis indicated an increase in necrotic cell death in the lungs of superinfected mice compared to mice infected with S. aureus alone. Consistent with this, we observed reduced NFκB-mediated inflammation and cell survival signaling in cells isolated from the lungs of superinfected mice. The kinase RIPK3 is required to induce necrotic cell death and is strongly induced in cells isolated from the lungs of superinfected mice compared to mice infected with S. aureus alone. Genetic and pharmacological perturbations demonstrated that PPARα mediates RIPK3-dependent necroptosis and that this pathway plays a central role in mortality following superinfection. Thus, we have identified a molecular circuit in which infection with influenza induces CYP450 metabolites that activate PPARα, leading to increased necrotic cell death in the lung which correlates with the excess mortality observed in superinfection.
Insights
Influenza infection primes mice for lethal Staphylococcus aureus superinfection by activating PPARα, which drives RIPK3-dependent necroptosis and mortality. Blocking this pathway reduces fatal outcomes in superinfected mice.
Area of Science:
- Immunology
- Molecular Biology
- Pathology
Background:
- Secondary bacterial infections post-influenza significantly increase morbidity and mortality.
- Influenza infection exacerbates Staphylococcus aureus-induced inflammation and mortality in mice.
Purpose of the Study:
- To elucidate the molecular mechanisms underlying increased mortality in influenza-Staphylococcus aureus superinfection.
- To identify key molecular players and pathways involved in lethal superinfection.
Main Methods:
- Lipidomic profiling and transcriptional analysis of lung tissues from infected mice.
- Genetic manipulation (Ppara-/- mice) and pharmacological inhibition of key pathways.
- Analysis of cell death pathways, including NFκB and RIPK3-mediated necroptosis.
Main Results:
- Influenza infection increases lung CYP450 metabolites, activating the nuclear receptor PPARα.
- PPARα activation promotes RIPK3-dependent necroptosis and dampens NFκB-mediated inflammation and survival signals.
- Ppara-/- mice exhibit reduced susceptibility to lethal superinfection, highlighting PPARα's critical role.
Conclusions:
- A molecular circuit involving influenza-induced CYP450 metabolites, PPARα activation, and RIPK3-dependent necroptosis drives mortality in superinfection.
- Targeting the PPARα-RIPK3 pathway offers a potential therapeutic strategy for mitigating severe outcomes of secondary bacterial lung infections.
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