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Published on: March 24, 2015
Differential Type I Interferon Signaling Is a Master Regulator of Susceptibility to Postinfluenza Bacterial
Kelly M Shepardson1, Kyle Larson1, Rachelle V Morton1
1Department of Microbiology and Immunology, Montana State University, Bozeman, Montana, USA.
Unlabelled:
Bacterial superinfections are a primary cause of death during influenza pandemics and epidemics. Type I interferon (IFN) signaling contributes to increased susceptibility of mice to bacterial superinfection around day 7 post-influenza A virus (IAV) infection. Here we demonstrate that the reduced susceptibility to methicillin-resistant Staphylococcus aureus (MRSA) at day 3 post-IAV infection, which we previously reported was due to interleukin-13 (IL-13)/IFN-γ responses, is also dependent on type I IFN signaling and its subsequent requirement for protective IL-13 production. We found, through utilization of blocking antibodies, that reduced susceptibility to MRSA at day 3 post-IAV infection was IFN-β dependent, whereas the increased susceptibility at day 7 was IFN-α dependent. IFN-β signaling early in IAV infection was required for MRSA clearance, whereas IFN-α signaling late in infection was not, though it did mediate increased susceptibility to MRSA at that time. Type I IFN receptor (IFNAR) signaling in CD11c(+) and Ly6G(+) cells was required for the observed reduced susceptibility at day 3 post-IAV infection. Depletion of Ly6G(+) cells in mice in which IFNAR signaling was either blocked or deleted indicated that Ly6G(+) cells were responsible for the IFNAR signaling-dependent susceptibility to MRSA superinfection at day 7 post-IAV infection. Thus, during IAV infection, the temporal differences in type I IFN signaling increased bactericidal activity of both CD11c(+) and Ly6G(+) cells at day 3 and reduced effector function of Ly6G(+) cells at day 7. The temporal differential outcomes induced by IFN-β (day 3) and IFN-α (day 7) signaling through the same IFNAR resulted in differential susceptibility to MRSA at 3 and 7 days post-IAV infection.
Importance:
Approximately 114,000 hospitalizations and 40,000 annual deaths in the United States are associated with influenza A virus (IAV) infections. Frequently, these deaths are due to community-acquired Gram-positive bacterial species, many of which show increasing resistance to antibiotic therapy. Severe complications, including parapneumonic empyema and necrotizing pneumonia, can arise, depending on virulence factors expressed by either the virus or bacteria. Unfortunately, we are unable to control the expression of these virulence factors, making host responses a logical target for therapeutic interventions. Moreover, interactions between virus, host, and bacteria that exacerbate IAV-related morbidities and mortalities are largely unknown. Here, we show that type I interferon (IFN) expression can modulate susceptibility to methicillin-resistant Staphylococcus aureus (MRSA) infection, with IFN-β reducing host susceptibility to MRSA infection while IFN-α increases susceptibility. Our data indicate that treatments designed to augment IFN-β and/or inhibit IFN-α production around day 7 post-IAV infection could reduce susceptibility to deadly superinfections.
Insights
Type I interferon (IFN) signaling differentially impacts bacterial superinfection risk after influenza A virus (IAV) infection. Early IFN-β protects against methicillin-resistant Staphylococcus aureus (MRSA), while later IFN-α increases susceptibility.
Area of Science:
- Immunology
- Microbiology
- Virology
Background:
- Bacterial superinfections, particularly with antibiotic-resistant strains like MRSA, are a major cause of death following influenza A virus (IAV) infection.
- Type I interferons (IFNs) play a complex role in host defense, modulating susceptibility to secondary bacterial infections.
- Understanding the temporal dynamics of host responses to IAV is crucial for developing therapeutic strategies against superinfections.
Purpose of the Study:
- To elucidate the distinct roles of early and late type I interferon signaling in modulating susceptibility to methicillin-resistant Staphylococcus aureus (MRSA) superinfection following influenza A virus (IAV) infection.
- To investigate the specific roles of IFN-β and IFN-α in mediating differential outcomes of bacterial superinfection at distinct time points post-IAV infection.
- To identify the cellular components involved in type I interferon-mediated protection and susceptibility to MRSA superinfection.
Main Methods:
- Utilized blocking antibodies to investigate the roles of IFN-β and IFN-α in MRSA superinfection models at days 3 and 7 post-IAV infection.
- Employed type I interferon receptor (IFNAR) knockout or blocked mice, alongside cell depletion strategies (Ly6G+ cells), to determine cellular requirements for differential susceptibility.
- Assessed bacterial clearance and host immune cell function (CD11c+ and Ly6G+ cells) at various time points post-IAV infection.
Main Results:
- IFN-β signaling early (day 3) post-IAV infection was essential for reducing susceptibility to MRSA by enhancing bactericidal activity of CD11c+ and Ly6G+ cells.
- IFN-α signaling late (day 7) post-IAV infection was associated with increased susceptibility to MRSA, linked to reduced effector function of Ly6G+ cells.
- IFNAR signaling in CD11c+ and Ly6G+ cells was critical for early protection, while Ly6G+ cells mediated late susceptibility dependent on IFNAR signaling.
Conclusions:
- Type I IFN signaling exhibits temporally distinct effects on bacterial superinfection susceptibility following IAV infection.
- IFN-β promotes early defense against MRSA, whereas IFN-α exacerbates susceptibility later in the infection course.
- Targeting specific type I IFNs (augmenting IFN-β, inhibiting IFN-α) around day 7 post-IAV infection may represent a therapeutic strategy to mitigate deadly MRSA superinfections.
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