Related Experiment Video
Updated: Feb 3, 2026

Systemic Bacterial Infection and Immune Defense Phenotypes in Drosophila Melanogaster
Published on: May 13, 2015
STAT2 Signaling Regulates Macrophage Phenotype During Influenza and Bacterial Super-Infection
Radha Gopal1, Benjamin Lee2, Kevin J McHugh1
1Department of Pediatrics, Children's Hospital of Pittsburgh, University of Pittsburgh Medical Center, Pittsburgh, PA, United States.
Abstract:
Influenza is a common respiratory virus that infects between 5 and 20% of the US population and results in 30,000 deaths annually. A primary cause of influenza-associated death is secondary bacterial pneumonia. We have previously shown that influenza induces type I interferon (IFN)-mediated inhibition of Type 17 immune responses, resulting in exacerbation of bacterial burden during influenza and Staphylococcus aureus super-infection. In this study, we investigated the role of STAT2 signaling during influenza and influenza-bacterial super-infection in mice. Influenza-infected STAT2-/- mice had increased morbidity, viral burden, and inflammation when compared to wild-type mice. Despite an exaggerated inflammatory response to influenza infection, we found increased bacterial control and survival in STAT2 deficient mice during influenza-MRSA super-infection compared to controls. Further, we found that increased bacterial clearance during influenza-MRSA super-infection is not due to rescue of Type 17 immunity. Absence of STAT2 was associated with increased accumulation of M1, M2 and M1/M2 co-expressing macrophages during influenza-bacterial super-infection. Neutralization of IFNγ (M1) and/or Arginase 1 (M2) impaired bacterial clearance in Stat2-/- mice during super-infection, demonstrating that pulmonary macrophages expressing a mixed M1/M2 phenotype promote bacterial control during influenza-bacterial super-infection. Together, these results suggest that the STAT2 signaling is involved in suppressing macrophage activation and bacterial control during influenza-bacterial super-infection. Further, these studies reveal novel mechanistic insight into the roles of macrophage subpopulations in pulmonary host defense.
Insights
STAT2 signaling negatively impacts bacterial control during influenza coinfections. STAT2 deficiency enhances macrophage activation, improving survival against secondary bacterial pneumonia after flu.
Area of Science:
- Immunology
- Respiratory Medicine
- Microbiology
Background:
- Influenza often leads to fatal secondary bacterial pneumonia.
- Type I interferon signaling, mediated by STAT2, impairs Type 17 immune responses during coinfection.
- STAT2's role in host defense during influenza and bacterial superinfection requires further investigation.
Purpose of the Study:
- To investigate the role of STAT2 signaling in host defense during influenza and Staphylococcus aureus superinfection.
- To elucidate the mechanisms by which STAT2 influences immune responses and bacterial control.
Main Methods:
- Utilized STAT2-deficient (STAT2-/-) and wild-type mice infected with influenza and MRSA.
- Assessed viral burden, morbidity, inflammation, and bacterial clearance.
- Analyzed macrophage phenotypes (M1, M2) and their role in bacterial control.
Main Results:
- STAT2-/- mice exhibited increased influenza morbidity and viral load but enhanced bacterial control and survival during superinfection.
- Bacterial clearance in STAT2-/- mice was independent of Type 17 immunity.
- Absence of STAT2 promoted M1/M2 macrophage accumulation, which was crucial for bacterial control.
Conclusions:
- STAT2 signaling suppresses macrophage activation and bacterial control during influenza-bacterial superinfection.
- Pulmonary macrophages with mixed M1/M2 phenotypes are critical for host defense against secondary bacterial pneumonia.
- These findings offer novel insights into macrophage roles in pulmonary immunity.
Related Concept Videos
Bacterial Signaling
Epigenetic Regulation
What is Cell Signaling?
GTPases and their Regulation
Large G-proteins,...
Regulated Protein Degradation
Protein degradation plays two important roles in the cells. It helps to protect cells from misfolded or damaged proteins before they lead to a...
Positive Regulator Molecules

