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Updated: May 12, 2026

Dissecting Innate Immune Signaling in Viral Evasion of Cytokine Production
Published on: March 2, 2014
SARS-CoV pathogenesis is regulated by a STAT1 dependent but a type I, II and III interferon receptor independent
Matthew B Frieman1, Jun Chen, Thomas E Morrison
1Department of Epidemiology, University of North Carolina at Chapel Hill, Chapel Hill, North Carolina, United States of America.
Abstract:
Severe acute respiratory syndrome coronavirus (SARS-CoV) infection often caused severe end stage lung disease and organizing phase diffuse alveolar damage, especially in the elderly. The virus-host interactions that governed development of these acute end stage lung diseases and death are unknown. To address this question, we evaluated the role of innate immune signaling in protection from human (Urbani) and a recombinant mouse adapted SARS-CoV, designated rMA15. In contrast to most models of viral pathogenesis, infection of type I, type II or type III interferon knockout mice (129 background) with either Urbani or MA15 viruses resulted in clinical disease outcomes, including transient weight loss, denuding bronchiolitis and alveolar inflammation and recovery, identical to that seen in infection of wildtype mice. This suggests that type I, II and III interferon signaling play minor roles in regulating SARS pathogenesis in mouse models. In contrast, infection of STAT1-/- mice resulted in severe disease, high virus titer, extensive pulmonary lesions and 100% mortality by day 9 and 30 post-infection with rMA15 or Urbani viruses, respectively. Non-lethal in BALB/c mice, Urbani SARS-CoV infection in STAT1-/- mice caused disseminated infection involving the liver, spleen and other tissues after day 9. These findings demonstrated that SARS-CoV pathogenesis is regulated by a STAT1 dependent but type I, II and III interferon receptor independent, mechanism. In contrast to a well documented role in innate immunity, we propose that STAT1 also protects mice via its role as an antagonist of unrestrained cell proliferation.
Insights
Severe acute respiratory syndrome coronavirus (SARS-CoV) pathogenesis is regulated by STAT1, not interferon signaling. STAT1 deficiency leads to severe disease and mortality in mice, suggesting a broader protective role beyond innate immunity.
Area of Science:
- Virology
- Immunology
- Pathogenesis
Background:
- Severe acute respiratory syndrome coronavirus (SARS-CoV) causes severe lung disease, particularly in the elderly.
- The virus-host interactions driving SARS-CoV pathogenesis and mortality remain largely unknown.
Purpose of the Study:
- To investigate the role of innate immune signaling, specifically interferon pathways and STAT1, in SARS-CoV pathogenesis.
- To elucidate the mechanisms underlying SARS-CoV-induced lung disease and mortality.
Main Methods:
- Infection of wildtype and knockout mice (type I, II, III interferon receptor deficient, and STAT1 deficient) with human (Urbani) and mouse-adapted SARS-CoV (rMA15).
- Assessment of clinical outcomes, viral titers, pulmonary lesions, and disseminated infection.
Main Results:
- Interferon signaling (type I, II, III) played a minor role in SARS-CoV pathogenesis in mouse models.
- STAT1 knockout mice exhibited severe disease, high viral loads, extensive lung damage, and 100% mortality.
- STAT1 deficiency led to disseminated SARS-CoV infection in multiple organs.
Conclusions:
- SARS-CoV pathogenesis is regulated by a STAT1-dependent mechanism, independent of type I, II, and III interferon receptors.
- STAT1 plays a critical role in controlling SARS-CoV infection and preventing severe disease and mortality.
- STAT1 may also protect against SARS-CoV by antagonizing unrestrained cell proliferation.
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