This study established a murine model of COVID-19-associated lung injury via intranasal instillation of SARS-CoV-2 and LPS. The results demonstrated that intranasal co-administration of SARS-CoV-2 and LPS induces a robust inflammatory response accompanied by suppression of IFN-I signaling. Mice in the model group exhibited significant body weight loss and increased lung index, indicating systemic wasting and aggravated pulmonary injury. HE staining further confirmed that the model group exhibited typical diffuse lung injury, characterized by disruption of alveolar architecture and extensive inflammatory cell infiltration. In addition, compared with the control group, lung tissues from the model group showed significantly increased expression of key pro-inflammatory cytokines, including IL-6, IL-1β, and TNF-α, whereas the levels of IFN-α and IFN-β were markedly decreased. These findings suggest a state of immune imbalance characterized by excessive activation of pro-inflammatory responses accompanied by suppressed antiviral immunity, further supporting the potential value of this model in recapitulating the immunopathological features of disease.
SARS-CoV-2 infection is considered a central driving factor in the development of COVID-19-associated organ damage26,27. In this study, a high viral load was detected in the lung tissues of model mice, accompanied by marked diffuse lung injury and inflammatory cell infiltration, suggesting that viral infection may be a key trigger of the pulmonary inflammatory response. Consistent with previous reports, SARS-CoV-2 infection can induce pulmonary pathological changes and immune activation28; however, conventional SARS-CoV-2 infection models in mice often exhibit limited inflammatory responses and may not fully reproduce the hyperinflammatory phenotype observed in COVID-19 patients18,19,20. Therefore, additional innate immune stimulation may be required to better investigate the mechanisms underlying immune-inflammatory dysregulation associated with disease. LPS, a prototypical activator of innate immunity, binds to Toll-like receptor 4 (TLR4) and triggers both MyD88-dependent and TRIF-dependent signaling pathways, thereby activating key inflammatory transcriptional programs such as NF-κB and inducing the expression of multiple pro-inflammatory cytokines29. Previous studies have also demonstrated that LPS stimulation, either alone or in combination with SARS-CoV-2-related components, can enhance inflammatory responses and contribute to acute lung injury-like phenotypes, supporting the rationale for incorporating LPS as an inflammatory stimulus in COVID-19-related research30,31,32. In the present study, significantly elevated levels of IL-6, IL-1β, and TNF-α were observed in lung tissues of the model group, suggesting that LPS functions as an inflammatory amplifier in the context of SARS-CoV-2 infection rather than simply representing bacterial coinfection. Compared with LPS-only inflammatory models, which lack the viral infection background, the combined model established in this study integrates SARS-CoV-2-induced immune alterations with LPS-mediated inflammatory activation, thereby providing a more comprehensive platform for studying COVID-19-associated lung injury.
IFN-I are key effector molecules of host antiviral immunity and exert broad antiviral functions by inducing a wide range of interferon-stimulated genes (ISGs)33. However, SARS-CoV-2 has been demonstrated to antagonize IFN-I signaling through multiple mechanisms, including interference with pattern recognition receptor (PRR)-mediated signal transduction, suppression of interferon regulatory factor (IRF) activation, and blockade of downstream JAK-STAT signaling, thereby impairing host antiviral defenses14,34. In this study, significantly reduced levels of IFN-α and IFN-β were observed in the lung tissues of the model group, indicating that under the synergistic effects of viral infection and LPS stimulation, the host not only exhibited excessive inflammatory activation but also concomitant suppression of antiviral immunity. Such immune dysregulation is considered one of the key immunological hallmarks in the development and progression of COVID-198. Therefore, the present model partially recapitulates this complex pathological process, providing a valuable experimental tool for further investigation of COVID-19-associated immune dysregulation and for the development of related therapeutic interventions.
The COVID-19 mouse model established in this study based on combined SARS-CoV-2 and LPS administration is capable of recapitulating key features of disease pathology, including elevated pro-inflammatory cytokines and suppression of IFN-I signaling, thereby partially mimicking the immune imbalance observed in COVID-19-associated lung injury. Compared with single viral infection models, this combined approach incorporates an exogenous innate immune stimulus to enhance disease-relevant inflammatory responses, thereby enabling the study of pathological processes associated with excessive inflammation and impaired antiviral immunity. Accordingly, this model may be valuable for evaluating candidate anti-inflammatory, immunomodulatory, and lung repair strategies in vivo, particularly those targeting immune dysregulation rather than viral replication alone.
However, several limitations of this study should be acknowledged. First, LPS induces inflammation primarily through TLR4 activation, which does not fully reflect the complex virus–host interactions in clinical COVID-19 and may alter the inflammatory response. Second, although comparative experiments with SARS-CoV-2-only and LPS-only groups were performed during the preliminary optimization phase, these data are not included in the manuscript. Future studies will further evaluate the individual and combined effects of SARS-CoV-2 and LPS to better define the contribution of each component. Third, this model is designed to reproduce key immunopathological features of COVID-19-associated lung injury, particularly immune-inflammatory dysregulation, rather than the complete natural course of SARS-CoV-2 infection. Finally, although the SARS-CoV-2 dose and LPS concentration were determined based on preliminary optimization experiments, variations in mouse strains, viral variants, testing methods, and experimental conditions may affect model reproducibility and require further validation across different research settings. Under the optimized conditions described in this protocol, the overall model establishment success rate was approximately 90%; however, this rate may vary among different experimental settings. Future studies could further optimize this model by incorporating different SARS-CoV-2 variants, genetically modified mouse strains, or advanced immune profiling approaches, such as single-cell transcriptomic analysis, to better characterize virus–host interactions and identify therapeutic targets. These efforts may further improve the translational relevance of this model for COVID-19 research.