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Caveolin-1 Identified As a Key Mediator of Acute Lung Injury Using Bioinformatics and Functional Research

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Journal Cell Death Dis
Date 2022 Aug 6
PMID 35933468
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Abstract

Acute lung injury (ALI) is a potentially life-threatening, devastating disease with an extremely high rate of mortality. The underlying mechanism of ALI is currently unclear. In this study, we aimed to confirm the hub genes associated with ALI and explore their functions and molecular mechanisms using bioinformatics methods. Five microarray datasets available in GEO were used to perform Robust Rank Aggregation (RRA) to identify differentially expressed genes (DEGs) and the key genes were identified via the protein-protein interaction (PPI) network. Lipopolysaccharide intraperitoneal injection was administered to establish an ALI model. Overall, 40 robust DEGs, which are mainly involved in the inflammatory response, protein catabolic process, and NF-κB signaling pathway were identified. Among these DEGs, we identified two genes associated with ALI, of which the CAV-1/NF-κB axis was significantly upregulated in ALI, and was identified as one of the most effective targets for ALI prevention. Subsequently, the expression of CAV-1 was knocked down using AAV-shCAV-1 or CAV-1-siRNA to study its effect on the pathogenesis of ALI in vivo and in vitro. The results of this study indicated that CAV-1/NF-κB axis levels were elevated in vivo and in vitro, accompanied by an increase in lung inflammation and autophagy. The knockdown of CAV-1 may improve ALI. Mechanistically, inflammation was reduced mainly by decreasing the expression levels of CD3 and F4/80, and activating autophagy by inhibiting AKT/mTOR and promoting the AMPK signaling pathway. Taken together, this study provides crucial evidence that CAV-1 knockdown inhibits the occurrence of ALI, suggesting that the CAV-1/NF-κB axis may be a promising therapeutic target for ALI treatment.

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References
1.
Anderson R . The caveolae membrane system. Annu Rev Biochem. 1998; 67:199-225. DOI: 10.1146/annurev.biochem.67.1.199. View

2.
Li W, He P, Huang Y, Li Y, Lu J, Li M . Selective autophagy of intracellular organelles: recent research advances. Theranostics. 2021; 11(1):222-256. PMC: 7681076. DOI: 10.7150/thno.49860. View

3.
Xue W, Wang J, Jiang W, Shi C, Wang X, Huang Y . Caveolin-1 alleviates lipid accumulation in NAFLD associated with promoting autophagy by inhibiting the Akt/mTOR pathway. Eur J Pharmacol. 2020; 871:172910. DOI: 10.1016/j.ejphar.2020.172910. View

4.
Yang R, Song Z, Wu S, Wei Z, Xu Y, Shen X . Toll-like receptor 4 contributes to a myofibroblast phenotype in cardiac fibroblasts and is associated with autophagy after myocardial infarction in a mouse model. Atherosclerosis. 2018; 279:23-31. DOI: 10.1016/j.atherosclerosis.2018.10.018. View

5.
Nguyen H, Adlanmerini M, Hauck A, Lazar M . Dichotomous engagement of HDAC3 activity governs inflammatory responses. Nature. 2020; 584(7820):286-290. PMC: 7725280. DOI: 10.1038/s41586-020-2576-2. View