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Administration of Gas6 attenuates lung fibrosis via inhibition of the epithelial-mesenchymal transition and fibroblast activation

Title
Administration of Gas6 attenuates lung fibrosis via inhibition of the epithelial-mesenchymal transition and fibroblast activation
Authors
LeeYe-JiKimMinsukHee-SunKangJihee Lee
Ewha Authors
이지희김희선김민석
SCOPUS Author ID
이지희scopus; 김희선scopus; 김민석scopus
Issue Date
2024
Journal Title
Cell Biology and Toxicology
ISSN
0742-2091JCR Link
Citation
Cell Biology and Toxicology vol. 40, no. 1
Keywords
AxlEMTFibroblast activationGas6Pulmonary fibrosis
Publisher
Springer Science and Business Media B.V.
Indexed
SCIE; SCOPUS WOS scopus
Document Type
Article
Abstract
The epithelial-mesenchymal transition (EMT) and fibroblast activation are major events in idiopathic pulmonary fibrosis pathogenesis. Here, we investigated whether growth arrest-specific protein 6 (Gas6) plays a protective role in lung fibrosis via suppression of the EMT and fibroblast activation. rGas6 administration inhibited the EMT in isolated mouse ATII cells 14 days post-BLM treatment based on morphologic cellular alterations, changes in mRNA and protein expression profiles of EMT markers, and induction of EMT-activating transcription factors. BLM-induced increases in gene expression of fibroblast activation-related markers and the invasive capacity of primary lung fibroblasts in primary lung fibroblasts were reversed by rGas6 administration. Furthermore, the hydroxyproline content and collagen accumulation in interstitial areas with damaged alveolar structures in lung tissue were reduced by rGas6 administration. Targeting Gas6/Axl signaling events with specific inhibitors of Axl (BGB324), COX-2 (NS-398), EP1/EP2 receptor (AH-6809), or PGD2 DP2 receptor (BAY-u3405) reversed the inhibitory effects of rGas6 on EMT and fibroblast activation. Finally, we confirmed the antifibrotic effects of Gas6 using Gas6−/− mice. Therefore, Gas6/Axl signaling events play a potential role in inhibition of EMT process and fibroblast activation via COX-2-derived PGE2 and PGD2 production, ultimately preventing the development of pulmonary fibrosis. © The Author(s) 2024.
DOI
10.1007/s10565-024-09858-5
Appears in Collections:
의과대학 > 의학과 > Journal papers
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