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Type II alveolar epithelial cell–specific loss of RhoA exacerbates allergic airway inflammation through SLC26A4
Danh C. Do, Yan Zhang, Wei Tu, Xinyue Hu, Xiaojun Xiao, Jingsi Chen, Haiping Hao, Zhigang Liu, Jing Li, Shau-Ku Huang, Mei Wan, Peisong Gao
Danh C. Do, Yan Zhang, Wei Tu, Xinyue Hu, Xiaojun Xiao, Jingsi Chen, Haiping Hao, Zhigang Liu, Jing Li, Shau-Ku Huang, Mei Wan, Peisong Gao
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Research Article Immunology Inflammation

Type II alveolar epithelial cell–specific loss of RhoA exacerbates allergic airway inflammation through SLC26A4

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Abstract

The small GTPase RhoA and its downstream effectors are critical regulators in the pathophysiological processes of asthma. The underlying mechanism, however, remains undetermined. Here, we generated an asthma mouse model with RhoA–conditional KO mice (Sftpc-cre;RhoAfl/fl) in type II alveolar epithelial cells (AT2) and demonstrated that AT2 cell–specific deletion of RhoA leads to exacerbation of allergen-induced airway hyperresponsiveness and airway inflammation with elevated Th2 cytokines in bronchoalveolar lavage fluid (BALF). Notably, Sftpc-cre;RhoAfl/fl mice showed a significant reduction in Tgf-β1 levels in BALF and lung tissues, and administration of recombinant Tgf-β1 to the mice rescued Tgf-β1 and alleviated the increased allergic airway inflammation observed in Sftpc-cre;RhoAfl/fl mice. Using RNA sequencing technology, we identified Slc26a4 (pendrin), a transmembrane anion exchange, as the most upregulated gene in RhoA-deficient AT2 cells. The upregulation of SLC26A4 was further confirmed in AT2 cells of asthmatic patients and mouse models and in human airway epithelial cells expressing dominant-negative RHOA (RHOA-N19). SLA26A4 was also elevated in serum from asthmatic patients and negatively associated with the percentage of forced expiratory volume in 1 second (FEV1%). Furthermore, SLC26A4 inhibition promoted epithelial TGF-β1 release and attenuated allergic airway inflammation. Our study reveals a RhoA/SLC26A4 axis in AT2 cells that functions as a protective mechanism against allergic airway inflammation.

Authors

Danh C. Do, Yan Zhang, Wei Tu, Xinyue Hu, Xiaojun Xiao, Jingsi Chen, Haiping Hao, Zhigang Liu, Jing Li, Shau-Ku Huang, Mei Wan, Peisong Gao

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Figure 3

Deletion of RhoA leads to decreased Tgf-β1 release from AT2 cells.

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Deletion of RhoA leads to decreased Tgf-β1 release from AT2 cells.
(A) R...
(A) Representative images of Tgf-β1 expression in AT2 cells of asthma mouse model by coimmunofluorescence staining with both Sftpc (red) and Tgf-β1 (green). (B) Quantification of Tgf-β1 expression in AT2 cells and expressed as fold changes in relative to PBS control (n = 5). (C) Schematic representation of AT2 cell isolation. (D) Confirmation of RhoA deletion in isolated AT2 cells of Sftpc-cre;RhoAfl/fl mice by Western blot. (E) Levels of Tgf-β1 in supernatants of CRE-treated AT2 cells isolated from WT and Sftpc-cre;RhoAfl/fl mice (n = 5). (F) Western bolt analysis of CRE-induced RHOA-GTP expression in HBECs. (G) Quantification of relative RHOA-GTP expression in F (n = 4). (H) Level of TGF-β1 in supernatants of CRE-treated HBECs (n = 4). (I) Confirmation of RHOA siRNA knockdown in HBECs by Western blot. (J) Quantification of relative RHOA expression in I (n = 4). (K) Level of TGF-β1 in supernatants of CRE-treated HBECs with control or RhoA siRNA knockdown (n = 4). Data represent mean ± SEM. Group comparisons were made using 2-way ANOVA (B, E, and G) and 2-tailed Student’s t test (H and J). *P < 0.05, **P < 0.01, and ***P < 0.001. Scale bars: 25 μm.

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