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Active epithelial Hippo signaling in idiopathic pulmonary fibrosis
Jason J. Gokey, Anusha Sridharan, Yan Xu, Jenna Green, Gianni Carraro, Barry R. Stripp, Anne-Karina T. Perl, Jeffrey A. Whitsett
Jason J. Gokey, Anusha Sridharan, Yan Xu, Jenna Green, Gianni Carraro, Barry R. Stripp, Anne-Karina T. Perl, Jeffrey A. Whitsett
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Research Article Cell biology Pulmonology

Active epithelial Hippo signaling in idiopathic pulmonary fibrosis

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Abstract

Hippo/YAP signaling plays pleiotropic roles in the regulation of cell proliferation and differentiation during organogenesis and tissue repair. Herein we demonstrate increased YAP activity in respiratory epithelial cells in lungs of patients with idiopathic pulmonary fibrosis (IPF), a common, lethal form of interstitial lung disease (ILD). Immunofluorescence staining in IPF epithelial cells demonstrated increased nuclear YAP and loss of MST1/2. Bioinformatic analyses of epithelial cell RNA profiles predicted increased activity of YAP and increased canonical mTOR/PI3K/AKT signaling in IPF. Phospho-S6 (p-S6) and p-PTEN were increased in IPF epithelial cells, consistent with activation of mTOR signaling. Expression of YAP (S127A), a constitutively active form of YAP, in human bronchial epithelial cells (HBEC3s) increased p-S6 and p-PI3K, cell proliferation and migration, processes that were inhibited by the YAP-TEAD inhibitor verteporfin. Activation of p-S6 was required for enhancing and stabilizing YAP, and the p-S6 inhibitor temsirolimus blocked nuclear YAP localization and suppressed expression of YAP target genes CTGF, AXL, and AJUBA (JUB). YAP and mTOR/p-S6 signaling pathways interact to induce cell proliferation and migration, and inhibit epithelial cell differentiation that may contribute to the pathogenesis of IPF.

Authors

Jason J. Gokey, Anusha Sridharan, Yan Xu, Jenna Green, Gianni Carraro, Barry R. Stripp, Anne-Karina T. Perl, Jeffrey A. Whitsett

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Figure 2

Hippo/YAP signaling in idiopathic pulmonary fibrosis (IPF).

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Hippo/YAP signaling in idiopathic pulmonary fibrosis (IPF).
(A–C) Repres...
(A–C) Representative immunofluorescence confocal microscopy of donor (n = 4) and IPF (n = 6) lung tissue was used to detect Hippo components. (A) AJUBA (white), ACTA2 (green), and ABCA3 (red). (B) YAP (green) and ABCA3 (red). (C) MST1/2 (red) and ABCA3 (green). White arrows point to cells coexpressing ABCA3 and nuclear YAP in IPF. Scale bars: 100 μm (overviews) and 10 μm (insets). (D) Representative immunoblots of YAP and phosphorylated YAP (p-YAP) from lung tissue lysates of IPF (n = 6), control (n = 4), and COPD (n = 3) patients are shown. (E) Western blots were normalized to β-actin. (F) Multiplexed proximity ligation fluorescence in situ hybridization (PLISH) staining of CTGF (red) and AXL (white) were costained using pan-cytokeratin (PanKRT) (green) in normal donor (n = 6) and IPF (n = 6) lung tissue. Scale bars: 25 μm and 2.5 μm (insets). (G) qPCR analysis of RNA from CD326+ epithelial cells isolated from peripheral lungs of healthy donor (n = 3) and IPF (n = 3) lung tissue was used to quantify SAV1, MST2, and JUB RNAs. ANOVA was used to assess Western blot quantification; Student’s t test was used for qPCR. *P < 0.05.

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