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Expression of mutant Sftpc in murine alveolar epithelia drives spontaneous lung fibrosis
Shin-Ichi Nureki, Yaniv Tomer, Alessandro Venosa, Jeremy Katzen, Scott J. Russo, Sarita Jamil, Matthew Barrett, Vivian Nguyen, Meghan Kopp, Surafel Mulugeta, Michael F. Beers
Shin-Ichi Nureki, Yaniv Tomer, Alessandro Venosa, Jeremy Katzen, Scott J. Russo, Sarita Jamil, Matthew Barrett, Vivian Nguyen, Meghan Kopp, Surafel Mulugeta, Michael F. Beers
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Research Article Pulmonology

Expression of mutant Sftpc in murine alveolar epithelia drives spontaneous lung fibrosis

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Abstract

Epithelial cell dysfunction is postulated as an important component in the pathogenesis of idiopathic pulmonary fibrosis (IPF). Mutations in the surfactant protein C (SP-C) gene (SFTPC), an alveolar type II (AT2) cell–restricted protein, have been found in sporadic and familial IPF. To causally link these events, we developed a knockin mouse model capable of regulated expression of an IPF-associated isoleucine-to-threonine substitution at codon 73 (I73T) in Sftpc (SP-CI73T). Tamoxifen-treated SP-CI73T cohorts developed rapid increases in SftpcI73T mRNA and misprocessed proSP-CI73T protein accompanied by increased early mortality (days 7–14). This acute phase was marked by diffuse parenchymal lung injury, tissue infiltration by monocytes, polycellular alveolitis, and elevations in bronchoalveolar lavage and AT2 mRNA content of select inflammatory cytokines. Resolution of alveolitis (2–4 weeks), commensurate with a rise in TGF-β1, was followed by aberrant remodeling marked by collagen deposition, AT2 cell hyperplasia, α–smooth muscle actin–positive (α-SMA–positive) cells, and restrictive lung physiology. The translational relevance of the model was supported by detection of multiple IPF biomarkers previously reported in human cohorts. These data provide proof of principle that mutant SP-C expression in vivo causes spontaneous lung fibrosis, strengthening the role of AT2 cell dysfunction as a key upstream driver of IPF pathogenesis.

Authors

Shin-Ichi Nureki, Yaniv Tomer, Alessandro Venosa, Jeremy Katzen, Scott J. Russo, Sarita Jamil, Matthew Barrett, Vivian Nguyen, Meghan Kopp, Surafel Mulugeta, Michael F. Beers

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Figure 7

BALF TGF-β1 and AT2 Tgfb1 mRNA increase prior to fibrotic remodeling.

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BALF TGF-β1 and AT2 Tgfb1 mRNA increase prior to fibrotic remodeling.
(A...
(A) TGF-β1 levels in BALF collected at the indicated times after tamoxifen treatment were measured using Luminex. Gray dots represent values from iTAM-treated IER-SP-CI73T/I73TFlp–/– control mice pooled from all 4 time points and black dots values for IER-SP-CI73T/I73TFlp+/– mice at each time point. (B) qRT-PCR for Tgfb1 mRNA expression in AT2 cells isolated from IER-SP-CI73T/I73TFlp+/– mice at 3 and 14 days after tamoxifen (black dots) and iTAM-treated IER-SP-CI73T/I73TFlp–/– control mice pooled from both time points (gray dots). Data expressed as fold change from IER-SP-CI73T/I73TFlp–/– control group are presented as dot plots with mean ± SEM shown. *P < 0.05 versus IER-SP-CI73T/I73TFlp–/– control by 1-way ANOVA with Tukey’s post hoc test.

Copyright © 2026 American Society for Clinical Investigation
ISSN: 0021-9738 (print), 1558-8238 (online)

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