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Endothelial GDF15 deficiency enhances barrier function and mitigates pulmonary fibrosis
Kristen Raffensperger, Marta Bueno, Brian J. Philips, Megan Miller, Máté Katona, Shuai Yuan, Adriana Estrada-Bernal, Byron Chuan, Pavan Suresh, Stephanie Taiclet, Scott Hahn, Yingze Zhang, Jonathan K. Alder, Seyed Mehdi Nouraie, Daniel J. Kass, Oliver Eickelberg, Adam C. Straub
Kristen Raffensperger, Marta Bueno, Brian J. Philips, Megan Miller, Máté Katona, Shuai Yuan, Adriana Estrada-Bernal, Byron Chuan, Pavan Suresh, Stephanie Taiclet, Scott Hahn, Yingze Zhang, Jonathan K. Alder, Seyed Mehdi Nouraie, Daniel J. Kass, Oliver Eickelberg, Adam C. Straub
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Research Article Cell biology Pulmonology Vascular biology

Endothelial GDF15 deficiency enhances barrier function and mitigates pulmonary fibrosis

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Abstract

Pulmonary fibrosis is frequently accompanied by pulmonary hypertension, which can occur disproportionate to the extent of fibrosis, suggesting a fibrosis-independent vascular remodeling process. Here, we demonstrated that plasma growth differentiation factor 15 (GDF15) is elevated across diverse fibrotic lung disease subtypes and correlates with markers of elevated right heart pressures but not pulmonary function indices, indicating a possible link to endothelial cell dysfunction. To investigate the import of endothelial GDF15 as a modifier of lung fibrosis pathogenesis, we generated endothelial cell–specific Gdf15-KO mice, which showed protection from bleomycin-induced lung injury and fibrosis, with preserved lung function. RNA-seq of human pulmonary microvascular endothelial cells revealed altered expression of barrier-regulatory genes in GDF15-deficient endothelial cells compared with controls. Functional studies confirmed that GDF15 knockdown attenuates thrombin-induced barrier disruption by reducing cytosolic Ca2+ responses. Together, these findings implicate endothelial GDF15 as a modifier of vascular permeability and Ca2+ signaling and a contributor to lung injury and fibrosis.

Authors

Kristen Raffensperger, Marta Bueno, Brian J. Philips, Megan Miller, Máté Katona, Shuai Yuan, Adriana Estrada-Bernal, Byron Chuan, Pavan Suresh, Stephanie Taiclet, Scott Hahn, Yingze Zhang, Jonathan K. Alder, Seyed Mehdi Nouraie, Daniel J. Kass, Oliver Eickelberg, Adam C. Straub

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Figure 2

Plasma GDF15 levels correlate with evidence of microvascular change in patients with ILD.

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Plasma GDF15 levels correlate with evidence of microvascular change in p...
(A) Representative immunofluorescence images from control and patients with ILD, stained for smooth muscle actin (SMA) shown in green, platelet endothelial cell adhesion molecule-1 (PECAM-1) shown in pink, and DAPI shown in blue. Scale bars: 2 mm (whole lung), 50 μm (partial zoom), and 10 μm (full zoom). White arrows indicate microvessels of interest. Individual vessels are noted with arrowheads. (B) Count of vessels with diameter < 50 μm per field, in control and ILD histologic specimens; an average per specimen was calculated from 4 separate fields. (C) Vessel wall area of vessels < 50 μm in diameter, in control and ILD histologic specimens. Three vessels were examined per specimen, the average of which was reported as the final value per specimen. (D) Plasma GDF15 levels in 11 histologic patients with ILD plotted against each patient’s average microvessel wall area (CI = –0.6571, 0.5357) and average microvessel density (CI = –0.8805, 0.007738). Violin plots display median and interquartile range. Kolmogorov-Smirnov test (B and C) and Pearson correlation (D).

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