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PAI-1 interaction with sortilin-related receptor 1 is required for lung fibrosis
Thomas H. Sisson, John J. Osterholzer, Lisa Leung, Venkatesha Basrur, Alexey Nesvizhskii, Natalya Subbotina, Mark Warnock, Daniel Torrente, Ammara Q. Virk, Sergey S. Gutor, Jeffrey C. Horowitz, Mary Migliorini, Dudley K. Strickland, Kevin K. Kim, Steven K. Huang, Daniel A. Lawrence
Thomas H. Sisson, John J. Osterholzer, Lisa Leung, Venkatesha Basrur, Alexey Nesvizhskii, Natalya Subbotina, Mark Warnock, Daniel Torrente, Ammara Q. Virk, Sergey S. Gutor, Jeffrey C. Horowitz, Mary Migliorini, Dudley K. Strickland, Kevin K. Kim, Steven K. Huang, Daniel A. Lawrence
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Research Article Aging Pulmonology

PAI-1 interaction with sortilin-related receptor 1 is required for lung fibrosis

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Abstract

Mutation studies of plasminogen activator inhibitor 1 (PAI-1) have previously implied that PAI-1 promotes lung fibrosis via a vitronectin-dependent (VTN-dependent) mechanism. In the present study, employing 2 distinct murine fibrosis models and VTN-deficient mice, we found that VTN is not required for PAI-1 to drive lung scarring. This result suggested the existence of a profibrotic interaction involving the VTN-binding site on PAI-1 with an unidentified ligand. Using an unbiased proteomic approach, we identified sortilin-related receptor 1 (SorLA) as the most highly enriched PAI-1 binding partner in the fibrosing lung. Investigating the role of SorLA in pulmonary fibrosis demonstrated that deficiency of this protein protected against lung scarring in a murine model. We further found that SorLA is required for PAI-1 to promote scarring in mice, that both SorLA and PAI-1 protein levels are increased in human idiopathic pulmonary fibrosis (IPF) explants, and that these proteins are associated in IPF tissue. Finally, confocal microscopy showed that expression of SorLA in CHO cells increased cellular uptake of PAI-1, and these proteins colocalized in the cytoplasm. Together, these data elucidate a mechanism by which the potent profibrotic mediator PAI-1 drives lung fibrosis and implicate SorLA as a potential therapeutic target in IPF treatment.

Authors

Thomas H. Sisson, John J. Osterholzer, Lisa Leung, Venkatesha Basrur, Alexey Nesvizhskii, Natalya Subbotina, Mark Warnock, Daniel Torrente, Ammara Q. Virk, Sergey S. Gutor, Jeffrey C. Horowitz, Mary Migliorini, Dudley K. Strickland, Kevin K. Kim, Steven K. Huang, Daniel A. Lawrence

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Figure 2

Reconstitution of PAI-1–/–:VTN–/– mice with PAI-1RR restores pulmonary fibrosis in a VTN-independent manner.

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Reconstitution of PAI-1–/–:VTN–/– mice with PAI-1RR restores pulmonary f...
(A) Schematics of murine fibrosis models. In the targeted AEC2 injury model, DT (10.0 μg/kg) was administered for 14 days to DTR+ and DTR+:PAI-1–/–:VTN–/– mice. On day 11 (D11), DT-injured DTR+:PAI-1–/–:VTN–/– mice received either i.p. recombinant PAI-1RR (deficient antiprotease activity but intact VTN binding) at 100 μg twice daily or an equivalent volume of PBS. Control cohorts included DT-injured DTR+ mice and uninjured DTR+ mice (both without PAI-1RR reconstitution). In the single-dose bleomycin model, bleomycin was administered (2.5 U/kg) to double-knockout PAI-1–/–:VTN–/– mice. Beginning on D11, PAI-1–/–:VTN–/– mice were treated with either recombinant PAI-1RR or PBS. Control cohorts of mice receiving PBS in place of PAI-1RR included bleomycin-injured and uninjured WT mice. (B and C) Lungs were harvested on D21 and analyzed for hydroxyproline content. (D) Harvested lungs were inflating fixed, sectioned, and stained with H&E (top panels) and Picrosirius red (bottom panels). Scale bars: 180 μm. Results in B and C are reported as the mean concentration ± SEM. n = 7–10 (B), n = 11–15 (C). Representative data are displayed from 1 of 3 (B) and 1 of 2 experiments (C). Significant P values are shown for comparisons performed using 2-way ANOVA with Tukey’s multiple-comparison test.

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