Dysregulated alveolar type 2 epithelial cell proteostasis promotes fibrogenic macrophage migration inhibitory factor-CD74 signaling.

Abstract

Aberrant proteostasis in alveolar type 2 epithelial cells (AEC2s) contributes to idiopathic pulmonary fibrosis (IPF), but the role of the ubiquitin-proteasome system (UPS) is unclear. Here, we show that UPS disruption in AEC2s amplifies profibrotic signaling to macrophages through macrophage migration inhibitory factor (MIF) family proteins in several models. Modeling UPS disruption with an AEC2-specific cullin 3 (Cul3) deletion produced spontaneous fibrosis in a physiological aging mouse model and exacerbated fibrosis in the bleomycin-induced lung injury model. This was accompanied by expansion of transitional epithelial states and increased MIF and MIF-2 in lung tissue and bronchoalveolar lavage fluid (BALF) in the model. Global or conditional AEC2-specific deletions of Mif or Mif-2 attenuated fibrosis in the bleomycin-treated mouse model, as did conditional deletions of Cd74, the cognate receptor for MIF and MIF-2, in C-X3-C motif chemokine receptor 1 (Cx3cr1)-expressing and platelet factor 4 (Pf4)-expressing cells. Pharmacological inhibition of MIF attenuated fibrosis in bleomycin-treated and transforming growth factor-β1 (TGFB1) transgenic mouse models and in ex vivo human precision-cut lung slices treated with fibrotic cocktail. In study participants with IPF, BALF MIF was elevated compared with that in study participants without IPF. In participants with IPF, BALF MIF greater than 4000 picograms per milliliter was associated with increased mortality compared with participants with IPF with lower MIF. Together, these findings define a UPS-sensitive epithelial-macrophage signaling connection and identify MIF-CD74 cross-talk as a potential therapeutic target in fibrotic lung disease.

Department

Description

Provenance

Subjects

Lung, Macrophages, Animals, Mice, Inbred C57BL, Mice, Transgenic, Humans, Mice, Disease Models, Animal, Proteasome Endopeptidase Complex, Intramolecular Oxidoreductases, Bleomycin, Ubiquitin, Antigens, Differentiation, B-Lymphocyte, Histocompatibility Antigens Class II, Macrophage Migration-Inhibitory Factors, Signal Transduction, Male, Idiopathic Pulmonary Fibrosis, Alveolar Epithelial Cells, Proteostasis

Citation

Published Version (Please cite this version)

10.1126/scitranslmed.adr2277

Publication Info

Kim, Sang-Hun, Jessica Nouws, Jannik Ruwisch, Gavitt A Woodard, Joseph Cooley, Johad Khoury, Huanxing Sun, Edward Doherty, et al. (2025). Dysregulated alveolar type 2 epithelial cell proteostasis promotes fibrogenic macrophage migration inhibitory factor-CD74 signaling. Science translational medicine, 17(827). p. eadr2277. 10.1126/scitranslmed.adr2277 Retrieved from https://hdl.handle.net/10161/34927.

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Scholars@Duke

Ingram

Jennifer Leigh Ingram

Associate Professor in Medicine

Dr. Ingram's research interests focus on the study of airway remodeling in human asthma. Proliferation, migration, and invasion of airway fibroblasts are key features of airway remodeling that contribute to diminished lung function over time. Dr. Ingram uses molecular biology approaches to define the effects of interleukin-13 (IL-13), a cytokine abundantly produced in the asthmatic airway, in the human airway fibroblast. She has identified important regulatory functions of several proteins prevalent in asthma that control fibroblast growth and pro-fibrotic growth factor production in response to IL-13. By understanding these pathways and their role in human asthma and the chronic effects of airway remodeling, novel treatment strategies may be developed.


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