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Updated: Oct 3, 2025

Refined Murine Model of Idiopathic Pulmonary Fibrosis
Published on: June 17, 2025
Fatty acid nitroalkene reversal of established lung fibrosis
Adolf Koudelka1, Veronika Cechova1, Mauricio Rojas2
1Department of Pharmacology and Chemical Biology, University of Pittsburgh, School of Medicine, E1340 BST, 200 Lothrop Street, Pittsburgh, PA, 15261, USA.
Abstract:
Tissue fibrosis occurs in response to dysregulated metabolism, pro-inflammatory signaling and tissue repair reactions. For example, lungs exposed to environmental toxins, cancer therapies, chronic inflammation and other stimuli manifest a phenotypic shift to activated myofibroblasts and progressive and often irreversible lung tissue scarring. There are no therapies that stop or reverse fibrosis. The 2 FDA-approved anti-fibrotic drugs at best only slow the progression of fibrosis in humans. The present study was designed to test whether a small molecule electrophilic nitroalkene, nitro-oleic acid (NO2-OA), could reverse established pulmonary fibrosis induced by the intratracheal administration of bleomycin in C57BL/6 mice. After 14 d of bleomycin-induced fibrosis development in vivo, lungs were removed, sectioned and precision-cut lung slices (PCLS) from control and bleomycin-treated mice were cultured ex vivo for 4 d with either vehicle or NO2-OA (5 μM). Biochemical and morphological analyses showed that over a 4 d time frame, NO2-OA significantly inhibited pro-inflammatory mediator and growth factor expression and reversed key indices of fibrosis (hydroxyproline, collagen 1A1 and 3A1, fibronectin-1). Quantitative image analysis of PCLS immunohistology reinforced these observations, revealing that NO2-OA suppressed additional hallmarks of the fibrotic response, including alveolar epithelial cell loss, myofibroblast differentiation and proliferation, collagen and α-smooth muscle actin expression. NO2-OA also accelerated collagen degradation by resident macrophages. These effects occurred in the absence of the recognized NO2-OA modulation of circulating and migrating immune cell activation. Thus, small molecule nitroalkenes may be useful agents for reversing pathogenic fibrosis of lung and other organs.
Insights
Nitro-oleic acid (NO₂-OA) reversed established lung fibrosis in mice by reducing pro-inflammatory signals and collagen deposition. This small molecule may offer new therapeutic strategies for fibrotic diseases.
Area of Science:
- Biochemistry
- Cell Biology
- Pulmonary Medicine
Background:
- Tissue fibrosis, characterized by scarring, arises from inflammation and abnormal repair.
- Current anti-fibrotic therapies offer limited efficacy, often only slowing disease progression.
- Pulmonary fibrosis leads to irreversible lung scarring, with no effective reversal treatments.
Purpose of the Study:
- To investigate the potential of nitro-oleic acid (NO₂-OA) to reverse established pulmonary fibrosis.
- To assess the effects of NO₂-OA on fibrotic markers and cellular processes in a mouse model.
Main Methods:
- Pulmonary fibrosis was induced in mice using bleomycin.
- Precision-cut lung slices (PCLS) from fibrotic lungs were cultured ex vivo with NO₂-OA.
- Biochemical assays, morphological analysis, and immunohistology were used to evaluate treatment effects.
Main Results:
- NO₂-OA significantly inhibited pro-inflammatory mediators and growth factors.
- Key fibrosis indices, including hydroxyproline and collagen levels, were reversed.
- NO₂-OA reduced myofibroblast activity, epithelial cell loss, and promoted collagen degradation by macrophages.
Conclusions:
- Small molecule nitroalkenes, like NO₂-OA, demonstrate potential for reversing established pulmonary fibrosis.
- NO₂-OA acts directly on lung tissue, independent of systemic immune cell modulation.
- These findings suggest NO₂-OA as a promising therapeutic candidate for fibrotic diseases in various organs.

