Key result
Bleomycin-induced lung fibrosis in mice peaked at 8 weeks and spontaneously resolved by 16 weeks, accompanied by distinct temporal gene expression profiles involving extracellular matrix remodeling.
Why the study?
Does a single dose of bleomycin induce reversible lung fibrosis and what are the associated gene expression profiles in C57BL/6 mice?
Does a single dose of bleomycin induce reversible lung fibrosis and what are the associated gene expression profiles in C57BL/6 mice?
Absolute Event Rate: 187.2% vs 50.1%
p-value: p=<0.001
This study demonstrates that bleomycin-induced lung fibrosis in mice is reversible and identifies specific temporal gene expression clusters associated with its progression and resolution.
Bleomycin mouse model shows reversible fibrosis; leaves open translation to human interstitial lung disease and requires prospective validation.
Lung fibrosis is the final result of a large number of disorders and is usually considered an irreversible process. However, some evidence suggests that fibrosis could eventually be reversible. In this study we aimed to document the time-related reversibility of bleomycin-induced lung fibrosis and to examine the gene expression profile associated with its initial progression and subsequent resolution. C57BL/6 mice were instilled with a single dose of bleomycin and euthanized at 1, 4, 8, 12, and 16 wk. Control animals received an equal volume of saline. Lung fibrosis was examined by morphology and hydroxyproline content and the transcriptional signature by gene microarray analysis. Our results showed that bleomycin-injured mice developed prominent inflammation at 1 wk, followed by fibrosis that peaked at 2 mo. Then fibrosis resolved until lungs displayed almost normal architecture at 4 mo. Genomewide transcriptional profiling revealed 533 significantly changed genes. Self-organizing maps analysis of these genes identified four clusters based on the temporal pattern of gene expression. Clusters 1 and 2 contained genes upregulated during the inflammatory and fibrotic response and were enriched for extracellular matrix-related genes including several collagens, matrix metalloproteinases, and TIMP-1. Cluster 3 identified upregulated genes during the fibrotic response, and cluster 4 contained genes decreased during inflammation and fibrosis that increased during resolution. Most enriched pathways included genes involved in cell cycle and in regulation of transcription. Our findings corroborate the reversibility of bleomycin-induced lung fibrosis and reveal transcriptional signatures that characterize the progression and resolution.
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Cabrera et al. (2013) studied Bleomycin-induced lung fibrosis. Bleomycin vs. Saline was evaluated on Lung hydroxyproline content at 8 weeks (peak fibrosis) (p=<0.001). Bleomycin-induced lung fibrosis in mice peaked at 8 weeks and spontaneously resolved by 16 weeks, accompanied by distinct temporal gene expression profiles involving extracellular matrix remodeling.
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