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Updated: Nov 26, 2025

Unilateral Lung Volume Analysis Using Micro-CT for Enhanced Assessment of Pulmonary Fibrosis in Preclinical Models
Published on: June 20, 2025
Rictor-targeting exosomal microRNA-16 ameliorates lung fibrosis by inhibiting the mTORC2-SPARC axis
Minoru Inomata1, Koichiro Kamio1, Arata Azuma1
1Department of Pulmonary Medicine and Oncology, Graduate School of Medicine, Nippon Medical School, Tokyo, 113-8603, Japan.
Abstract:
Idiopathic pulmonary fibrosis (IPF), a progressive disorder of unknown etiology, is characterized by pathological lung fibroblast activation and proliferation resulting in abnormal deposition of extracellular matrix proteins within the lung parenchyma. The pathophysiological roles of exosomal microRNAs in pulmonary fibrosis remain unclear; therefore, we aimed to identify and characterize fibrosis-responsive exosomal microRNAs. We used microRNA array analysis and profiled the expression of exosome-derived miRNA in sera of C57BL/6 mice exhibiting bleomycin-induced pulmonary fibrosis. The effect of microRNAs potentially involved in fibrosis was then evaluated in vivo and in vitro. The expression of exosomal microRNA-16 was increased by up to 8.0-fold on day 14 in bleomycin-treated mice, compared to vehicle-treated mice. MicroRNA-16 mimic administration on day 14 after bleomycin challenge ameliorated pulmonary fibrosis and suppressed lung and serum expression of secreted protein acidic and rich in cysteine (SPARC). Pretreatment of human lung fibroblasts with the microRNA-16 mimic decreased the expression of rapamycin-insensitive companion of mTOR (Rictor) and TGF-β1-induced expression of SPARC. This is the first study reporting the anti-fibrotic properties of microRNA-16 and demonstrating that these effects occur via the mTORC2 pathway. These findings support that microRNA-16 may be a promising therapeutic target for IPF.
Insights
MicroRNA-16 shows anti-fibrotic properties in pulmonary fibrosis models. This study found that microRNA-16 ameliorates lung fibrosis by targeting the mTORC2 pathway, suggesting its potential as a therapeutic target for idiopathic pulmonary fibrosis (IPF).
Area of Science:
- Molecular Biology
- Pulmonary Medicine
- Biochemistry
Background:
- Idiopathic pulmonary fibrosis (IPF) is a progressive lung disease characterized by fibroblast activation and extracellular matrix deposition.
- The role of exosomal microRNAs in the pathophysiology of pulmonary fibrosis is not well understood.
- Identifying specific microRNAs involved in fibrosis could lead to new therapeutic strategies.
Purpose of the Study:
- To identify and characterize exosomal microRNAs responsive to fibrosis.
- To investigate the therapeutic potential of microRNA-16 in pulmonary fibrosis.
Main Methods:
- MicroRNA array analysis of serum exosomes from mice with bleomycin-induced pulmonary fibrosis.
- In vivo and in vitro evaluation of fibrosis-related microRNAs.
- Administration of microRNA-16 mimic to assess its effects on pulmonary fibrosis and related protein expression (SPARC, Rictor).
Main Results:
- Exosomal microRNA-16 expression increased up to 8.0-fold in fibrotic mouse lungs.
- MicroRNA-16 mimic administration reduced pulmonary fibrosis and suppressed SPARC expression.
- MicroRNA-16 mimic decreased Rictor expression and TGF-β1-induced SPARC expression in human lung fibroblasts.
Conclusions:
- This study is the first to report the anti-fibrotic properties of microRNA-16.
- MicroRNA-16 exerts its anti-fibrotic effects through the mTORC2 pathway.
- MicroRNA-16 represents a promising therapeutic target for idiopathic pulmonary fibrosis (IPF).
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