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Updated: Mar 12, 2026

Oropharyngeal Administration of Bleomycin in the Murine Model of Pulmonary Fibrosis
Published on: May 9, 2025
EP4 Receptor-Associated Protein in Macrophages Protects against Bleomycin-Induced Pulmonary Inflammation in Mice
Sei Higuchi1, Risako Fujikawa1, Taichi Ikedo1,2
1Department of Clinical Innovative Medicine, Kyoto University Graduate School of Medicine, Kyoto 606-8507, Japan.
Abstract:
Excessive activation of inflammatory macrophages drives the pathogenesis of many chronic diseases. EP4 receptor-associated protein (EPRAP) has been identified as a novel, anti-inflammatory molecule in macrophages. In this study, we investigated the role of EPRAP using a murine model of bleomycin (BLM)-induced pulmonary inflammation. When compared with wild-type mice, EPRAP-deficient mice exhibited significantly higher mortality, and increased accumulation of macrophages and proinflammatory molecules in the lung 7 d post-BLM administration. Accordingly, the levels of phosphorylated p105, MEK1/2, and ERK1/2 were elevated in EPRAP-deficient alveolar macrophages following BLM administration. In contrast, macrophage-specific EPRAP overexpression decreased the production of proinflammatory cytokines and chemokines, suggesting that EPRAP in macrophages plays a key role in attenuating BLM-induced pulmonary inflammation. As EPRAP is phosphorylated after translation, we examined the role of posttranslational modifications in cellular inflammatory activation using mouse embryo fibroblasts (MEFs) expressing mutant EPRAP proteins. Expression of mutant EPRAP, in which serine-108 and serine-608 were replaced with alanine (EPRAP S108A/S608A), markedly suppressed TNF-α production in LPS-treated MEFs. Conversely, the serine phosphatase 2A (PP2A) inhibitor, cantharidic acid, increased LPS-induced TNF-α production in MEFs expressing wild-type EPRAP, but not in MEFs expressing EPRAP S108A/S608A. Immunoprecipitation analyses demonstrated that EPRAP associated with PP2A in both MEFs and alveolar macrophages from BLM-treated mice. Our data suggest that PP2A dephosphorylates EPRAP, which may be a crucial step in exertion of its anti-inflammatory properties. For these reasons, we believe the EPRAP-PP2A axis in macrophages holds the key to treating chronic inflammatory disorders.
Insights
EP4 receptor-associated protein (EPRAP) dampens inflammation in macrophages. Its dephosphorylation by PP2A is crucial for anti-inflammatory effects, offering a therapeutic target for chronic inflammatory diseases.
Area of Science:
- Immunology
- Molecular Biology
- Cell Biology
Background:
- Excessive inflammatory macrophage activation drives chronic disease pathogenesis.
- EP4 receptor-associated protein (EPRAP) is a novel anti-inflammatory molecule in macrophages.
Purpose of the Study:
- Investigate the role of EPRAP in pulmonary inflammation.
- Elucidate the mechanism of EPRAP's anti-inflammatory action, focusing on posttranslational modifications.
Main Methods:
- Murine model of bleomycin (BLM)-induced pulmonary inflammation.
- Analysis of wild-type and EPRAP-deficient mice.
- Macrophage-specific EPRAP overexpression studies.
- Use of mutant EPRAP proteins and phosphatase inhibitors in cell culture.
- Immunoprecipitation assays.
Main Results:
- EPRAP deficiency exacerbated BLM-induced pulmonary inflammation and mortality.
- EPRAP deficiency increased macrophage accumulation and pro-inflammatory mediators.
- EPRAP overexpression attenuated inflammation.
- PP2A dephosphorylation of EPRAP was critical for its anti-inflammatory function.
Conclusions:
- EPRAP plays a key role in attenuating pulmonary inflammation.
- The EPRAP-PP2A axis in macrophages is crucial for regulating inflammatory responses.
- Targeting the EPRAP-PP2A pathway may offer therapeutic strategies for chronic inflammatory disorders.

