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Published on: July 10, 2018
Microfibrillar-associated protein 4 modulates airway smooth muscle cell phenotype in experimental asthma
Bartosz Pilecki1, Anders Schlosser1, Helle Wulf-Johansson1
1Institute of Molecular Medicine, University of Southern Denmark, Odense, Denmark.
Background:
Recently, several proteins of the extracellular matrix have been characterised as active contributors to allergic airway disease. Microfibrillar-associated protein 4 (MFAP4) is an extracellular matrix protein abundant in the lung, whose biological functions remain poorly understood. In the current study we investigated the role of MFAP4 in experimental allergic asthma.
Methods:
MFAP4-deficient mice were subjected to alum/ovalbumin and house dust mite induced models of allergic airway disease. In addition, human healthy and asthmatic primary bronchial smooth muscle cell cultures were used to evaluate MFAP4-dependent airway smooth muscle responses.
Results:
MFAP4 deficiency attenuated classical hallmarks of asthma, such as eosinophilic inflammation, eotaxin production, airway remodelling and hyperresponsiveness. In wild-type mice, serum MFAP4 was increased after disease development and correlated with local eotaxin levels. MFAP4 was expressed in human bronchial smooth muscle cells and its expression was upregulated in asthmatic cells. Regarding the underlying mechanism, we showed that MFAP4 interacted with integrin αvβ5 and promoted asthmatic bronchial smooth muscle cell proliferation and CCL11 release dependent on phosphatidyloinositol-3-kinase but not extracellular signal-regulated kinase pathway.
Conclusions:
MFAP4 promoted the development of asthmatic airway disease in vivo and pro-asthmatic functions of bronchial smooth muscle cells in vitro. Collectively, our results identify MFAP4 as a novel contributor to experimental asthma, acting through modulation of airway smooth muscle cells.
Insights
Microfibrillar-associated protein 4 (MFAP4) promotes experimental asthma by affecting airway smooth muscle cells. MFAP4 deficiency reduced asthma symptoms, highlighting its role in allergic airway disease.
Area of Science:
- Pulmonary Medicine
- Immunology
- Extracellular Matrix Biology
Background:
- Extracellular matrix proteins are increasingly recognized for their roles in allergic airway diseases.
- Microfibrillar-associated protein 4 (MFAP4) is abundant in the lung, but its function in asthma is unclear.
Purpose of the Study:
- To investigate the role of MFAP4 in experimental allergic asthma.
- To determine MFAP4's impact on airway smooth muscle cell function.
Main Methods:
- Utilized MFAP4-deficient mice in established models of allergic airway disease (alum/ovalbumin and house dust mite).
- Examined primary human bronchial smooth muscle cells from healthy and asthmatic individuals.
- Assessed MFAP4's interaction with integrin αvβ5 and downstream signaling pathways (PI3K, ERK).
Main Results:
- MFAP4 deficiency significantly reduced eosinophilic inflammation, eotaxin production, airway remodeling, and hyperresponsiveness in asthma models.
- Serum MFAP4 levels increased with disease development and correlated with eotaxin.
- MFAP4 expression was upregulated in asthmatic bronchial smooth muscle cells and promoted cell proliferation and CCL11 release via PI3K signaling.
Conclusions:
- MFAP4 exacerbates experimental asthma in vivo.
- MFAP4 enhances pro-asthmatic functions of bronchial smooth muscle cells in vitro.
- MFAP4 is identified as a novel contributor to asthma pathogenesis through airway smooth muscle cell modulation.
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