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Published on: June 25, 2012
Mast cell chymase affects the functional properties of primary human airway fibroblasts: Implications for asthma
Xinran O Zhao1, Maria Lampinen2, Ola Rollman3
1Department of Medical Biochemistry and Microbiology, Uppsala University, Uppsala, Sweden.
Background:
Mast cells (MCs) have a profound impact on allergic asthma. Under such conditions, MCs undergo degranulation, resulting in the release of exceptionally large amounts of MC-restricted proteases. However, the role of these proteases in asthma is only partially understood.
Objectives:
We sought to test our hypothesis that MC proteases can influence the functionality of human lung fibroblasts (HLFs).
Methods:
Primary HLFs were treated with MC chymase or tryptase, followed by assessment of parameters related to fibroblast function.
Results:
HLFs underwent major morphologic changes in response to chymase, showing signs of cellular contraction, but were refractory to tryptase. However, no effects of chymase on HLF viability or proliferation were seen. Chymase, but not tryptase, had a major impact on the output of extracellular matrix-associated compounds from the HLFs, including degradation of fibronectin and collagen-1, and activation of pro-matrix metalloprotease 2. Further, chymase induced the release of various chemotactic factors from HLFs. In line with this, conditioned medium from chymase-treated HLFs showed chemotactic activity on neutrophils. Transcriptome analysis revealed that chymase induced a proinflammatory gene transcription profile in HLFs, whereas tryptase had minimal effects.
Conclusions:
Chymase, but not tryptase, has a major impact on the phenotype of primary airway fibroblasts by modifying their output of extracellular matrix components and by inducing a proinflammatory phenotype.
Insights
Mast cell chymase, not tryptase, alters lung fibroblast function. It changes fibroblast morphology, extracellular matrix production, and induces a proinflammatory response, impacting asthma pathogenesis.
Area of Science:
- Immunology
- Cell Biology
- Pulmonology
Background:
- Mast cells (MCs) significantly influence allergic asthma.
- MC degranulation releases proteases, but their role in asthma is unclear.
Purpose of the Study:
- To investigate the effect of MC proteases on human lung fibroblast (HLF) functionality.
- To determine if MC chymase or tryptase impacts HLF phenotype.
Main Methods:
- Primary HLFs were treated with MC chymase or tryptase.
- Fibroblast function parameters, including morphology, viability, proliferation, extracellular matrix production, and gene expression, were assessed.
Main Results:
- Chymase caused significant HLF morphologic changes and extracellular matrix degradation (fibronectin, collagen-1).
- Chymase activated pro-matrix metalloprotease 2 and induced chemotactic factor release, leading to neutrophil recruitment.
- Chymase triggered a proinflammatory gene transcription profile in HLFs, unlike tryptase.
Conclusions:
- MC chymase profoundly impacts airway fibroblast phenotype.
- Chymase modifies extracellular matrix production and induces a proinflammatory fibroblast phenotype, relevant to asthma.
- Tryptase showed minimal effects on HLF function.
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