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Visualization and Quantification of TGFβ/BMP/SMAD Signaling under Different Fluid Shear Stress Conditions using Proximity-Ligation-Assay
Published on: September 14, 2021
Smad1 pathway is activated in systemic sclerosis fibroblasts and is targeted by imatinib mesylate
Jaspreet Pannu1, Yoshihide Asano, Sashidhar Nakerakanti
1Division of Rheumatology and Immunology, Medical University of South Carolina, Charleston, SC 29425-6370, USA.
Objective:
Activation of Smad1 signaling has recently been implicated in the development of fibrosis. The goal of the present study was to gain further insights into activation of the Smad1 pathway in fibrosis in systemic sclerosis (SSc) and to determine whether this pathway is targeted by the antifibrotic drug imatinib mesylate.
Methods:
Levels of phosphorylated Smad1 and total Smad1 were examined in SSc and control skin biopsy samples by immunohistochemistry and in cultured fibroblasts by Western blotting. Activity of the CCN2 promoter was examined by a luciferase reporter gene assay. Interactions of Smad1 with the CCN2 promoter were examined by in vitro and in vivo DNA binding assays. Expression of the nonreceptor tyrosine kinase c-Abl and Smad1 was blocked using respective small interfering RNA.
Results:
Total and phosphorylated Smad1 levels were significantly elevated in SSc skin biopsy samples and in cultured SSc fibroblasts and correlated with elevated CCN2 protein and CCN2 promoter activity. DNA binding assays demonstrated that Smad1 was a direct activator of the CCN2 gene. Small interfering RNA-mediated depletion of Smad1 in SSc fibroblasts normalized the production of CCN2 and collagen. Imatinib mesylate blocked activation of the Smad1 pathway in transforming growth factor beta-stimulated control fibroblasts and reversed activation of this pathway in SSc fibroblasts. Likewise, blockade of c-Abl abrogated activation of the Smad1 pathway in SSc fibroblasts.
Conclusion:
Our findings demonstrate that activation of Smad1 signaling occurs in a subset of SSc patients and contributes to persistent activation of SSc fibroblasts. Demonstration that the Smad1/CCN2 pathway is blocked by imatinib mesylate further clarifies the mechanism of the antifibrotic effects of this compound. This study suggests that SSc patients with activated Smad1 signaling may benefit from imatinib mesylate treatment.
Insights
Smad1 pathway activation drives fibrosis in systemic sclerosis (SSc) by upregulating CCN2. The antifibrotic drug imatinib mesylate effectively blocks this Smad1/CCN2 pathway, suggesting potential benefit for SSc patients with activated Smad1 signaling.
Area of Science:
- Fibrosis research
- Molecular signaling in connective tissue diseases
- Pharmacological targeting of fibrotic pathways
Background:
- Fibrosis development is linked to Smad1 signaling activation.
- Systemic sclerosis (SSc) is a fibrotic condition with incompletely understood molecular mechanisms.
- Identifying therapeutic targets for SSc is crucial.
Purpose of the Study:
- To investigate Smad1 pathway activation in systemic sclerosis (SSc) fibrosis.
- To determine if imatinib mesylate targets the Smad1 pathway in SSc.
- To elucidate the role of Smad1 in CCN2 regulation in SSc.
Main Methods:
- Immunohistochemistry and Western blotting to assess Smad1 levels in SSc skin and fibroblasts.
- Luciferase reporter assay to measure CCN2 promoter activity.
- DNA binding assays, siRNA, and imatinib mesylate treatment to investigate Smad1-CCN2 interaction and drug effects.
Main Results:
- Elevated total and phosphorylated Smad1 levels were observed in SSc skin and fibroblasts, correlating with increased CCN2.
- Smad1 directly activated the CCN2 gene, and its depletion normalized CCN2 and collagen production in SSc fibroblasts.
- Imatinib mesylate and c-Abl blockade inhibited Smad1 pathway activation in SSc fibroblasts.
Conclusions:
- Smad1 pathway activation contributes to fibroblast activation in a subset of SSc patients.
- Imatinib mesylate's antifibrotic effects are partly mediated by blocking the Smad1/CCN2 pathway.
- SSc patients with activated Smad1 signaling may respond favorably to imatinib mesylate treatment.
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