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Published on: October 27, 2020
IM-412 inhibits transforming growth factor beta-induced fibroblast differentiation in human lung fibroblast cells
Sarah Park1, Ji-Yeon Ahn, Min-Jin Lim
1Laboratory of Radiation Sensitization & Protection, Korea Institute of Radiological & Medical Sciences, Seoul, Republic of Korea.
Abstract:
Pulmonary fibrosis is a type of interstitial lung disease that causes progressive scarring in lung tissues. Although there have been many studies on fibrosis, there is no standard treatment for fibrotic disease. Thus, there is an urgent need for the development of effective anti-fibrotic drugs. Transforming growth factor beta (TGF-beta) is a major fibrotic mediator known to stimulate fibrosis. To identify small molecules that inhibit TGF-beta responses, we performed cell-based chemical screening using genetically engineered HEK293 reporter cells. Among 8000 chemical compounds containing biologically active natural products and synthetic or clinically used compounds, we found that 3-(2-chlorobenzyl)-1,7-dimethyl-1H-imidazo[2,1-f]purine-2,4(3H,8H)-dione (IM-412) significantly decreased TGF-beta stimulated reporter activity in a dose-dependent manner. In addition, IM-412 inhibited TGF-beta-induced expression of the fibrotic markers alpha-smooth muscle actin (alpha-SMA) and fibronectin, and collagen accumulation in CCD-18Lu human normal lung fibroblasts without cell cytotoxicity. IM-412 decreased Smad2 and -3 phosphorylation as well as JNK and ERK activity. Moreover, expression levels of TGF-beta receptor I (TbetaRI) and receptor II (TbetaRII) were down-regulated by IM-412 in a dose-dependent manner. Thus, our findings indicate that the small molecule IM-412 attenuated TGF-beta-mediated fibroblast differentiation through inhibition of the overall TGF-beta response and may be a promising novel agent for the treatment of pathological fibrotic conditions.
Insights
A new compound, IM-412, effectively inhibits transforming growth factor beta (TGF-beta) signaling. This discovery offers a promising new avenue for developing anti-fibrotic drugs to treat pulmonary fibrosis and other fibrotic diseases.
Area of Science:
- Pharmacology
- Cell Biology
- Pulmonary Medicine
Background:
- Pulmonary fibrosis involves progressive lung scarring with no current standard treatment.
- Transforming growth factor beta (TGF-beta) is a key mediator driving fibrotic processes.
- Developing effective anti-fibrotic drugs is a critical unmet medical need.
Purpose of the Study:
- To identify novel small molecules capable of inhibiting TGF-beta signaling pathways.
- To evaluate the anti-fibrotic potential of identified compounds in cellular models.
Main Methods:
- Utilized a high-throughput cell-based chemical screen with engineered HEK293 reporter cells.
- Tested 8000 compounds, including natural products and synthetic molecules.
- Assessed the impact of candidate compounds on TGF-beta-induced fibrotic marker expression and signaling pathways.
Main Results:
- Identified 3-(2-chlorobenzyl)-1,7-dimethyl-1H-imidazo[2,1-f]purine-2,4(3H,8H)-dione (IM-412) as a potent inhibitor of TGF-beta reporter activity.
- IM-412 demonstrated dose-dependent inhibition of TGF-beta-induced alpha-SMA, fibronectin, and collagen production in lung fibroblasts without cytotoxicity.
- The compound suppressed Smad2/3 phosphorylation, JNK/ERK activity, and downregulated TGF-beta receptors I and II.
Conclusions:
- IM-412 effectively attenuates TGF-beta-mediated fibroblast differentiation by inhibiting the overall TGF-beta response.
- This small molecule represents a promising therapeutic candidate for treating pathological fibrotic conditions, including pulmonary fibrosis.
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