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Updated: Feb 14, 2026

Molecular Analysis of Endothelial-mesenchymal Transition Induced by Transforming Growth Factor-β Signaling
Published on: August 3, 2018
Heterobicyclic inhibitors of transforming growth factor beta receptor I (TGFβRI)
Lalgudi S Harikrishnan1, Jayakumar Warrier2, Andrew J Tebben3
1Department of Chemistry, Bristol-Myers Squibb Company, P.O. Box 4000, Princeton, NJ, USA.
Abstract:
The TGFβ-TGFβR signaling pathway has been reported to play a protective role in the later stages of tumorigenesis via increasing immunosuppressive Treg cells and facilitating the epithelial to mesenchymal transition (EMT). Therefore, inhibition of TGFβR has the potential to enhance antitumor immunity. Herein we disclose the identification and optimization of novel heterobicyclic inhibitors of TGFβRI that demonstrate potent inhibition of SMAD phosphorylation. Application of structure-based drug design to the novel pyrrolotriazine chemotype resulted in improved binding affinity (Ki apparent = 0.14 nM), long residence time (T1/2 > 120 min) and significantly improved potency in the PSMAD cellular assay (IC50 = 24 nM). Several analogs inhibited phosphorylation of SMAD both in vitro and in vivo. Additionally, inhibition of TGFβ-stimulated phospho-SMAD was observed in primary human T cells.
Insights
Novel inhibitors targeting the TGFβ receptor (TGFβR) pathway were developed to boost anti-tumor immunity. These compounds effectively inhibit SMAD phosphorylation, showing promise for cancer treatment.
Area of Science:
- Oncology
- Immunology
- Medicinal Chemistry
Background:
- The TGFβ-TGFβR signaling pathway is implicated in tumor progression by promoting immunosuppression and epithelial-mesenchymal transition (EMT).
- Inhibiting TGFβR presents a therapeutic strategy to enhance anti-tumor immune responses.
Purpose of the Study:
- To identify and optimize novel small molecule inhibitors targeting TGFβ receptor I (TGFβRI).
- To evaluate the efficacy of these inhibitors in blocking SMAD phosphorylation and their potential in cancer immunotherapy.
Main Methods:
- Structure-based drug design was employed to optimize a novel pyrrolotriazine chemotype.
- In vitro assays were used to determine binding affinity (Ki), residence time (T1/2), and cellular potency (IC50) against SMAD phosphorylation.
- In vivo studies and experiments with primary human T cells assessed the inhibition of TGFβ-stimulated phospho-SMAD.
Main Results:
- Optimized pyrrolotriazine inhibitors demonstrated high binding affinity (Ki apparent = 0.14 nM) and long residence time (T1/2 > 120 min).
- Potent inhibition of SMAD phosphorylation was achieved with an IC50 of 24 nM in cellular assays.
- Several analogs effectively inhibited SMAD phosphorylation both in vitro and in vivo, and in primary human T cells.
Conclusions:
- Novel heterobicyclic inhibitors of TGFβRI were successfully identified and optimized.
- These inhibitors show significant potential for enhancing anti-tumor immunity by blocking the TGFβ-SMAD signaling pathway.
- The developed compounds represent promising candidates for further development in cancer immunotherapy.
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