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Published on: October 27, 2020
Syntenin regulates TGF-β1-induced Smad activation and the epithelial-to-mesenchymal transition by inhibiting
1Department of Biochemistry, College of Natural Sciences, Kangwon National University, Chuncheon, Gangwon-Do, Republic of Korea.
Abstract:
Syntenin, a tandem PDZ domain containing scaffold protein, functions as a positive regulator of cancer cell progression in several human cancers. We report here that syntenin positively regulates transforming growth factor (TGF)-β1-mediated Smad activation and the epithelial-to-mesenchymal transition (EMT) by preventing caveolin-1-mediated internalization of TGF-β type I receptor (TβRI). Knockdown of syntenin suppressed TGF-β1-mediated cell migration, transcriptional responses and Smad2/3 activation in various types of cells; however, overexpression of syntenin facilitated TGF-β1-mediated responses. In particular, syntenin knockdown abolished both the basal and TGF-β1-mediated repression of E-cadherin expression, as well as induction of vimentin expression along with Snail and Slug upregulation; thus, blocking the TGF-β1-induced EMT in A549 cells. In contrast, overexpression of syntenin exhibited the opposite effect. Knockdown of syntenin-induced ubiquitination and degradation of TβRI, but not TGF-β type II receptor, leading to decreased TβRI expression at the plasma membrane. Syntenin associated with TβRI at its C-terminal domain and a syntenin mutant lacking C-terminal domain failed to increase TGF-β1-induced responses. Biochemical analyzes revealed that syntenin inhibited the interaction between caveolin-1 and TβRI and knockdown of syntenin induced a massive internalization of TβRI and caveolin-1 from lipid rafts, indicating that syntenin may increase TGF-β signaling by inhibiting caveolin-1-dependent internalization of TβRI. Moreover, a positive correlation between syntenin expression and phospho-Smad2 levels is observed in human lung tumors. Taken together, these findings demonstrate that syntenin may act as an important positive regulator of TGF-β signaling by regulating caveolin-1-mediated internalization of TβRI; thus, providing a novel function for syntenin that is linked to cancer progression.
Insights
Syntenin protein regulates cancer progression by controlling transforming growth factor-beta 1 (TGF-β1) signaling. It prevents receptor internalization, enhancing Smad activation and epithelial-to-mesenchymal transition (EMT).
Area of Science:
- Molecular Biology
- Cell Biology
- Cancer Research
Background:
- Syntenin is a scaffold protein implicated in cancer progression.
- Transforming growth factor-beta 1 (TGF-β1) signaling pathways are crucial in cell processes and cancer.
- The epithelial-to-mesenchymal transition (EMT) is a key process in cancer metastasis.
Purpose of the Study:
- To investigate the role of syntenin in regulating TGF-β1 signaling.
- To determine syntenin's mechanism in controlling TGF-β1-mediated EMT.
- To explore the link between syntenin, TGF-β1 signaling, and cancer progression.
Main Methods:
- Syntenin knockdown and overexpression experiments in various cell types.
- Analysis of Smad2/3 activation, E-cadherin and vimentin expression, and Snail/Slug levels.
- Biochemical assays to study protein-protein interactions (Syntenin, TβRI, caveolin-1) and receptor internalization.
- Immunohistochemical analysis of syntenin and phospho-Smad2 in human lung tumors.
Main Results:
- Syntenin knockdown suppressed TGF-β1-mediated cell migration, Smad activation, and EMT.
- Syntenin prevents caveolin-1-mediated internalization of the TGF-β type I receptor (TβRI), decreasing its degradation.
- Syntenin directly interacts with TβRI, inhibiting its association with caveolin-1 and subsequent internalization.
- Elevated syntenin expression correlates with increased phospho-Smad2 levels in human lung tumors.
Conclusions:
- Syntenin acts as a positive regulator of TGF-β1 signaling by inhibiting TβRI internalization.
- This mechanism enhances TGF-β1-induced EMT and contributes to cancer progression.
- Syntenin represents a potential therapeutic target for cancers driven by TGF-β1 signaling.
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