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Updated: Jan 2, 2026

Studying TGF-β Signaling and TGF-β-induced Epithelial-to-mesenchymal Transition in Breast Cancer and Normal Cells
Published on: October 27, 2020
A TGF-β-MTA1-SOX4-EZH2 signaling axis drives epithelial-mesenchymal transition in tumor metastasis
Lina Li1, Jian Liu2, Hongsheng Xue3
1Medical Research Center, Beijing Chao-Yang Hospital, Capital Medical University, Beijing, 100020, China.
Abstract:
MTA1, SOX4, EZH2, and TGF-β are all potent inducers of epithelial-mesenchymal transition (EMT) in cancer; however, the signaling relationship among these molecules in EMT is poorly understood. Here, we investigated the function of MTA1 in cancer cells and demonstrated that MTA1 overexpression efficiently activates EMT. This activation resulted in a significant increase in the migratory and invasive properties of three different cancer cell lines through a common mechanism involving SOX4 activation, screened from a gene expression profiling analysis. We showed that both SOX4 and MTA1 are induced by TGF-β and both are indispensable for TGF-β-mediated EMT. Further investigation identified that MTA1 acts upstream of SOX4 in the TGF-β pathway, emphasizing a TGF-β-MTA1-SOX4 signaling axis in EMT induction. The histone methyltransferase EZH2, a component of the polycomb (PcG) repressive complex 2 (PRC2), was identified as a critical responsive gene of the TGF-β-MTA1-SOX4 signaling in three different epithelial cancer cell lines, suggesting that this signaling acts broadly in cancer cells in vitro. The MTA1-SOX4-EZH2 signaling cascade was further verified in TCGA pan-cancer patient samples and in a colon cancer cDNA microarray, and activation of genes in this signaling pathway predicted an unfavorable prognosis in colon cancer patients. Collectively, our data uncover a SOX4-dependent EMT-inducing mechanism underlying MTA1-driven cancer metastasis and suggest a widespread TGF-β-MTA1-SOX4-EZH2 signaling axis that drives EMT in various cancers. We propose that this signaling may be used as a common therapeutic target to control epithelial cancer metastasis.
Insights
This study reveals a new signaling pathway involving MTA1, SOX4, and EZH2 that drives cancer metastasis. This TGF-β-MTA1-SOX4-EZH2 axis promotes epithelial-mesenchymal transition (EMT) and may be a therapeutic target.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Signaling
Background:
- Epithelial-mesenchymal transition (EMT) is crucial for cancer metastasis.
- Key inducers of EMT include MTA1, SOX4, EZH2, and TGF-β.
- The precise signaling interactions among these EMT inducers are not fully understood.
Purpose of the Study:
- To investigate the role of MTA1 in cancer cell EMT.
- To elucidate the signaling relationship between MTA1, SOX4, EZH2, and TGF-β in EMT.
- To identify potential therapeutic targets for controlling epithelial cancer metastasis.
Main Methods:
- Gene expression profiling to identify key genes in MTA1-induced EMT.
- TGF-β stimulation assays in cancer cell lines.
- Western blotting and quantitative PCR to analyze protein and gene expression.
- Analysis of TCGA pan-cancer patient samples and colon cancer microarrays.
Main Results:
- MTA1 overexpression strongly induces EMT, enhancing cancer cell migration and invasion.
- A TGF-β-MTA1-SOX4 signaling axis was identified, where MTA1 acts upstream of SOX4.
- EZH2 was identified as a downstream effector of the TGF-β-MTA1-SOX4 pathway, crucial for EMT.
- Activation of this signaling cascade correlates with poor prognosis in colon cancer patients.
Conclusions:
- MTA1 drives cancer metastasis through a SOX4-dependent EMT mechanism.
- A conserved TGF-β-MTA1-SOX4-EZH2 signaling axis promotes EMT across various cancers.
- This signaling pathway represents a potential common therapeutic target for epithelial cancer metastasis.
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