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Updated: Jun 5, 2026

Induction of Mesenchymal-Epithelial Transitions in Sarcoma Cells
Published on: April 7, 2017
c-Met-induced epithelial carcinogenesis is initiated by the serine protease matriptase
R Szabo1, A L Rasmussen, A B Moyer
1Oral and Pharyngeal Cancer Branch, NIDCR, NIH, Bethesda, MD 20892, USA.
Abstract:
The progression and negative outcome of a variety of human carcinomas are intimately associated with aberrant activity of the c-Met oncogene. The underlying cause of this dysregulation, however, remains a subject of discussion, as the majority of cancer patients do not present with activating mutations in c-Met receptor itself. In this study, we show that the oncogenic protease matriptase is ubiquitously co-expressed with the c-Met in human squamous cell carcinomas and amplifies migratory and proliferative responses of primary epithelial cells to the cognate ligand for c-Met, pro-hepatocyte growth factor/scatter factor (proHGF/SF), through c-Met and Gab1 signaling. Furthermore, the selective genetic ablation of c-Met from matriptase-expressing keratinocytes completely negates the oncogenic potential of matriptase. In addition, matriptase-dependent carcinoma formation could be blocked by the pharmacological inhibition of the Akt-mammalian target of Rapamycin (mTor) pathway. Our data identify matriptase as an initiator of c-Met-Akt-mTor-dependent signaling axis in tumors and reveal mTor activation as an essential component of matriptase/c-Met-induced carcinogenesis. The study provides a specific example of how epithelial transformation can be promoted by epigenetic acquisition of the capacity to convert a widely available paracrine growth factor precursor to its signaling competent state.
Insights
The oncogenic protease matriptase initiates c-Met signaling in human carcinomas, driving tumor growth. Inhibiting the Akt-mammalian target of Rapamycin (mTor) pathway blocks this matriptase-dependent carcinogenesis.
Area of Science:
- Oncology
- Molecular Biology
- Cell Biology
Background:
- Aberrant c-Met oncogene activity is linked to human carcinoma progression, but the causes of its dysregulation are unclear.
- Most cancer patients lack activating mutations in the c-Met receptor itself, suggesting alternative regulatory mechanisms.
Purpose of the Study:
- To investigate the role of the oncogenic protease matriptase in c-Met signaling and human carcinogenesis.
- To identify therapeutic targets for matriptase/c-Met-induced tumors.
Main Methods:
- Examined co-expression of matriptase and c-Met in human squamous cell carcinomas.
- Utilized genetic ablation of c-Met in matriptase-expressing keratinocytes.
- Assessed the impact of pharmacological inhibition of the Akt-mammalian target of Rapamycin (mTor) pathway.
Main Results:
- Matriptase amplifies epithelial cell responses to pro-hepatocyte growth factor/scatter factor (proHGF/SF) via c-Met and Gab1 signaling.
- Genetic ablation of c-Met negates the oncogenic potential of matriptase.
- Matriptase-driven carcinoma formation is blocked by inhibiting the Akt-mTor pathway.
Conclusions:
- Matriptase initiates a c-Met-Akt-mTor signaling axis in tumors, essential for carcinogenesis.
- mTor activation is a critical component of matriptase/c-Met-induced carcinogenesis.
- Epithelial transformation can be promoted by epigenetic changes enabling growth factor precursor activation.
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