PHA-665752's Antigrowth and Proapoptotic Effects on HSC-3 Human Oral Cancer Cells
Anil Kumar Yadav1,2, Saini Wang1, Young-Min Shin3
1Department of Molecular Medicine, College of Medicine, Keimyung University, 1095 Dalgubeoldaero, Dalseo-gu, Daegu 42601, Republic of Korea.
Abstract:
c-Met is a tyrosine-kinase receptor, and its aberrant activation plays critical roles in tumorigenesis, invasion, and metastatic spread in many human tumors. PHA-665752 (PHA) is an inhibitor of c-Met and has antitumor effects on many hematological malignancies and solid cancers. However, the activation and expression of c-Met and its role and the antitumor effect of PHA on human oral squamous cell carcinoma (OSCC) cells remain unclear. Here, we investigated the activation and expression of c-Met and the effects of PHA on the growth of a highly tumorigenic HSC-3 human OSCC cell line with high c-Met phosphorylation and expression. Of note, c-Met was highly expressed and phosphorylated on Y1234/1235 in HSC-3 cells, and PHA treatment significantly suppressed the growth and induced apoptosis of these cells. Moreover, PHA that inhibited the phosphorylation (activation) of c-Met further caused the reduced phosphorylation and expression levels of Src, protein kinase B (PKB), mammalian target of rapamycin (mTtor), and myeloid cell leukemia-1 (Mcl-1) in HSC-3 cells. In addition, the antiangiogenic property of PHA in HSC-3 cells was shown, as evidenced by the drug's suppressive effect on the expression of hypoxia-inducible factor-1α (HIF-1α), a critical tumor angiogenic transcription factor. Importantly, genetic ablation of c-Met caused the reduced growth of HSC-3 cells and decreased Src phosphorylation and HIF-1α expression. Together, these results demonstrate that c-Met is highly activated in HSC-3 human oral cancer cells, and PHA exhibits strong antigrowth, proapoptotic, and antiangiogenic effects on these cells, which are mediated through regulation of the phosphorylation and expression of multiple targets, including c-Met, Src, PKB, mTOR, Mcl-1, and HIF-1α.
Insights
PHA-665752 (PHA) effectively inhibits c-Met activity in oral squamous cell carcinoma (OSCC) cells. This targeted therapy suppresses tumor growth, induces apoptosis, and reduces angiogenesis by modulating key signaling pathways.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Research
Background:
- Aberrant c-Met activation is crucial in tumor progression, invasion, and metastasis.
- PHA-665752 (PHA) is a known c-Met inhibitor with demonstrated antitumor effects.
- The role of c-Met and PHA's efficacy in oral squamous cell carcinoma (OSCC) remain under investigation.
Purpose of the Study:
- To investigate c-Met activation and expression in human OSCC cells.
- To evaluate the antitumor effects of PHA on OSCC cell growth.
- To elucidate the molecular mechanisms underlying PHA's action in OSCC.
Main Methods:
- Utilized the highly tumorigenic HSC-3 human OSCC cell line.
- Assessed c-Met expression and phosphorylation (Y1234/1235).
- Administered PHA and analyzed downstream signaling pathways (Src, PKB, mTOR, Mcl-1) and angiogenesis markers (HIF-1α).
- Performed genetic ablation of c-Met for validation.
Main Results:
- HSC-3 cells exhibit high c-Met expression and phosphorylation.
- PHA treatment significantly inhibited HSC-3 cell growth and induced apoptosis.
- PHA suppressed phosphorylation/expression of Src, PKB, mTOR, and Mcl-1.
- PHA reduced HIF-1α expression, indicating antiangiogenic effects.
- Genetic c-Met ablation confirmed its role in HSC-3 cell growth and HIF-1α expression.
Conclusions:
- c-Met is highly activated in human OSCC cells (HSC-3 line).
- PHA demonstrates potent anti-growth, pro-apoptotic, and anti-angiogenic effects on OSCC.
- PHA's efficacy is mediated through the modulation of c-Met, Src, PKB, mTOR, Mcl-1, and HIF-1α signaling.
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