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Published on: August 21, 2013
Inhibition of CAL27 Oral Squamous Carcinoma Cell by Targeting Hedgehog Pathway With Vismodegib or Itraconazole
Raíza Dias Freitas1,2, Rosane Borges Dias1,3, Manuela Torres Andion Vidal1,2
1Gonçalo Moniz Institute, Oswaldo Cruz Foundation (IGM-FIOCRUZ/BA), Salvador, Brazil.
Abstract:
Oral Squamous Cell Carcinoma (OSCC) presents an important challenge for the health systems worldwide. Thus, unraveling the biological mechanisms involved in OSCC pathogenesis is essential to the discovery of new drugs with anticancer potential. The Hedgehog (HH) pathway has shown promising results as a therapeutic target both in vitro and in vivo. This study aimed to investigate the effects of vismodegib and itraconazole on the expression of Hedgehog (HH) genes (PTCH1, SMO, and GLI1), cell cycle and cell death in OSCC cells. Alamar Blue assay was used to assess the cytotoxicity of vismodegib and itraconazole in a panel of oral cancer cell lines, including CAL27. The expression of HH signaling components after treatment with vismodegib and itraconazole, at concentrations of 25 or 50 μg/ml was evaluated by qPCR. Cell cycle and apoptosis were evaluated by flow cytometry after 72 h treatment with 50 μg/ml of vismodegib or itraconazole. HH signaling was activated in OSCC cell lines CAL27, SCC4, SCC9, and HSC3. Vismodegib and itraconazole significantly reduced CAL27 cell viability after 48 h of treatment. Gene expression of PTCH1, SMO, and GLI1 decreased in response to 24 h of treatment with vismodegib or itraconazole. Furthermore, CAL27 cells exhibited alterations in morphology, cell size, and cellular granularity. An increase in the DNA fragmentation was observed after treatment and both inhibitors induced apoptosis after 72 h. In conclusion, SMO inhibitors vismodegib and itraconazole demonstrably reduced the expression of HH genes in CAL27 OSCC cell line. In addition, treatment with vismodegib and itraconazole reduced cellular viability and altered the morphology of CAL27 cells, and also induced apoptosis.
Insights
Vismodegib and itraconazole, Hedgehog pathway inhibitors, reduced oral squamous cell carcinoma (OSCC) cell viability and induced apoptosis. These drugs decreased Hedgehog gene expression (PTCH1, SMO, GLI1) in OSCC cells.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Oral Squamous Cell Carcinoma (OSCC) poses a global health challenge, necessitating novel therapeutic strategies.
- The Hedgehog (HH) signaling pathway is implicated in OSCC pathogenesis and represents a promising therapeutic target.
- Understanding HH pathway modulation is crucial for developing effective anticancer drugs.
Purpose of the Study:
- To investigate the impact of vismodegib and itraconazole on Hedgehog pathway genes (PTCH1, SMO, GLI1) in OSCC cells.
- To evaluate the effects of these inhibitors on cell cycle progression and cell death in OSCC.
- To assess the potential of vismodegib and itraconazole as therapeutic agents for OSCC.
Main Methods:
- Cytotoxicity was assessed using the Alamar Blue assay in various OSCC cell lines, including CAL27.
- Quantitative Polymerase Chain Reaction (qPCR) was employed to measure the expression of HH signaling components.
- Flow cytometry was utilized to analyze cell cycle distribution and apoptosis induction.
Main Results:
- Vismodegib and itraconazole significantly reduced the viability of CAL27 OSCC cells.
- Treatment with these inhibitors led to a decrease in the gene expression of PTCH1, SMO, and GLI1.
- Both vismodegib and itraconazole induced apoptosis and altered cellular morphology in CAL27 cells.
Conclusions:
- Vismodegib and itraconazole effectively inhibit the SMO component of the Hedgehog pathway in OSCC.
- These drugs demonstrate anticancer potential by reducing cell viability and inducing apoptosis in OSCC.
- Further research into SMO inhibitors is warranted for OSCC treatment development.
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