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Celecoxib Treatment Alters p53 and MDM2 Expression via COX-2 Crosstalk in A549 Cells
Mehdi Gharghabi1, Farhang Rezaei1, Fereshteh Mir Mohammadrezaei2
1Department of Toxicology-Pharmacology, School of Pharmacy, Tehran University of Medical Sciences, Tehran, Iran.
Abstract:
Cyclooxygenase-2 (COX-2) has a pivotal role in the pathogenesis of the lung cancer. It is known that COX-2 negatively regulates the activity of a number of tumor suppressors, including p53. Consequently, inhibition of COX-2 signaling is anticipated to be a promising approach to stabilize p53 functionality. In this regard, we investigated the effect of COX-2 signaling blockade on p53 and COX-2expression in A549 cells. Cell viability was assessed using MTT and protein expression was measured using Western Blot assay. Results revealed that Celecoxib dose-dependently induced growth inhibition within 24 h. However, prolonged exposure to the drug up to 48 h led to increase cell viability compared to the corresponding control. Western blot analysis demonstrated that Celecoxib could augment p53 expression within 24 h, independently of COX-2 inhibition. In contrast, Celecoxib treatment not only returned p53 to the control level, but also strikingly induced COX-2 expression within 48 h. Of further relevance, Celecoxib exposure could significantly result in MDM2 elevation at 48 h. These findings represent p53 as a molecular target being interconnected with COX-2 signaling axis upon Celecoxib treatment. Moreover, our data point toward the possibility that Celecoxib treatment may not be a proper therapeutic strategy in lung cancer cells owing to its potential role in the activation of oncogenes, including COX-2 and MDM2 which seemingly confers a chemoresistance circumstance to the cell. Consequently, these results underscore intensive preclinical assessment prior to applying COX-2 inhibitors in the treatment of lung tumors.
Insights
Celecoxib initially inhibits lung cancer cell growth and increases p53 expression. However, prolonged use paradoxically upregulates oncogenes like COX-2 and MDM2, potentially causing chemoresistance.
Area of Science:
- Oncology
- Molecular Biology
Background:
- Cyclooxygenase-2 (COX-2) plays a key role in lung cancer development.
- COX-2 negatively regulates tumor suppressors like p53.
- Inhibiting COX-2 is a potential strategy to stabilize p53.
Purpose of the Study:
- To investigate the effects of COX-2 inhibition on p53 and COX-2 expression in A549 lung cancer cells.
- To evaluate Celecoxib's impact on cell viability and protein expression.
Main Methods:
- Cell viability assessed using MTT assay.
- Protein expression analyzed via Western Blot.
- A549 cells treated with Celecoxib.
Main Results:
- Celecoxib induced dose-dependent growth inhibition within 24 hours.
- Prolonged Celecoxib exposure (48 hours) increased cell viability.
- Celecoxib augmented p53 expression within 24 hours, independent of COX-2 inhibition.
- Celecoxib treatment increased COX-2 and MDM2 expression at 48 hours.
- p53 expression returned to control levels with prolonged Celecoxib exposure.
Conclusions:
- Celecoxib's effects on p53 and COX-2 are complex and time-dependent.
- Celecoxib may activate oncogenes (COX-2, MDM2), potentially leading to chemoresistance in lung cancer.
- Further preclinical evaluation is crucial before using COX-2 inhibitors for lung cancer treatment.
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