Evaluation of the Molecular Effects of the Anticancer Adjuvant Valproic Acid on HEK293T Cells
Year 2024,
Volume: 14 Issue: 3, 154 - 160, 19.12.2024
Hazal Banu Olgun Celebioglu
,
Yeliz Ekici
,
Abdullah Yılmaz
,
Feyza Nur Tuncer
Abstract
Objective: Valproic acid (VPA) can induce apoptosis while inhibiting proliferation in various cancer cells. This study adopted a novel strategy for investigating the molecular effects of VPA on non-cancerous cells. Building upon our previous work, which examined the effects of VPA in PANC-1 cells, we now turn our attention to HEK293T cells to determine the effect of VPA in non-cancerous cells.
Materials and Methods: HEK293T cells were treated with 2.5 and 5-mM VPA. Flow cytometry measurements were performed on the 24th, 48th, 72nd, and 96th h. Assays for apoptosis and proliferation were conducted using annexin V/ propidium iodide (PI) staining and carboxyfluorescein-succinimidyl ester (CFSE), respectively.
Results: No statistical significance was detected between the two different doses of VPA-treated cells and the controls at any time point. While early apoptosis values remained stable until 72 h in all groups, an increase was monitored in cells subjected to VPA for 96 h.
Conclusion: Preliminary results indicated no proliferative effect of VPA treatment. However, it may induce apoptosis in long-term incubations. Nevertheless, additional doses of VPA at increased concentrations should be administered to explore cytotoxic levels and their impact on proliferation and apoptosis.
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Year 2024,
Volume: 14 Issue: 3, 154 - 160, 19.12.2024
Hazal Banu Olgun Celebioglu
,
Yeliz Ekici
,
Abdullah Yılmaz
,
Feyza Nur Tuncer
References
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- 2. Williams GH, Stoeber K. The cell cycle and cancer. J Pathol 2012; 226(2): 352-64. google scholar
- 3. Perri F, Longo F, Giuliano M, Sabbatino F, Favia G, Ionna F, et al. Epigenetic control of gene expression: Potential implications for cancer treatment. Crit Rev Oncol Hematol 2017; 111: 166-72. google scholar
- 4. Chen QW, Zhu XY, Li YY, Meng ZQ. Epigenetic regulation and cancer (review). Oncol Rep 2014; 31(2): 523-32. google scholar
- 5. Cooper GM. The Cell: A molecular approach. 2nd edition. Sunderland (MA): Sinauer Associates; 2000. google scholar
- 6. Yagi Y, Fushida S, Harada S, Kinoshita J, Makino I, Oyama K, et al. Effects of valproic acid on the cell cycle and apoptosis through acetylation of histone and tubulin in a scirrhous gastric cancer cell line. J Exp Clin Cancer Res 2010; 29(1): 149. google scholar
- 7. Bruserud O, Tsykunova G, Hernandez-Valladares M, Reikvam H, Tvedt THA. Therapeutic use of valproic acid and all-trans retinoic acid in Acute Myeloid Leukemia-literature review and discussion of possible use in relapse after allogeneic stem cell transplantation. Pharmaceuticals (Basel) 2021; 14(5): 423. google scholar
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- 14. Raz S, Sheban D, Gonen N, Stark M, Berman B, Assaraf YG. Severe hypoxia induces complete antifolate resistance in carcinoma cells due to cell cycle arrest. Cell Death Dis 2014; 5(2): e1067. google scholar
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