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Anticancer effects of tangeretin associated with reactive oxygen species generation, mitochondrial dysfunction and
Seung-Hyeon Ahn1, Zeeshan Ahmad Bhutta1, Hwayoung Na1
1Laboratory of Biochemistry and Immunology, College of Veterinary Medicine, Chungbuk National University, Cheongju, Chungcheongbuk 28644, Republic of Korea.
Abstract:
Cervical cancer is the fourth most common cancer and the fourth leading cause of cancer‑related mortality among women worldwide. Tangeretin (TAN), a polymethoxylated flavonoid derived from citrus fruit peel, exhibits relatively high structural stability due to its methoxy groups and exerts anticancer effects in various malignancies, including lung, liver and breast cancer. However, to the best of our knowledge, the anticancer effects of TAN in cervical cancer remain insufficiently explored. The present study investigated the mechanisms underlying the anticancer effects of TAN on the CaSki cervical cancer cell line. Cell viability was evaluated using the EZ‑Cytox cell viability assay. The colony formation and cell cycle arrest assays demonstrated that TAN inhibited cell proliferation by inducing G1 phase arrest. The wound‑healing and Transwell migration assays demonstrated that TAN could reduce the migratory ability of CaSki cells, and the Annexin V/propidium iodide staining assay revealed that TAN increased the apoptotic cell population. Mitochondrial reactive oxygen species (ROS) were identified using MitoSOX™ staining and the mitochondrial membrane potential (MMP) was detected using JC‑1 staining. The findings of these assays suggested that TAN could increase mitochondrial ROS levels and decrease mitochondrial MMP in CaSki cells. Western blot analysis showed that TAN upregulated the protein expression levels of E‑cadherin and Bax. In addition, TAN restored the tumor suppressor protein p53. Collectively, these findings suggested that may exhibit anticancer activity in CaSki cells.
Insights
Tangeretin (TAN), a citrus flavonoid, shows anticancer effects against cervical cancer cells by inhibiting proliferation and migration. It induces cell cycle arrest and apoptosis, offering potential for new cervical cancer treatments.
Area of Science:
- Oncology
- Pharmacology
- Natural Products
Background:
- Cervical cancer is a significant global health issue.
- Tangeretin (TAN), a flavonoid from citrus peels, has shown anticancer properties in other cancers.
- The effects of TAN on cervical cancer are not well understood.
Purpose of the Study:
- To investigate the anticancer mechanisms of Tangeretin (TAN) in the CaSki cervical cancer cell line.
- To evaluate TAN's impact on cell viability, proliferation, migration, and apoptosis.
Main Methods:
- Cell viability assay (EZ-Cytox)
- Colony formation and cell cycle arrest assays
- Wound-healing and Transwell migration assays
- Apoptosis assay (Annexin V/propidium iodide)
- Mitochondrial ROS and membrane potential assays (MitoSOX™, JC-1)
- Western blot analysis for protein expression (E-cadherin, Bax, p53)
Main Results:
- TAN inhibited CaSki cell proliferation by inducing G1 phase arrest.
- TAN reduced CaSki cell migration and increased apoptosis.
- TAN elevated mitochondrial reactive oxygen species (ROS) and decreased mitochondrial membrane potential (MMP).
- TAN upregulated E-cadherin and Bax, and restored p53 protein levels.
Conclusions:
- Tangeretin (TAN) exhibits significant anticancer activity against cervical cancer cells (CaSki).
- TAN exerts its effects by inducing cell cycle arrest, apoptosis, and inhibiting migration.
- TAN's mechanisms involve modulation of mitochondrial function and key protein expression, suggesting its potential as a therapeutic agent.
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