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Published on: May 14, 2016
Amentoflavone triggers cell cycle G2/M arrest by interfering with microtubule dynamics and inducing DNA damage in
Jinli Zhang1, Aiguo Li1, Hanjing Sun2
1Guangzhou Institute of Traumatic Surgery, Guangzhou Red Cross Hospital, Jinan University, Guangzhou, Guangdong 510220, P.R. China.
Abstract:
Ovarian cancer is the seventh most common cancer and the second most common cause of cancer-associated mortality among gynecological malignancies worldwide. The combination of antimitotic agents, such as taxanes, and the DNA-damaging agents, such as platinum compounds, is the standard treatment for ovarian cancer. However, due to chemoresistance, development of novel therapeutic strategies for the treatment of ovarian cancer remains critical. Amentoflavone (AMF) is a biflavonoid derived from the extracts of Selaginella tamariscina, which has been used as a Chinese herb for thousands of years. A previous study demonstrated that AMF inhibits angiogenesis of endothelial cells and induces apoptosis in hypertrophic scar fibroblasts. In order to check the influence of AMF on cell proliferation, the effects of AMF on cell cycle and DNA damage were measured by cell viability, flow cytometry, immunofluorescence and western blotting assays in SKOV3 cells, an ovarian cell line. In the present study, treatment with AMF inhibited ovarian cell proliferation, increased P21 expression, decreased CDK1/2 expression, interrupted the balance of microtubule dynamics and arrested cells at the G2 phase. Furthermore, treatment with AMF increased the expression levels of phospho-Histone H2AX (γ-H2AX; a variant of histone 2A, that belongs to the histone 2A family member X) and the DNA repair protein RAD51 homolog 1 (Rad51), indicating the occurrence of DNA damage since γ-H2AX and Rad51 are both key markers of DNA damage. Consistent with previous findings, the results of the present study suggest that AMF is a potential therapeutic agent for the treatment of ovarian cancer. In addition, the effects of AMF on cell cycle arrest and DNA damage induction may be the molecular mechanisms by which AMF might exert its potential therapeutic benefits in ovarian cancer.
Insights
Amentoflavone (AMF) inhibits ovarian cancer cell proliferation by arresting the cell cycle and inducing DNA damage. This natural compound shows potential as a novel therapeutic agent for ovarian cancer treatment.
Area of Science:
- Oncology
- Pharmacology
- Molecular Biology
Background:
- Ovarian cancer is a leading cause of gynecological cancer mortality worldwide.
- Current treatments combining antimitotic and DNA-damaging agents face chemoresistance challenges.
- Novel therapeutic strategies are crucial for effective ovarian cancer treatment.
Purpose of the Study:
- To investigate the effects of Amentoflavone (AMF) on ovarian cancer cell proliferation, cell cycle, and DNA damage.
- To explore the potential of AMF as a therapeutic agent for ovarian cancer.
Main Methods:
- Cell viability assays, flow cytometry, immunofluorescence, and western blotting were used.
- Experiments were conducted on the SKOV3 ovarian cancer cell line.
- Assessed cell cycle arrest, microtubule dynamics, and DNA damage markers.
Main Results:
- AMF inhibited ovarian cancer cell proliferation and arrested cells at the G2 phase.
- AMF altered the expression of cell cycle regulators (increased P21, decreased CDK1/2) and disrupted microtubule dynamics.
- AMF treatment increased markers of DNA damage, including phospho-Histone H2AX (γ-H2AX) and RAD51 homolog 1 (Rad51).
Conclusions:
- Amentoflavone demonstrates anti-proliferative effects on ovarian cancer cells.
- AMF-induced cell cycle arrest and DNA damage are potential mechanisms for its therapeutic benefits.
- AMF is a promising candidate for novel ovarian cancer therapies.
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