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Trichosanthin inhibits cervical cancer by regulating oxidative stress-induced apoptosis
Chenglu Zhu1, Cuilan Zhang1, Xiaoming Cui1
1Department of Gynaecology and Obstetrics, Dongtai Hospital of Traditional Chinese Medicine, Dongtai, Yancheng City, Jiangsu Province, 224200, China.
Abstract:
Based on many studies, trichosanthin (TCS) has an antiviral effect that regulates immune response, and targets cancer cells to exert broad-spectrum anti-tumor pharmacological activities. It is speculated that TCS may be a potential natural active drug for preventing as well as treating cervical cancer. But the clearer impact along with underlying TCS mechanism on cervical cancer are still unclear. The purpose of this study is to investigate the function and potential mechanism of TCS in cervical cancer. We measured the viability of cervical cancer cell lines (HeLa & caski cells) using CCK-8 analysis, detected cell proliferation efficiency through Ki-67 staining, analyzed cell apoptosis rate via flow cytometry as well as annexin V-FITC/PI double staining, performed apoptosis-related protein expression through western blotting, evaluated cell migration along with invasion by wound as well as transwell assays, carried out MMP via JC-1 and Rh123 fluorescent probes, as well as detected intracellular ATP and ROS levels by flow cytometry, respectively, to evaluate the effects of TCS. We found that TCS inhibited viability along with proliferation, induced apoptosis, as well as inhibited HeLa & caski cell migration along with invasion in a time- and dose-dependent manner. Additionally, TCS also reduced MMP, and the production of adenosine triphosphate, as well as induced the increase of intracellular reactive oxygen species in cancer cell lines. In accordance with the present studies, TCS inhibits HeLa & caski cell proliferation along with migration but promotes their apoptosis, which may be mediated by regulating oxidative stress.
Insights
Trichosanthin (TCS) inhibits cervical cancer cell growth and migration while promoting apoptosis. This natural compound may offer a potential therapeutic strategy by regulating oxidative stress in cancer cells.
Area of Science:
- Pharmacology
- Oncology
- Biochemistry
Background:
- Trichosanthin (TCS) exhibits antiviral and anti-tumor properties, suggesting potential in cervical cancer treatment.
- The precise mechanisms of TCS action in cervical cancer remain largely unelucidated.
Purpose of the Study:
- To investigate the functional role of TCS in cervical cancer.
- To elucidate the underlying molecular mechanisms of TCS in cervical cancer cells.
Main Methods:
- CCK-8 assay for cell viability, Ki-67 staining for proliferation, and flow cytometry for apoptosis.
- Western blotting for apoptosis-related proteins, wound/Transwell assays for migration/invasion.
- JC-1/Rh123 probes for mitochondrial membrane potential (MMP), and flow cytometry for ATP and reactive oxygen species (ROS) levels.
Main Results:
- TCS significantly inhibited viability and proliferation of HeLa and caski cervical cancer cells in a time- and dose-dependent manner.
- TCS treatment induced apoptosis and suppressed cell migration and invasion.
- TCS reduced MMP and ATP production while increasing intracellular ROS levels.
Conclusions:
- TCS demonstrates anti-proliferative and anti-migratory effects on cervical cancer cells.
- TCS promotes apoptosis in cervical cancer cells, potentially through the regulation of oxidative stress.
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