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Published on: June 16, 2019
1-Dehydro-6-Gingerdione Exerts Anticancer Effects on MDA-MB-231 Cells and in the Xenograft Mouse Model by Promoting
Thi Hoa My Tran1, Sanjeevram Dhandapani1, Samad Abdus1
1Graduate School of Biotechnology, and College of Life Science, Kyung Hee University, Yongin, Republic of Korea.
Abstract:
Breast cancer (BC) is the most prevalent malignancy among women, with millions of newly diagnosed cases emerging annually. Therefore, identifying novel pharmaceuticals for therapeutic purposes is imperative. Several natural compounds and their products have demonstrated potential in the treatment of cancer. This study examined the effects of the ginger derivative 1-dehydro-6-gingerdione (1-D-6-G) on BC and its mechanisms of action. MTT and colony formation assays were used to check the anticancer effect of 1-D-6-G. Then the anticancer mechanism of 1-D-6-G was predicted using proteomics analysis. The molecular pathway was verified by qRT-PCR and immunobloting analysis. Additionally, the anticancer properties of 1-D-6-G were investigated in vivo using xenograft mice model. Finally, an in silico study was conducted to examine the interaction of 1-D-6-G and pathway-related proteins. MTT and colony formation assay results indicated that 1-D-6-G has potent cytotoxic properties against BC cells. Proteomic analysis revealed that the anticancer mechanism of 1-D-6-G on MDA-MB-231 cells is associated with the ferroptosis signaling pathway. In addition, qRT-PCR and immunoblotting analyses revealed that the cytotoxic effects of 1-D-6-G on MDA-MB-231 cells were associated with ferroptosis signaling induction. Our in vivo results further confirmed the in vitro findings. The administration of 1-D-6-G for 14 days exhibited anticancer properties in xenograft mice by stimulating the ferroptosis pathway without causing damage to essential organs such as the liver and kidneys. Additionally, in silico results confirmed the structural stability of the molecular interaction between 1-D-6-G and ferroptosis target proteins. Our findings indicate that 1-D-6-G has the potential to serve as a novel therapeutic agent for inhibiting BC progression by targeting the ferroptosis pathway.
Insights
The ginger derivative 1-dehydro-6-gingerdione (1-D-6-G) shows potent anticancer effects against breast cancer (BC) by inducing ferroptosis. This natural compound demonstrated efficacy in vitro and in vivo without harming vital organs, suggesting therapeutic potential.
Area of Science:
- Oncology
- Pharmacology
- Natural Products Chemistry
Background:
- Breast cancer (BC) is a leading cause of mortality in women, necessitating the development of novel therapeutic agents.
- Natural compounds offer a promising source for anticancer drug discovery.
- The ginger derivative 1-dehydro-6-gingerdione (1-D-6-G) has shown potential, but its anticancer mechanisms require elucidation.
Purpose of the Study:
- To investigate the anticancer effects of 1-dehydro-6-gingerdione (1-D-6-G) on breast cancer (BC) cells.
- To elucidate the underlying molecular mechanisms of 1-D-6-G's action, particularly its role in ferroptosis signaling.
- To evaluate the in vivo efficacy and safety of 1-D-6-G in a preclinical model.
Main Methods:
- Cytotoxicity was assessed using MTT and colony formation assays.
- Anticancer mechanisms were explored via proteomics, qRT-PCR, and immunoblotting.
- In vivo efficacy was evaluated in a xenograft mice model, complemented by in silico interaction studies.
Main Results:
- 1-D-6-G exhibited significant cytotoxic effects against BC cells in vitro.
- Proteomic and molecular analyses confirmed that 1-D-6-G induces anticancer effects by activating the ferroptosis signaling pathway.
- In vivo studies demonstrated 1-D-6-G's ability to inhibit tumor growth in mice by stimulating ferroptosis, with no observed toxicity in major organs.
Conclusions:
- 1-dehydro-6-gingerdione (1-D-6-G) possesses potent anticancer properties against breast cancer.
- The mechanism of action involves the induction of ferroptosis, a regulated cell death pathway.
- 1-D-6-G is a promising candidate for novel breast cancer therapeutics, warranting further clinical investigation.
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