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Published on: June 13, 2020
Licoisoflavone A inhibits colorectal cancer cell proliferation through targeting CDK2-Cyclin E1 axis-mediated cell
Jingwei Cui1, Hao Chen1, Yuru Chen2
1Jiangsu Clinical Innovation Center for Anorectal Diseases of T.C.M, Nanjing Hospital of Chinese Medicine Affiliated to Nanjing University of Chinese Medicine, Nanjing 210022, China.
Abstract:
As the second most malignant neoplasm in the world, colorectal cancer (CRC) still needs the novel treatment strategy urgently. Cyclin-dependent kinase 2 (CDK2) has been identified as a potential therapeutic target in CRC research, but the development of CDK2 inhibitors still faces significant challenges. This study was to investigate the efficacy and underlying mechanisms of licoisoflavone A (LA) in targeting CDK2. HCT116 and SW480 human CRC cells were used to evaluate the in vitro anti-CRC activity and CDK2 regulation effect of LA by flow cytometry and Western blot analysis. Molecular docking and CDK2 knockdown cell models were used to investigate the direction interaction between LA and CDK2. Patient-derived CRC organoids and tumor-bearing mice were used to verify the anti-CRC activity and mechanism of LA. As a result, LA significantly inhibited cell proliferation and induced G1/S phase arrest in HCT116 and SW480 cells. LA had direct interaction with CDK2, and not only inhibited the formation of the CDK2/cyclin E1 complex, but also suppressed its kinase activity through the upregulation of p27, thereby inhibiting Rb phosphorylation and arresting the cell cycle in the G1 phase. Moreover, LA exerted anti-CRC effect in CRC organoids and the subcutaneous xenograft tumor mode without evident toxic effects. LA inhibits CRC cell proliferation through targeting the CDK2-Cyclin E1 axis-mediated cell cycle transition. Our research provides compelling evidence that LA may serve as a potential agent for the treatment of CRC, and also provides a rationale to design novel CDK2 inhibitors.
Insights
Licoisoflavone A (LA) effectively inhibits colorectal cancer (CRC) cell growth by targeting Cyclin-dependent kinase 2 (CDK2). This natural compound halts cancer cell division by disrupting the CDK2-Cyclin E1 complex, offering a promising new therapeutic strategy for CRC.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Colorectal cancer (CRC) remains a significant global health challenge requiring novel therapeutic approaches.
- Cyclin-dependent kinase 2 (CDK2) is a potential therapeutic target for CRC, but developing effective inhibitors is challenging.
Purpose of the Study:
- To investigate the anti-cancer efficacy and molecular mechanisms of licoisoflavone A (LA) in targeting CDK2 for colorectal cancer treatment.
- To explore the direct interaction between LA and CDK2 and its downstream effects on cell cycle regulation.
Main Methods:
- In vitro studies using human CRC cell lines (HCT116, SW480) with flow cytometry and Western blot.
- Molecular docking simulations and CDK2 knockdown cell models to confirm direct interaction.
- Validation in patient-derived CRC organoids and a subcutaneous xenograft mouse model.
Main Results:
- Licoisoflavone A significantly inhibited CRC cell proliferation and induced G1/S phase arrest.
- LA directly interacted with CDK2, inhibiting the CDK2/cyclin E1 complex formation and kinase activity.
- LA upregulated p27, leading to reduced Rb phosphorylation and G1 cell cycle arrest, with no significant toxicity observed in preclinical models.
Conclusions:
- Licoisoflavone A demonstrates potent anti-CRC activity by targeting the CDK2-Cyclin E1 axis, effectively controlling cell cycle progression.
- LA represents a promising therapeutic candidate for colorectal cancer and provides a basis for designing novel CDK2 inhibitors.
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