Discovery of new small-molecule cyclin-dependent kinase 6 inhibitors through computational approaches
Xiaojiao Luo1, Yu Zhao2, Pan Tang1
1State Key Laboratory of Biotherapy and Cancer Center, West China Hospital, Sichuan University and Collaborative Innovation Center for Biotherapy, Chengdu, 610041, China.
Abstract:
Excessive cell proliferation due to cell cycle disorders is one of the hallmarks of breast cancer. Cyclin-dependent kinases (CDKs), which are involved in the transition of the cell cycle from G1 phase to S phase by combining CDKs with cyclin, are considered promising targets with broad therapeutic potential based on their critical role in cell cycle regulation. Pharmacological evidence has shown that abnormal cell cycle due to the overexpression of CDK6 is responsible for the hyperproliferation of cancer cells. Blocking CDK6 expression inhibits tumour survival and growth. Therefore, CDK6 can be regarded as a potential target for anticancer therapeutics. Thus, small molecules that can be considered CDK inhibitors have been developed into promising anticancer drugs. In this study, combined structure-based and ligand-based in silicon models were created to identify new chemical entities against CDK6 with the appropriate pharmacokinetic properties. The database used to screen drug-like compounds in this thesis was based on the best E-pharmacophore hypothesis and the best ligand-based drug hypothesis. As a result, 147 common compounds were identified by further molecular docking. Surprisingly, the in vitro evaluation results of 20 of those compounds showed that the two had good CDK6 inhibitory effects. The best compound was subjected to kinase panel screening, followed by molecular dynamic simulations. The 50-ns MD studies revealed the pivotal role of VAL101 in the binding of inhibitors to CDK6. Overall, the identification of two new chemical entities with CDK6 inhibitory activity demonstrated the feasibility and potential of the new method.
Insights
Researchers identified two new compounds that inhibit CDK6, a key target in breast cancer treatment. This discovery highlights a novel computational method for developing potential anticancer drugs by targeting cell cycle regulation.
Area of Science:
- Oncology
- Biochemistry
- Computational Chemistry
Background:
- Breast cancer is characterized by excessive cell proliferation driven by cell cycle disorders.
- Cyclin-dependent kinases (CDKs), particularly CDK6, play a critical role in cell cycle regulation and are implicated in cancer hyperproliferation.
- Targeting CDK6 offers significant therapeutic potential for anticancer drug development.
Purpose of the Study:
- To identify novel chemical entities with CDK6 inhibitory activity using combined structure-based and ligand-based in silico models.
- To evaluate the pharmacokinetic properties of potential CDK6 inhibitors.
- To validate the efficacy of identified compounds through in vitro and molecular dynamic simulations.
Main Methods:
- Development of integrated structure-based and ligand-based in silico models for drug discovery.
- Screening of drug-like compounds using E-pharmacophore and ligand-based drug hypotheses.
- Molecular docking, in vitro evaluation, kinase panel screening, and molecular dynamic (MD) simulations.
Main Results:
- 147 common compounds were identified through molecular docking.
- In vitro evaluation revealed two compounds with significant CDK6 inhibitory effects.
- Molecular dynamic simulations identified VAL101 as crucial for inhibitor binding to CDK6.
Conclusions:
- The study successfully identified two novel chemical entities with potent CDK6 inhibitory activity.
- The employed computational method is effective for discovering potential anticancer therapeutics targeting CDK6.
- This research validates a promising approach for developing new drugs against cell cycle-related cancers.
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