Targeting cyclin-dependent kinase 11: a computational approach for natural anti-cancer compound discovery
Suruchi Bhambri1, Prakash C Jha2
1School of Applied Material Sciences, Central University of Gujarat, Gandhinagar, Gujarat, India.
Abstract:
Cancer, a leading global cause of death, presents considerable treatment challenges due to resistance to conventional therapies like chemotherapy and radiotherapy. Cyclin-dependent kinase 11 (CDK11), which plays a pivotal role in cell cycle regulation and transcription, is overexpressed in various cancers and is linked to poor prognosis. This study focused on identifying potential inhibitors of CDK11 using computational drug discovery methods. Techniques such as pharmacophore modeling, virtual screening, molecular docking, ADMET predictions, molecular dynamics simulations, and binding free energy analysis were applied to screen a large natural product database. Three pharmacophore models were validated, leading to the identification of several promising compounds with stronger binding affinities than the reference inhibitor. ADMET profiling indicated favorable drug-like properties, while molecular dynamics simulations confirmed the stability and favorable interactions of top candidates with CDK11. Binding free energy calculations further revealed that UNPD29888 exhibited the strongest binding affinity. In conclusion, the identified compound shows potential as a CDK11 inhibitor based on computational predictions, suggesting their future application in cancer treatment by targeting CDK11. These computational findings encourage further experimental validation as anti-cancer agents.
Insights
Researchers identified a potential new cancer drug targeting Cyclin-dependent kinase 11 (CDK11) using computational methods. This compound, UNPD29888, shows promise for future cancer therapies by inhibiting CDK11, offering hope against treatment resistance.
Area of Science:
- Oncology
- Computational Chemistry
- Drug Discovery
Background:
- Cancer remains a leading cause of death globally, with significant challenges posed by resistance to conventional treatments.
- Cyclin-dependent kinase 11 (CDK11) is overexpressed in many cancers and associated with poor patient prognosis, making it a potential therapeutic target.
Purpose of the Study:
- To identify novel inhibitors of Cyclin-dependent kinase 11 (CDK11) through computational drug discovery.
- To evaluate the drug-likeness and binding potential of natural compounds against CDK11.
Main Methods:
- Utilized pharmacophore modeling, virtual screening, and molecular docking to screen a natural product database.
- Performed ADMET predictions, molecular dynamics simulations, and binding free energy analysis for promising candidates.
- Validated three pharmacophore models and assessed compound stability and interactions with CDK11.
Main Results:
- Identified several compounds with superior binding affinities to CDK11 compared to the reference inhibitor.
- Compound UNPD29888 demonstrated the strongest binding affinity.
- ADMET profiling indicated favorable drug-like properties for the identified candidates.
Conclusions:
- Computational predictions suggest UNPD29888 is a potent inhibitor of CDK11.
- The identified compounds hold potential for development as novel anti-cancer agents targeting CDK11.
- Further experimental validation is warranted to confirm the therapeutic efficacy of these compounds.
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