Virtual Screening for Identification of Dual Inhibitors against CDK4/6 and Aromatase Enzyme
Tenzin Adon1, Dhivya Shanmugarajan1, Hissana Ather2
1Department of Pharmaceutical Chemistry, JSS College of Pharmacy, JSS Academy of Higher Education and Research, Mysuru 570015, Karnataka, India.
Abstract:
CDK4/6 and aromatase are prominent targets for breast cancer drug discovery and are involved in abnormal cell proliferation and growth. Although aromatase inhibitors have proven to be effective (for example exemestane, anastrozole, letrozole), resistance to treatment eventually occurs through the activation of alternative signaling pathways, thus evading the antiproliferative effects of aromatase inhibitors. One of the evasion pathways is Cylin D-CDK4/6-Rb signaling that promotes tumor proliferation and resistance to aromatase inhibitors. There is significant evidence that the sequential inhibition of both proteins provides therapeutic benefits over the inhibition of one target. The basis of this study objective is the identification of molecules that are likely to inhibit both CDK4/6 and aromatase by computational chemistry techniques, which need further biochemical studies to confirm. Initially, a structure-based pharmacophore model was constructed for each target to screen the sc-PDB database. Consequently, pharmacophore screening and molecular docking were performed to evaluate the potential lead candidates that effectively mapped both of the target pharmacophore models. Considering abemaciclib (CDK4/6 inhibitor) and exemestane (aromatase inhibitor) as reference drugs, four potential virtual hit candidates (1, 2, 3, and 4) were selected based on their fit values and binding interaction after screening a sc-PDB database. Further, molecular dynamics simulation studies solidify the stability of the lead candidate complexes. In addition, ADMET and DFT calculations bolster the lead candidates. Hence, these combined computational approaches will provide a better therapeutic potential for developing CDK4/6-aromatase dual inhibitors for HR+ breast cancer therapy.
Insights
This study computationally identifies novel dual inhibitors targeting both CDK4/6 and aromatase, offering a promising strategy to overcome resistance in hormone receptor-positive breast cancer therapy.
Area of Science:
- Oncology
- Medicinal Chemistry
- Computational Drug Discovery
Background:
- Aromatase inhibitors are effective breast cancer treatments, but resistance emerges via pathways like Cyclin D-CDK4/6-Rb signaling.
- Sequential inhibition of CDK4/6 and aromatase shows therapeutic promise over single-target inhibition.
- Identifying dual inhibitors is crucial for overcoming treatment resistance in hormone receptor-positive breast cancer.
Purpose of the Study:
- To computationally identify novel molecules that inhibit both CDK4/6 and aromatase.
- To explore a new therapeutic strategy for hormone receptor-positive breast cancer by targeting two key pathways simultaneously.
Main Methods:
- Structure-based pharmacophore modeling for CDK4/6 and aromatase.
- Screening the sc-PDB database using pharmacophore models and molecular docking.
- Evaluating lead candidates using molecular dynamics simulations, ADMET, and DFT calculations.
Main Results:
- Four potential dual inhibitor candidates (1, 2, 3, and 4) were identified through virtual screening and docking.
- Molecular dynamics simulations confirmed the stability of the identified lead candidate complexes.
- ADMET and DFT calculations supported the drug-likeness and properties of the candidates.
Conclusions:
- Computational approaches successfully identified promising dual CDK4/6-aromatase inhibitors.
- These findings provide a strong foundation for developing novel therapeutics against resistant HR+ breast cancer.
- Further biochemical validation is warranted to confirm the therapeutic potential of these identified molecules.


