Computational exploration of allosteric inhibitors targeting CDK4/CDK6 proteins: a promising approach for
Mahmood Khan1, Kamaljot Singh2, Sara Khan3
1College of Life Sciences and agricultural forestry, Qiqihar University, Qiqihar, China.
Abstract:
Cyclin-dependent kinases (CDKs) play a pivotal role in orchestrating the intricate regulation of the cell cycle, a fundamental process governing cell growth and division. In particular, CDK4 and CDK6 are critical for the transition from the G1 phase to the S phase, where Deoxyribonucleic acid (DNA) replication occurs, and their dysregulation is linked to various diseases, notably cancer. While ATP-binding site inhibitors for CDKs are well-documented, this study focuses on uncovering allosteric inhibitors, providing a fresh perspective on CDK inhibition. Computational techniques were employed in this investigation, utilizing Molecular Operating Environment (MOE) for virtual screening of a drug-like compound library. Moreover, the stability of the most promising binding inhibitors was assessed through Molecular Dynamics (MD) simulations and MMPBSA/MMGBSA analyses. The outcome reveals that three inhibitors (C1, C2, and C3) exhibited the strongest binding affinity for CDK4/CDK6, as corroborated by docking and simulation analyses. The computed binding energies ranged from -6.1 to -7.6 kcal/mol, underscoring the potency of these allosteric inhibitors. Notably, this study identifies key residues (PHE31, HIS95, HIS100, VAL101, ASP102, ASP104, and THR107) that play pivotal roles in mediating inhibitor binding within the allosteric sites. Among the findings, the C1-CDK4 complex and C2-CDK6 complex emerge as particularly promising inhibitors, exhibiting high binding energies, favorable interaction patterns, and sustained presence within the active site. This study contributes significantly to the pursuit of multi-target drugs against CDK4/CDK6 proteins, with potential implications for the development of innovative therapies across various disorders, including cancer and other cell cycle-related conditions.
Insights
This study identifies novel allosteric inhibitors (C1, C2, C3) for CDK4/CDK6, crucial cell cycle regulators implicated in cancer. These compounds show strong binding affinity, offering potential for new cancer therapies.
Area of Science:
- Biochemistry and Molecular Biology
- Pharmacology and Drug Discovery
- Computational Chemistry
Background:
- Cyclin-dependent kinases (CDKs), particularly CDK4 and CDK6, are vital for cell cycle progression and are frequently dysregulated in cancers.
- Targeting CDK4/CDK6 is a promising strategy for cancer therapy, with existing drugs focusing on ATP-binding sites.
Purpose of the Study:
- To identify and characterize novel allosteric inhibitors of CDK4/CDK6.
- To explore a new therapeutic approach for CDK inhibition beyond traditional ATP-binding site targeting.
Main Methods:
- Virtual screening of a drug-like compound library using Molecular Operating Environment (MOE).
- Molecular Dynamics (MD) simulations and MMPBSA/MMGBSA analyses to assess inhibitor stability and binding affinity.
- Docking analyses to predict binding modes and interactions.
Main Results:
- Three compounds (C1, C2, C3) demonstrated significant binding affinity to CDK4/CDK6, with binding energies ranging from -6.1 to -7.6 kcal/mol.
- Key allosteric binding site residues (PHE31, HIS95, HIS100, VAL101, ASP102, ASP104, THR107) were identified.
- C1-CDK4 and C2-CDK6 complexes showed particularly strong binding, favorable interactions, and sustained active site occupancy.
Conclusions:
- Novel allosteric inhibitors of CDK4/CDK6 have been identified, offering a new avenue for therapeutic intervention.
- These findings support the development of multi-target drugs against CDK4/CDK6 for treating cancers and other cell cycle-related diseases.
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