Identification of CDK7 Inhibitors from Natural Sources Using Pharmacoinformatics and Molecular Dynamics Simulations
Vikas Kumar1, Shraddha Parate2, Gunjan Thakur3
1Department of Bio & Medical Big Data (BK4 Program), Division of Life Sciences, Research Institute of Natural Science (RINS), Gyeongsang National University (GNU), 501 Jinju-daero, Jinju 52828, Korea.
Abstract:
The cyclin-dependent kinase 7 (CDK7) plays a crucial role in regulating the cell cycle and RNA polymerase-based transcription. Overexpression of this kinase is linked with various cancers in humans due to its dual involvement in cell development. Furthermore, emerging evidence has revealed that inhibiting CDK7 has anti-cancer effects, driving the development of novel and more cost-effective inhibitors with enhanced selectivity for CDK7 over other CDKs. In the present investigation, a pharmacophore-based approach was utilized to identify potential hit compounds against CDK7. The generated pharmacophore models were validated and used as 3D queries to screen 55,578 natural drug-like compounds. The obtained compounds were then subjected to molecular docking and molecular dynamics simulations to predict their binding mode with CDK7. The molecular dynamics simulation trajectories were subsequently used to calculate binding affinity, revealing four hits-ZINC20392430, SN00112175, SN00004718, and SN00262261-having a better binding affinity towards CDK7 than the reference inhibitors (CT7001 and THZ1). The binding mode analysis displayed hydrogen bond interactions with the hinge region residues Met94 and Glu95, DFG motif residue Asp155, ATP-binding site residues Thr96, Asp97, and Gln141, and quintessential residue outside the kinase domain, Cys312 of CDK7. The in silico selectivity of the hits was further checked by docking with CDK2, the close homolog structure of CDK7. Additionally, the detailed pharmacokinetic properties were predicted, revealing that our hits have better properties than established CDK7 inhibitors CT7001 and THZ1. Hence, we argue that proposed hits may be crucial against CDK7-related malignancies.
Insights
Researchers identified novel compounds targeting cyclin-dependent kinase 7 (CDK7) for cancer treatment. These potential inhibitors show improved binding affinity and pharmacokinetic properties compared to existing drugs, offering new hope against CDK7-related malignancies.
Area of Science:
- Biochemistry and Molecular Biology
- Medicinal Chemistry
- Computational Drug Discovery
Background:
- Cyclin-dependent kinase 7 (CDK7) is vital for cell cycle progression and transcription.
- CDK7 overexpression is implicated in human cancers, making it a therapeutic target.
- Developing selective and cost-effective CDK7 inhibitors is crucial for cancer therapy.
Purpose of the Study:
- To identify novel small molecules with potential inhibitory activity against CDK7.
- To evaluate the binding affinity, selectivity, and pharmacokinetic properties of identified compounds.
Main Methods:
- Utilized a pharmacophore-based virtual screening approach on a library of 55,578 natural compounds.
- Validated pharmacophore models and employed them as 3D queries for screening.
- Conducted molecular docking, molecular dynamics simulations, and in silico pharmacokinetic predictions.
Main Results:
- Identified four promising hit compounds (ZINC20392430, SN00112175, SN00004718, SN00262261) with superior binding affinity to CDK7 compared to reference inhibitors.
- Detailed binding mode analysis revealed key interactions with critical CDK7 residues, including hinge region and ATP-binding site.
- In silico selectivity profiling against CDK2 and pharmacokinetic assessments indicated favorable properties for the identified hits.
Conclusions:
- The identified compounds demonstrate significant potential as novel therapeutic agents against CDK7.
- These hits exhibit promising binding characteristics and favorable in silico pharmacokinetic profiles.
- Further investigation of these compounds could lead to effective treatments for CDK7-driven cancers.
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