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Method for Identifying Small Molecule Inhibitors of the Protein-protein Interaction Between HCN1 and TRIP8b
Published on: November 11, 2016
Identification of potent inhibitors of NEK7 protein using a comprehensive computational approach
Mubashir Aziz1, Syeda Abida Ejaz2, Nissren Tamam3
1Department of Pharmaceutical Chemistry, Faculty of Pharmacy, The Islamia University of Bahawalpur, Bahawalpur, 63100, Pakistan.
Abstract:
NIMA related Kinases (NEK7) plays an important role in spindle assembly and mitotic division of the cell. Over expression of NEK7 leads to the progression of different cancers and associated malignancies. It is becoming the next wave of targets for the development of selective and potent anti-cancerous agents. The current study is the first comprehensive computational approach to identify potent inhibitors of NEK7 protein. For this purpose, previously identified anti-inflammatory compound i.e., Phenylcarbamoylpiperidine-1,2,4-triazole amide derivatives by our own group were selected for their anti-cancer potential via detailed Computational studies. Initially, the density functional theory (DFT) calculations were carried out using Gaussian 09 software which provided information about the compounds' stability and reactivity. Furthermore, Autodock suite and Molecular Operating Environment (MOE) software's were used to dock the ligand database into the active pocket of the NEK7 protein. Both software performances were compared in terms of sampling power and scoring power. During the analysis, Autodock results were found to be more reproducible, implying that this software outperforms the MOE. The majority of the compounds, including M7, and M12 showed excellent binding energies and formed stable protein-ligand complexes with docking scores of - 29.66 kJ/mol and - 31.38 kJ/mol, respectively. The results were validated by molecular dynamics simulation studies where the stability and conformational transformation of the best protein-ligand complex were justified on the basis of RMSD and RMSF trajectory analysis. The drug likeness properties and toxicity profile of all compounds were determined by ADMETlab 2.0. Furthermore, the anticancer potential of the potent compounds were confirmed by cell viability (MTT) assay. This study suggested that selected compounds can be further investigated at molecular level and evaluated for cancer treatment and associated malignancies.
Insights
This study computationally identifies potent inhibitors for NIMA related Kinase 7 (NEK7), a key protein in cancer progression. Selected compounds demonstrated significant binding affinity and anticancer potential, warranting further investigation for cancer treatment.
Area of Science:
- Biochemistry
- Computational Chemistry
- Pharmacology
Background:
- NIMA related Kinase 7 (NEK7) is crucial for cell division and its overexpression is linked to cancer progression.
- Targeting NEK7 represents a promising strategy for developing novel anti-cancer therapies.
- This study pioneers a comprehensive computational approach to discover NEK7 inhibitors.
Purpose of the Study:
- To computationally identify potent inhibitors of the NEK7 protein.
- To evaluate the anti-cancer potential of previously synthesized Phenylcarbamoylpiperidine-1,2,4-triazole amide derivatives.
- To compare the efficacy of Autodock and MOE software for NEK7 inhibitor discovery.
Main Methods:
- Density Functional Theory (DFT) calculations for compound stability and reactivity.
- Molecular docking using Autodock and MOE to assess ligand-protein interactions.
- Molecular dynamics simulations to validate protein-ligand complex stability.
- ADMETlab 2.0 for drug likeness and toxicity profiling.
- MTT assay to confirm in vitro anticancer activity.
Main Results:
- Autodock demonstrated superior reproducibility compared to MOE for docking.
- Compounds M7 and M12 exhibited strong binding energies (-29.66 kJ/mol and -31.38 kJ/mol, respectively).
- Molecular dynamics simulations confirmed the stability of the best protein-ligand complexes.
- In vitro assays validated the anticancer potential of the identified compounds.
Conclusions:
- The identified Phenylcarbamoylpiperidine-1,2,4-triazole amide derivatives show significant promise as NEK7 inhibitors.
- Computational methods, particularly Autodock, are effective for discovering novel anti-cancer agents targeting NEK7.
- These compounds warrant further preclinical evaluation for cancer treatment and associated malignancies.
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