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Published on: December 26, 2016
Computational exploration of FOXM1 inhibitors for glioblastoma: an integrated virtual screening and molecular
Kumari Swati1, Sudhir Rama Varma2, R P Parameswari3
1Department of Biotechnology, School of Life Science, Mahatma Gandhi Central University, Motihari, Bihar, India.
Abstract:
In this study, a comprehensive investigation of a set of phytochemicals to identify potential inhibitors for the Forkhead box protein M1 (FOXM1) was conducted. FOXM1 is overexpressed in glioblastoma (GBM) cells and plays a crucial role in cell cycle progression, proliferation, and invasion. FOXM1 inhibitors have shown promising results in preclinical studies, and ongoing clinical trials are assessing their efficacy in GBM patients. However, there are limited studies on the identification of novel compounds against this attractive therapeutic target. To address this, the NPACT database containing 1,574 phytochemicals was used, employing a hierarchical multistep docking approach, followed by an estimation of relative binding free energy. By fixing user-defined XP-dock and MM-GBSA cut-off scores of -6.096 and -37.881 kcal/mol, the chemical space was further narrowed. Through exhaustive analysis of molecular binding interactions and various pharmacokinetics profiles, we identified four compounds, namely NPACT00002, NPACT01454, NPACT00856, and NPACT01417, as potential FOXM1 inhibitors. To assess the stability of protein-ligand binding in dynamic conditions, 100 ns Molecular dynamics (MD) simulations studies were performed. Furthermore, Molecular mechanics with generalized Born and surface area solvation (MM-GBSA) based binding free energy estimations of the entire simulation trajectories revealed a strong binding affinity of all identified compounds towards FOXM1, surpassing that of the control drug Troglitazone. Based on extensively studied multistep docking approaches, we propose that these molecules hold promise as FOXM1 inhibitors for potential therapeutic applications in GBM. However, experimental validation will be necessary to confirm their efficacy as targeted therapies.
Insights
Researchers identified four novel phytochemicals as potential inhibitors for Forkhead box protein M1 (FOXM1), a key target in glioblastoma (GBM) treatment. These compounds show strong binding affinity, offering promising therapeutic avenues for GBM.
Area of Science:
- Computational chemistry
- Molecular modeling
- Drug discovery
Background:
- Forkhead box protein M1 (FOXM1) is overexpressed in glioblastoma (GBM) and drives tumor progression.
- Targeting FOXM1 is a promising strategy for GBM therapy, but novel inhibitors are needed.
- Existing studies on FOXM1 inhibitors are limited, necessitating the search for new compounds.
Purpose of the Study:
- To identify novel phytochemical inhibitors of FOXM1 using computational methods.
- To evaluate the binding affinity and stability of potential FOXM1 inhibitors.
- To explore new therapeutic candidates for glioblastoma treatment.
Main Methods:
- A hierarchical multistep docking approach was used on the NPACT database of 1,574 phytochemicals.
- XP-dock and MM-GBSA cut-off scores were applied to filter compounds.
- Molecular dynamics (MD) simulations and MM-GBSA were used to assess binding stability and affinity.
Main Results:
- Four compounds (NPACT00002, NPACT01454, NPACT00856, NPACT01417) were identified as potential FOXM1 inhibitors.
- MD simulations confirmed the stability of protein-ligand complexes.
- MM-GBSA revealed strong binding affinities for the identified compounds, exceeding that of Troglitazone.
Conclusions:
- The identified phytochemicals show significant promise as FOXM1 inhibitors for GBM therapy.
- These compounds warrant further experimental validation for targeted glioblastoma treatment.
- This study provides a foundation for developing novel FOXM1-targeted therapies.
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