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.

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.