Design of novel lead molecules against RhoG protein as cancer target - a computational study

Thirupathi Dasari1, Bhargavi Kondagari1, Ramasree Dulapalli1

  • 1a Department of Chemistry , University College of Science, Osmania University , Tarnaka, Hyderabad 500007 , Telangana , India.

Insights

This study identifies novel inhibitors for RhoG protein, a key factor in cancer progression. Computational methods were used to find potential drug candidates targeting this important cancer target.

Area of Science:

  • Molecular Biology
  • Computational Chemistry
  • Oncology

Background:

  • Cancer is characterized by uncontrolled cell growth, affecting millions annually.
  • Rho family proteins, including RhoG, are implicated in cytoskeleton regulation and cancer progression.
  • RhoG protein plays a role in microtubule formation and cell migration, making it a potential cancer target.

Purpose of the Study:

  • To investigate the binding interactions between RhoG protein and the DH domain of Ephexin-4 protein.
  • To identify novel small molecules as potential inhibitors of RhoG protein activity.
  • To evaluate the efficacy of identified ligands through computational analysis.

Main Methods:

  • 3D structure evaluation and molecular dynamic simulations of RhoG protein.
  • Protein-protein docking of RhoG with Ephexin-4.
  • Virtual screening of ligand databases against RhoG's active site.
  • Binding free energy calculations and ADME property analysis.

Main Results:

  • The 3D structure of RhoG protein was stabilized and its active site identified.
  • Protein-protein docking revealed binding interactions between RhoG and Ephexin-4.
  • Virtual screening identified potential RhoG inhibitors with high docking scores and favorable ADME properties.

Conclusions:

  • RhoG protein is a promising novel target for cancer therapy.
  • Computational approaches are effective in identifying potential drug candidates against RhoG.
  • Prioritized ligands demonstrate potential as inhibitors for cancer treatment.

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