In Silico Studies on GCP-Lys-OMe as a Potential 14-3-3σ Homodimer Stabilizer

Ghazi Aljabal1, Beow Keat Yap1

  • 1School of Pharmaceutical Sciences, Universiti Sains Malaysia, Gelugor 11800, Penang, Malaysia.

Insights

GCP-Lys-OMe shows potential as a 14-3-3 sigma homodimer stabilizer. This compound may enhance the tumor-suppressive activity of 14-3-3 sigma, a key cell cycle regulator often downregulated in cancer.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Cancer Research

Background:

  • 14-3-3 sigma is a critical negative regulator of the cell cycle.
  • Its expression is frequently reduced in cancers via promoter hypermethylation or proteasomal degradation.
  • 14-3-3 sigma requires homodimerization for function, and dimers resist degradation more than monomers.

Purpose of the Study:

  • To investigate GCP-Lys-OMe as a potential stabilizer for the 14-3-3 sigma homodimer.
  • To assess if GCP-Lys-OMe can bind and stabilize 14-3-3 sigma dimers, thereby potentially enhancing its tumor-suppressive functions.

Main Methods:

  • In silico molecular docking of GCP-Lys-OMe on 14-3-3 sigma.
  • 100 ns molecular dynamics simulations of the GCP-Lys-OMe/14-3-3 sigma complex.
  • Analysis of protein-ligand interactions, interface contacts, and conformational space.

Main Results:

  • GCP-Lys-OMe exhibited a favorable interaction energy (-9.63 kcal/mole) with the 14-3-3 sigma dimer interface.
  • Molecular dynamics simulations confirmed a stable interaction between GCP-Lys-OMe and 14-3-3 sigma.
  • The bound complex showed increased interface contacts and reduced conformational flexibility compared to the apo form.

Conclusions:

  • GCP-Lys-OMe demonstrates potential as a homodimer stabilizer for 14-3-3 sigma.
  • This finding suggests a novel therapeutic strategy to restore 14-3-3 sigma's tumor-suppressive activity in cancer.