Targeting the Akt1 allosteric site to identify novel scaffolds through virtual screening

Oya Gursoy Yilmaz1, Elif Ozkirimli Olmez1, Kutlu O Ulgen1

  • 1Bogazici University, Department of Chemical Engineering, 34342 Istanbul, Turkey.

Insights

This study identifies novel allosteric inhibitors for Akt1, a key protein in cancer. By targeting a unique site, these small molecules offer improved selectivity for cancer therapy, overcoming limitations of traditional ATP-binding inhibitors.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Pharmacology

Background:

  • AKT kinases are implicated in numerous human cancers, making them therapeutic targets.
  • Targeting the ATP-binding pocket of AKT kinases leads to selectivity issues due to conserved kinase domain structures.
  • The pleckstrin homology (PH) domain of AKT offers a more selective target site for inhibitor development.

Purpose of the Study:

  • To identify potential allosteric inhibitors of Akt1 by targeting the cavity between its kinase and PH domains.
  • To develop and validate structure- and ligand-based pharmacophore models for Akt1 allosteric inhibition.
  • To screen a diverse chemical library for novel Akt1 allosteric modulators.

Main Methods:

  • Development of structure-based and ligand-based pharmacophore models for Akt1.
  • In silico screening of a drug-like subset of the ZINC database using 3D similarity searches.
  • Prediction of binding modes and affinities using Glide software, followed by Induced-Fit docking and ADME/druglikeness analysis.

Main Results:

  • Identification of potential allosteric inhibitors binding to the cavity between Akt1's kinase and PH domains.
  • Virtual screening proposed derivatives of 3-methyl-xanthine, quinoline-4-carboxamide, and 2-[4-(cyclohexa-1,3-dien-1-yl)-1H-pyrazol-3-yl]phenol as lead compounds.
  • The identified compounds demonstrated favorable interactions, pharmacophore fit, and druglikeness criteria.

Conclusions:

  • Allosteric inhibition of Akt1 is a promising strategy for developing selective cancer therapeutics.
  • The identified lead compounds represent a novel chemical space for targeting Akt1.
  • This study provides a foundation for the development of more effective and selective AKT-targeted cancer drugs.

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