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Published on: April 3, 2026
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.
Abstract:
Preclinical data and tumor specimen studies report that AKT kinases are related to many human cancers. Therefore, identification and development of small molecule inhibitors targeting AKT and its signaling pathway can be therapeutic in treatment of cancer. Numerous studies report inhibitors that target the ATP-binding pocket in the kinase domains, but the similarity of this site, within the kinase family makes selectivity a major problem. The sequence identity amongst PH domains is significantly lower than that in kinase domains and developing more selective inhibitors is possible if PH domain is targeted. This in silico screening study is the first time report toward the identification of potential allosteric inhibitors expected to bind the cavity between kinase and PH domains of Akt1. Structural information of Akt1 was used to develop structure-based pharmacophore models comprising hydrophobic, acceptor, donor and ring features. The 3D structural information of previously identified allosteric Akt inhibitors obtained from literature was employed to develop a ligand-based pharmacophore model. Database was generated with drug like subset of ZINC and screening was performed based on 3D similarity to the selected pharmacophore hypotheses. Binding modes and affinities of the ligands were predicted by Glide software. Top scoring hits were further analyzed considering 2D similarity between the compounds, interactions with Akt1, fitness to pharmacophore models, ADME, druglikeness criteria and Induced-Fit docking. Using virtual screening methodologies, derivatives of 3-methyl-xanthine, quinoline-4-carboxamide and 2-[4-(cyclohexa-1,3-dien-1-yl)-1H-pyrazol-3-yl]phenol were proposed as potential leads for allosteric inhibition of Akt1.
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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