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Published on: December 19, 2011
Small Molecules Targeting the Inactive Form of the Mnk1/2 Kinases
Srinivasaraghavan Kannan1, Mohan R Pradhan1, Joseph Cherian2
1Bioinformatics Institute (ASTAR), 30 Biopolis Street, #07-01 Matrix, Singapore 138671, Singapore.
Abstract:
Overexpression of the eukaryotic initiation factor 4E (eIF4E) is linked to a variety of cancers. Both mitogen-activated protein kinases-interacting kinases 1 and 2 (Mnk1/2) activate the oncogene eIF4E through posttranslational modification (phosphorylating it at the conserved Ser209). Inhibition of Mnk prevents eIF4E phosphorylation, making the Mnk-eIF4E axis a potential therapeutic target for oncology. Recently, the design and synthesis of a series of novel potent compounds inhibiting the Mnk1/2 kinases were carried out in-house. Here, we describe computational models of the interactions between Mnk1/2 kinases and these inhibitors. Molecular modeling combined with free energy calculations show that these compounds bind to the inactive forms of the kinases. All compounds adopt similar conformations in the catalytic sites of both kinases, stabilized by hydrogen bonds with the hinge regions and with the catalytic Lys78 (Mnk1) and Lys113 (Mnk2). These hydrogen bond interactions clearly play a critical role in determining the conformational stability and potency of the compounds. We also find that van der Waals interactions with an allosteric pocket are key to their binding and potency. Two distinct hydration sites that appear to further stabilize the ligand binding/interactions were observed. Critically, the inclusion of explicit water molecules in the calculations results in improving the agreement between calculated and experimental binding free energies.
Insights
Novel inhibitors targeting Mnk1/2 kinases, which activate the cancer-linked eIF4E, show potent binding through interactions with inactive kinase forms. Computational models reveal key hydrogen bonds and van der Waals forces driving their efficacy.
Area of Science:
- Oncology
- Molecular Biology
- Computational Chemistry
Background:
- Overexpression of eukaryotic initiation factor 4E (eIF4E) is associated with various cancers.
- The Mnk1/2 kinases activate eIF4E via phosphorylation, presenting the Mnk-eIF4E axis as a therapeutic target.
Purpose of the Study:
- To computationally model the interactions between novel inhibitors and Mnk1/2 kinases.
- To understand the molecular basis of inhibitor binding and potency.
Main Methods:
- In-house design and synthesis of novel Mnk1/2 inhibitors.
- Molecular modeling and free energy calculations.
- Analysis of hydrogen bonding, van der Waals interactions, and hydration sites.
Main Results:
- Compounds bind to the inactive conformations of Mnk1/2 kinases.
- Key interactions include hydrogen bonds with hinge regions and catalytic lysines, and van der Waals forces with an allosteric pocket.
- Explicit water molecules improved the correlation between calculated and experimental binding free energies.
Conclusions:
- The novel inhibitors demonstrate potent binding to Mnk1/2 kinases through specific interactions.
- Computational modeling provides insights into the mechanism of action for these potential cancer therapeutics.
- The study validates the Mnk-eIF4E axis as a viable target for drug development in oncology.
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