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Updated: Apr 5, 2026

Assaying Protein Kinase Activity with Radiolabeled ATP
Published on: May 26, 2017
Identification of a Highly Conserved Allosteric Binding Site on Mnk1 and Mnk2
Sunita K C Basnet1, Sarah Diab1, Raffaella Schmid1
1Centre for Drug Discovery and Development, Sansom Institute for Health Research, School of Pharmacy and Medical Sciences, University of South Australia, Adelaide, Australia (S.K.C.B., S.D., R.S., M.Y., Y.Y., T.A.G., T.T., P.L., H.A., S.W.); and CSIRO Biosciences Program, Parkville, Victoria, Australia (T.P.).
Abstract:
Elevated levels of phosphorylated eukaryotic initiation factor 4E (eIF4E) have been implicated in many tumor types, and mitogen activated protein kinase-interacting kinases (Mnks) are the only known kinases that phosphorylate eIF4E at Ser209. The phosphorylation of eIF4E is essential for oncogenic transformation but is of no significance to normal growth and development. Pharmacological inhibition of Mnks therefore provides a nontoxic and effective strategy for cancer therapy. However, a lack of specific Mnk inhibitors has confounded pharmacological target validation and clinical development. Herein, we report the identification of a novel series of Mnk inhibitors and their binding modes. A systematic workflow has been established to distinguish between type III and type I/II inhibitors. A selection of 66 compounds was tested for Mnk1 and Mnk2 inhibition, and 9 out of 20 active compounds showed type III interaction with an allosteric site of the proteins. Most of the type III inhibitors exhibited dual Mnk1 and Mnk2 activities and demonstrated potent antiproliferative properties against the MV4-11 acute myeloid leukemia cell line. Interestingly, ATP-/substrate-competitive inhibitors were found to be highly selective for Mnk2, with little or no activity for Mnk1. Our study suggests that Mnk1 and Mnk2 share a common structure of the allosteric inhibitory binding site but possess different structural features of the ATP catalytic domain. The findings will assist in the future design and development of Mnk targeted anticancer therapeutics.
Insights
Novel type III inhibitors targeting mitogen-activated protein kinase-interacting kinases (Mnks) show potent anticancer activity. These inhibitors target an allosteric site, offering a promising strategy for developing new cancer therapeutics.
Area of Science:
- Biochemistry
- Molecular Biology
- Cancer Research
Background:
- Elevated phosphorylated eukaryotic initiation factor 4E (eIF4E) is linked to various cancers.
- Mitogen-activated protein kinase-interacting kinases (Mnks) are the sole kinases phosphorylating eIF4E at Ser209, a crucial step in oncogenic transformation.
- Targeting Mnks presents a potential non-toxic cancer therapy strategy, but specific inhibitors are lacking.
Purpose of the Study:
- To identify and characterize novel Mnk inhibitors.
- To elucidate the binding modes of these inhibitors.
- To differentiate between type III and type I/II inhibitors for targeted cancer therapy development.
Main Methods:
- Systematic workflow established to classify inhibitor types.
- Screening of 66 compounds for Mnk1 and Mnk2 inhibition.
- Evaluation of antiproliferative properties against MV4-11 acute myeloid leukemia cell line.
Main Results:
- Nine out of 20 active compounds exhibited type III inhibition, binding to an allosteric site.
- Most type III inhibitors displayed dual Mnk1/Mnk2 activity and potent antiproliferative effects.
- ATP-/substrate-competitive inhibitors showed high selectivity for Mnk2 over Mnk1.
Conclusions:
- Mnk1 and Mnk2 share an allosteric binding site but differ in their ATP catalytic domains.
- Type III Mnk inhibitors demonstrate significant potential for anticancer drug development.
- Findings will guide the design of novel Mnk-targeted cancer therapeutics.
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