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Updated: Jul 6, 2026

Kinase Inhibitor Screening In Self-assembled Human Protein Microarrays
Published on: October 23, 2019
Enzyme kinetics and binding studies on inhibitors of MEK protein kinase
Wendy S VanScyoc1, Geoffrey A Holdgate, Jane E Sullivan
1AstraZeneca, Mereside, Alderley Park, Macclesfield, Cheshire SK10 4TG, UK.
Abstract:
Inhibition of the protein kinase, MEK1, is a potential approach for the treatment of cancer. Inhibitors may act by prevention of activation (PoA), which involves interfering with phosphorylation of nonactivated MEK1 by the upstream kinase, B-RAF. Modulation also may occur by inhibition of catalysis (IoC) during phosphorylation of the downstream substrate, ERK2, by activated MEK1. Here, five MEK inhibitors are characterized in terms of binding affinity, PoA, and IoC. The compounds are a butadiene (U-0126), an N-alkoxy amide (CI-1040), two CI-1040 analogues (an anthranilic acid and an N-alkyl amide), and a cyanoquinoline. Some compounds give different mechanisms of inhibition (ATP-competitive, noncompetitive, or uncompetitive) in PoA compared to IoC or show a change in potency between the assays. The inhibitors also exhibit different shifts in potency when either PoA or IoC is compared with binding to nonactivated MEK. The inhibitor potency ranking, therefore, is dependent upon the assay format. When the ATP concentration equals K m, IoC IC 50 increases in the order CI-1040 approximately cyanoquinoline < anthranilic acid approximately U-0126 < alkyl amide. Conversely, the K d from nonactivated MEK1 for four of the compounds varies between more than 6-fold lower and over 18-fold higher than this IC 50, with U-0126 having the lowest K d and CI-1040 having the highest. In PoA when the ATP concentration equals K m, U-0126 has the lowest IC 50, becoming more potent than CI-1040, the cyanoquinoline, and the anthranilic acid. These observations have implications for understanding structure-activity relationships of MEK inhibitors and illustrate how assays can be designed to favor different compounds.
Insights
Five MEK inhibitors targeting cancer were studied for their prevention of activation (PoA) and inhibition of catalysis (IoC) mechanisms. Potency rankings varied significantly based on assay format, impacting structure-activity relationship analysis for MEK inhibitors.
Area of Science:
- Biochemistry
- Pharmacology
- Oncology
Background:
- MEK1 protein kinase inhibition is a promising cancer treatment strategy.
- MEK inhibitors can function via prevention of activation (PoA) or inhibition of catalysis (IoC).
- Understanding these distinct mechanisms is crucial for drug development.
Purpose of the Study:
- To characterize five MEK inhibitors (U-0126, CI-1040, anthranilic acid, N-alkyl amide, cyanoquinoline) based on binding affinity, PoA, and IoC.
- To investigate how different assay formats influence inhibitor potency and mechanism.
- To explore structure-activity relationships (SAR) of MEK inhibitors.
Main Methods:
- Enzyme inhibition assays were performed to determine IC50 values for PoA and IoC.
- Binding affinity (Kd) to nonactivated MEK1 was measured for selected compounds.
- Inhibitor potency was compared across different assay conditions and mechanisms.
Main Results:
- MEK inhibitors exhibited varied mechanisms of inhibition (ATP-competitive, noncompetitive, uncompetitive) between PoA and IoC.
- Potency rankings of inhibitors were dependent on the specific assay format and ATP concentration.
- U-0126 showed the lowest Kd for nonactivated MEK1 and the lowest IC50 in PoA assays.
- Significant differences were observed between IC50 values and Kd, with some inhibitors showing >18-fold variation.
Conclusions:
- The potency and mechanism of MEK inhibitors are assay-dependent.
- Assay design significantly impacts the observed structure-activity relationships of MEK inhibitors.
- These findings have implications for optimizing MEK inhibitor development and selection for cancer therapy.
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