Related Experiment Video
Updated: Jun 16, 2026

Identification of Kinase-substrate Pairs Using High Throughput Screening
Published on: August 29, 2015
Biophysical and X-ray crystallographic analysis of Mps1 kinase inhibitor complexes
Matthew L H Chu1, Zhaolei Lang, Leonard M G Chavas
1Wolfson Centre for Structure-Based Rational Design of Molecular Diagnostics, School of Pharmacy and Pharmaceutical Sciences, University of Manchester, Manchester M13 9PL, UK.
Abstract:
The dual-specificity protein kinase monopolar spindle 1 (Mps1) is a central component of the mitotic spindle assembly checkpoint (SAC), a sensing mechanism that prevents anaphase until all chromosomes are bioriented on the metaphase plate. Partial depletion of Mps1 protein levels sensitizes transformed, but not untransformed, human cells to therapeutic doses of the anticancer agent Taxol, making it an attractive novel therapeutic cancer target. We have previously determined the X-ray structure of the catalytic domain of human Mps1 in complex with the anthrapyrazolone kinase inhibitor SP600125. In order to validate distinct inhibitors that target this enzyme and improve our understanding of nucleotide binding site architecture, we now report a biophysical and structural evaluation of the Mps1 catalytic domain in the presence of ATP and the aspecific model kinase inhibitor staurosporine. Collective in silico, enzymatic, and fluorescent screens also identified several new lead quinazoline Mps1 inhibitors, including a low-affinity compound termed Compound 4 (Cpd 4), whose interaction with the Mps1 kinase domain was further characterized by X-ray crystallography. A novel biophysical analysis demonstrated that the intrinsic fluorescence of SP600125 changed markedly upon Mps1 binding, allowing spectrophotometric displacement analysis and determination of dissociation constants for ATP-competitive Mps1 inhibitors. By illuminating the structure of the Mps1 ATP-binding site our results provide novel biophysical insights into Mps1-ligand interactions that will be useful for the development of specific Mps1 inhibitors, including those employing a therapeutically validated quinazoline template.
Insights
Monopolar spindle 1 (Mps1) kinase is a cancer target. New inhibitors targeting Mps1
Area of Science:
- Biochemistry
- Molecular Biology
- Structural Biology
Background:
- Monopolar spindle 1 (Mps1) is crucial for the mitotic spindle assembly checkpoint (SAC).
- Mps1 inhibition sensitizes cancer cells to Taxol, identifying it as a therapeutic target.
- Previous studies determined the X-ray structure of Mps1 catalytic domain with SP600125.
Purpose of the Study:
- To evaluate Mps1 catalytic domain with ATP and staurosporine for biophysical and structural insights.
- To identify and characterize novel Mps1 inhibitors, including quinazoline-based compounds.
- To elucidate Mps1 ATP-binding site architecture and ligand interactions.
Main Methods:
- X-ray crystallography
- Enzymatic assays
- Fluorescent screening
- In silico analysis
- Spectrophotometric displacement analysis
Main Results:
- Structural and biophysical evaluation of Mps1 with ATP and staurosporine was performed.
- Several new Mps1 inhibitors, including quinazoline derivative Compound 4, were identified.
- SP600125 fluorescence change upon Mps1 binding enabled dissociation constant determination.
- X-ray crystallography characterized the interaction of Compound 4 with the Mps1 kinase domain.
Conclusions:
- The study provides novel biophysical insights into Mps1-ligand interactions.
- Understanding the Mps1 ATP-binding site aids in developing specific Mps1 inhibitors.
- Quinazoline-based inhibitors represent a promising template for Mps1-targeted cancer therapy.
