Related Experiment Video
Updated: Feb 26, 2026

Kinase Inhibitor Screening In Self-assembled Human Protein Microarrays
Published on: October 23, 2019
Understanding inhibitor resistance in Mps1 kinase through novel biophysical assays and structures
Yoshitaka Hiruma1, Andre Koch2, Nazila Hazraty1
1From the Divisions of Biochemistry and.
Abstract:
Monopolar spindle 1 (Mps1/TTK) is a protein kinase essential in mitotic checkpoint signaling, preventing anaphase until all chromosomes are properly attached to spindle microtubules. Mps1 has emerged as a potential target for cancer therapy, and a variety of compounds have been developed to inhibit its kinase activity. Mutations in the catalytic domain of Mps1 that give rise to inhibitor resistance, but retain catalytic activity and do not display cross-resistance to other Mps1 inhibitors, have been described. Here we characterize the interactions of two such mutants, Mps1 C604Y and C604W, which raise resistance to two closely related compounds, NMS-P715 and its derivative Cpd-5, but not to the well characterized Mps1 inhibitor, reversine. We show that estimates of the IC50 (employing a novel specific and efficient assay that utilizes a fluorescently labeled substrate) and the binding affinity (K ) indicate that, in both mutants, Cpd-5 should be better tolerated than the closely related NMS-P715. To gain further insight, we determined the crystal structure of the Mps1 kinase mutants bound to Cpd-5 and NMS-P715 and compared the binding modes of Cpd-5, NMS-P715, and reversine. The difference in steric hindrance between Tyr/Trp604 and the trifluoromethoxy moiety of NMS-P715, the methoxy moiety of Cpd-5, and complete absence of such a group in reversine, account for differences we observe in vitro Our analysis enforces the notion that inhibitors targeting Mps1 drug-resistant mutations can emerge as a feasible intervention strategy based on existing scaffolds, if the clinical need arises.
Insights
Monopolar spindle 1 (Mps1/TTK) protein kinase mutations can confer resistance to cancer drugs. Structural analysis reveals how specific mutations affect inhibitor binding, suggesting a strategy for developing new Mps1-targeted cancer therapies.
Area of Science:
- Biochemistry
- Molecular Biology
- Structural Biology
Background:
- Monopolar spindle 1 (Mps1/TTK) is a crucial protein kinase for mitotic checkpoint signaling.
- Mps1 inhibitors are investigated as cancer therapeutics, but drug-resistant mutations pose a challenge.
- Specific Mps1 catalytic domain mutations can confer resistance to certain inhibitors while retaining kinase activity.
Purpose of the Study:
- To characterize the interaction of Mps1 mutants (C604Y, C604W) with Mps1 inhibitors.
- To elucidate the structural basis for differential resistance to NMS-P715, Cpd-5, and reversine.
- To explore the feasibility of targeting Mps1 drug-resistant mutations.
Main Methods:
- Utilized a novel fluorescent assay to determine IC50 values for Mps1 inhibitors.
- Measured binding affinities (Kd) of inhibitors to Mps1 mutants.
- Determined crystal structures of Mps1 kinase mutants bound to inhibitors (Cpd-5, NMS-P715).
Main Results:
- Mps1 C604Y and C604W mutants showed resistance to NMS-P715 and Cpd-5 but not reversine.
- Cpd-5 exhibited better tolerance than NMS-P715 in the resistant mutants.
- Structural analysis revealed steric hindrance differences explaining inhibitor selectivity.
Conclusions:
- Drug-resistant Mps1 mutations can be overcome by specific inhibitor design.
- Structural insights guide the development of next-generation Mps1 inhibitors.
- Targeting resistant Mps1 mutations is a viable strategy for cancer therapy.

