Understanding inhibitor resistance in Mps1 kinase through novel biophysical assays and structures

Yoshitaka Hiruma1, Andre Koch2, Nazila Hazraty1

  • 1From the Divisions of Biochemistry and.

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.