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Development of the First Covalent Monopolar Spindle Kinase 1 (MPS1/TTK) Inhibitor

  • Ricardo A. M. Serafim
  • , Andre da Silva Santiago
  • , Martin P. Schwalm
  • , Zexi Hu
  • , Caio dos Reis
  • , Jessica E. Takarada
  • , Priscila Mezzomo
  • , Katlin B. Massirer
  • , Mark Kudolo
  • , Stefan Gerstenecker
  • , Apirat Chaikuad
  • , Lars Zender
  • , Stefan Knapp
  • , Stefan Laufer
  • , Rafael M. Counago*
  • , Matthias Gehringer*
  • *Corresponding author for this work

Research output: Indexed journal article Articlepeer-review

27 Citations (Scopus)

Abstract

Monopolar spindle kinase 1 (MPS1/TTK) is a key element of the mitotic checkpoint and clinically evaluated as a target in the treatment of aggressive tumors such as triple-negative breast cancer. While long drug-target residence times have been suggested to be beneficial in the context of therapeutic MPS1 inhibition, no irreversible inhibitors have been reported. Here we present the design and characterization of the first irreversible covalent MPS1 inhibitor, RMS-07, targeting a poorly conserved cysteine in the kinase's hinge region. RMS-07 shows potent MPS1 inhibitory activity and selectivity against all protein kinases with an equivalent cysteine but also in a broader kinase panel. We demonstrate potent cellular target engagement and pronounced activity against various cancer cell lines. The covalent binding mode was validated by mass spectrometry and an X-ray crystal structure. This proof of MPS1 covalent ligandability may open new avenues for the design of MPS1-specific chemical probes or drugs.
Original languageEnglish
Pages (from-to)3173-3192
Number of pages20
JournalJournal of Medicinal Chemistry
Volume65
Issue number4
Early online date15 Feb 2022
DOIs
Publication statusPublished - 24 Feb 2022
Externally publishedYes

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 3 - Good Health and Well-being
    SDG 3 Good Health and Well-being

Keywords

  • Target residence time
  • Breast-cancer
  • Selective inhibitor
  • Protein-kinases
  • Potent
  • Discovery
  • Checkpoint
  • Design
  • Fgfr4
  • Phosphorylates

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