TTK Inhibitors as a Targeted Therapy for CTNNB1 (β-catenin) Mutant Cancers

Guido J R Zaman1, Jeroen A D M de Roos2, Marion A A Libouban2

  • 1Netherlands Translational Research Center B.V., Oss, the Netherlands. guido.zaman@ntrc.nl.

Insights

Activating mutations in the CTNNB1 gene predict increased sensitivity to TTK inhibitors. This discovery offers a potential biomarker for selecting cancer patients likely to respond to TTK inhibitor therapy.

Area of Science:

  • Oncology
  • Molecular Biology
  • Pharmacology

Background:

  • The spindle assembly checkpoint kinase TTK (Mps1) is a target for novel cancer therapies.
  • Small-molecule TTK inhibitors are entering clinical trials, but patient stratification is lacking.

Purpose of the Study:

  • To identify a genomic biomarker predicting tumor cell response to TTK inhibitor therapy.
  • To evaluate the association between CTNNB1 gene mutations and sensitivity to TTK inhibitors.

Main Methods:

  • Profiling of preclinical and clinical TTK inhibitors on 66 genetically characterized cancer cell lines.
  • Confirmation of sensitivity using isogenic cell line pairs with mutant or wild-type CTNNB1.
  • Xenograft model studies with a CTNNB1-mutant cell line treated with a TTK inhibitor.

Main Results:

  • Cancer cell lines with activating CTNNB1 mutations showed up to fivefold increased sensitivity to TTK inhibitors.
  • CTNNB1 mutation status was confirmed as a predictor of sensitivity using isogenic pairs.
  • A TTK inhibitor completely inhibited tumor growth in a xenograft model with a CTNNB1-mutant cell line.

Conclusions:

  • Mutant CTNNB1 serves as a potential prognostic biomarker for TTK inhibitor response.
  • This biomarker can guide patient selection for clinical trials of TTK inhibitors.
  • CTNNB1 mutations are frequent in endometrial and hepatocellular carcinomas, which often have high TTK expression.

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