Validation and development of MTH1 inhibitors for treatment of cancer

U Warpman Berglund1, K Sanjiv1, H Gad1

  • 1Science for Life Laboratory, Division of Translational Medicine and Chemical Biology, Department of Medical Biochemistry and Biophysics.

Abstract

Insights

New MTH1 inhibitors fail to kill cancer cells because they do not introduce toxic oxidized nucleotides into DNA. A novel MTH1 inhibitor, TH1579 (Karonudib), shows potent anti-cancer properties and validates MTH1 inhibition as a therapeutic strategy.

Area of Science:

  • Oncology
  • Molecular Biology
  • Drug Discovery

Background:

  • Cancer cells depend on MTH1 to prevent DNA damage from oxidized nucleotides.
  • MTH1 inhibitors were previously shown to selectively kill cancer cells.
  • Recent studies reported non-toxic MTH1 inhibitors, questioning MTH1 as a cancer target.

Purpose of the Study:

  • To investigate why some MTH1 inhibitors fail to kill cancer cells.
  • To identify effective MTH1 inhibitors for cancer therapy.
  • To validate MTH1 inhibition as a viable cancer treatment strategy.

Main Methods:

  • In vitro exposure of cancer cell lines to MTH1 inhibitors or MTH1 depletion via siRNA/shRNA.
  • Measurement of 8-oxodG using immunostaining and comet assay.
  • Target engagement, mode of action, and selectivity studies using Thermal Proteome profiling, proteomics, and cellular thermal shift assays.
  • In vivo studies in patient-derived xenograft and human colon cancer models.

Main Results:

  • MTH1 inhibitors that fail to kill cancer cells do not introduce toxic oxidized nucleotides into DNA.
  • A new MTH1 inhibitor, TH1579 (Karonudib), demonstrates potent and selective MTH1 inhibition.
  • TH1579 exhibits favorable pharmacokinetics and anti-cancer activity in vivo.

Conclusions:

  • Effective MTH1 inhibitors must induce oxidized nucleotide incorporation into DNA to kill cancer cells.
  • TH1579 is a best-in-class MTH1 inhibitor with potential for further clinical validation.
  • MTH1 inhibition remains a promising therapeutic target for cancer treatment.

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