Abrogation of the G2/M checkpoint as a chemosensitization approach for alkylating agents

Fengchao Lang1, James A Cornwell2, Karambir Kaur1

  • 1Neuro-Oncology Branch, Center for Cancer Research, National Cancer Institute, Bethesda, Maryland, USA.

Neuro-Oncology
|December 22, 2023
PubMed
Abstract

Insights

Targeting cell cycle timing by inhibiting Myt1 kinase sensitizes cancer cells to DNA damage therapies like temozolomide (TMZ). This approach forces cancer cells into mitosis with unrepaired DNA, leading to apoptosis and improved survival in preclinical models.

Area of Science:

  • Oncology
  • Molecular Biology
  • Genetics

Background:

  • Cell cycle checkpoints, particularly the G2/M checkpoint, regulate cell division and DNA repair.
  • Cancer cells utilize the G2/M checkpoint to resist genotoxic chemotherapy, promoting DNA repair before division.
  • Modulating cell cycle progression is a promising strategy to enhance DNA damage-based cancer treatments.

Purpose of the Study:

  • To investigate mechanisms of tumor cell survival under genotoxic stress using genome-wide CRISPR/Cas9 screening.
  • To identify novel targets for overcoming resistance to DNA damage-inducing cancer therapies.

Main Methods:

  • Conducted a genome-wide CRISPR/Cas9 screen with repeated exposure to temozolomide (TMZ).
  • Utilized isobologram analysis to assess drug synergy between alkylating agents and a Myt1 kinase inhibitor (RP-6306).
  • Performed preclinical animal studies in glioma-bearing mice.

Main Results:

  • Canonical DNA repair pathways (ATM/Fanconi, mismatch repair) were identified as critical for cell fate under genotoxic stress.
  • PKMYT1 was identified as essential for cancer cell survival; its depletion sensitized cells to TMZ.
  • Inhibiting Myt1 kinase with RP-6306 synergized with TMZ, inducing premature mitosis with unrepaired DNA, mitotic abnormalities, and apoptosis.
  • Combination therapy of TMZ and RP-6306 prolonged survival in glioma-bearing mice.

Conclusions:

  • Targeting Myt1 kinase and cell cycle timing is a viable strategy to enhance the efficacy of DNA damage-based cancer therapies.
  • This approach holds potential for improving patient outcomes in various cancers, including glioma.

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