Myt1 overexpression mediates resistance to cell cycle and DNA damage checkpoint kinase inhibitors

Sargun Sokhi1,2,3, Cody W Lewis1,2,3, Amirali B Bukhari1,2,3

  • 1Department of Oncology, University of Alberta, Edmonton, AB, Canada.

Insights

Myt1 overexpression confers cancer resistance to cell cycle checkpoint inhibitors by compensating for Cdk1 inhibition. This mechanism leads to reduced mitotic entry and increased cancer cell survival, impacting drug efficacy.

Area of Science:

  • Oncology
  • Molecular Biology
  • Cell Biology

Background:

  • Cell cycle checkpoint kinases are key cancer therapeutic targets.
  • Inhibiting these kinases can induce cancer cell death or sensitize cells to genotoxic therapies.
  • Aberrant Cdk1 activation by kinase inhibitors can lead to mitotic arrest and DNA damage in cancer cells.

Purpose of the Study:

  • Investigate Myt1's role in acquired resistance to various cell cycle kinase inhibitors.
  • Determine if Myt1 overexpression confers resistance to inhibitors of Wee1, ATR, and Chk1.
  • Elucidate the mechanism by which Myt1 confers resistance.

Main Methods:

  • Utilized kinase inhibitors targeting Wee1 (Adavosertib), Wee1+Myt1 (PD166285), ATR (AZD6738), and Chk1 (UCN-01).
  • Assessed the impact of Myt1 overexpression on cancer cell response to these inhibitors.
  • Analyzed effects on premature mitotic entry, mitosis duration, and cell survival rates.

Main Results:

  • Myt1 overexpression confers resistance to Adavosertib, PD166285, UCN-01, and AZD6738.
  • Myt1 compensates for Cdk1 inhibition, reducing premature mitotic entry and mitosis duration.
  • Elevated Myt1 levels increase cancer cell survival rates when treated with these inhibitors.

Conclusions:

  • Myt1 overexpression is a common mechanism of acquired resistance to G2/M checkpoint abrogating drugs.
  • Myt1's ability to compensate for Cdk1 inhibition underlies resistance to multiple kinase inhibitors.
  • Understanding Myt1's role is crucial for overcoming resistance to mitotic catastrophe-inducing cancer therapies.

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