Cross-talk between DNA damage and cell survival checkpoints during G2 and mitosis: pharmacologic implications

Przemyslaw Bozko1, Michal Sabisz, Annette K Larsen

  • 1Laboratory of Molecular and Cellular Pharmacology, Department of Pharmaceutical Technology and Biochemistry, Gdansk University of Technology, Narutowicza Street 11/12, 80-952 Gdansk, Poland.

Insights

Survivin protects tumor cells from apoptosis during mitosis when DNA is damaged. Its effectiveness depends on how the cell cycle checkpoint responds to DNA damage and mitotic spindle activation.

Area of Science:

  • Cell Biology
  • Molecular Oncology

Background:

  • Survivin is a key protein in cell division and apoptosis.
  • DNA-damaging agents induce cell cycle arrest.
  • Tumor cells often have dysregulated cell cycle checkpoints.

Purpose of the Study:

  • To investigate survivin's role in G2/M phase survival signaling in cancer cells treated with DNA-damaging agents.
  • To understand how mitotic spindle interactions affect cell fate.

Main Methods:

  • Used MOLT-4 human T-cell lymphoblastic leukemia cells overexpressing survivin and nonfunctional p53.
  • Treated cells with melphalan (DNA-damaging agent).
  • Utilized caffeine to abrogate checkpoints and nocodazole/taxol to modulate microtubules.

Main Results:

  • Melphalan induced G2 arrest; caffeine abrogation led to mitotic entry and apoptosis.
  • Spindle checkpoint activation with microtubule destabilization (nocodazole) caused apoptosis.
  • Spindle checkpoint activation with microtubule stabilization (taxol) inhibited apoptosis, likely via survivin.

Conclusions:

  • Survivin-mediated protection is dependent on the spindle checkpoint activation pathway.
  • Combinations of DNA-damaging agents and checkpoint abrogators may have variable efficacy based on survivin signaling.

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