Multinucleated Giant Cancer Cells Produced in Response to Ionizing Radiation Retain Viability and Replicate Their

Razmik Mirzayans1, Bonnie Andrais2, April Scott3

  • 1Department of Oncology, University of Alberta, Cross Cancer Institute, Edmonton, AB T6G 1Z2, Canada. razmik.mirzayans@ahs.ca.

Insights

Radiation induces multinucleated giant cells in p53/p21-deficient cancers. These viable cells may represent a survival mechanism, complicating standard radiosensitivity assays.

Area of Science:

  • Oncology
  • Cell Biology
  • Radiation Biology

Background:

  • Loss of wild-type p53 function is linked to multinucleated giant cell formation.
  • The role of therapy-induced multinucleation in cancer cell fate (death vs. survival) is debated.

Purpose of the Study:

  • To investigate the viability and behavior of multinucleated giant cells induced by ionizing radiation in p53/p21-deficient cancer cells.
  • To assess the implications of multinucleated giant cell formation for radiosensitivity testing.

Main Methods:

  • Exposing p53-deficient or p21WAF1 (p21)-deficient solid tumor cell lines to ionizing radiation (2-8 Gy).
  • Utilizing single-cell observations to monitor cell viability, metabolism (MTT assay), and DNA synthesis over three weeks.
  • Treating multinucleated giant cells with pharmacological apoptosis inducers (e.g., sodium salicylate).

Main Results:

  • Ionizing radiation induced long-term adherent multinucleated giant cells in p53/p21-deficient cell lines.
  • The majority of these multinucleated giant cells remained viable, metabolized MTT, and exhibited DNA synthesis.
  • Pharmacological apoptosis activators induced cell death in these multinucleated giant cells.

Conclusions:

  • Radiation-induced multinucleation in p53/p21-deficient cancer cells may serve as a survival mechanism.
  • Single-cell assays are crucial for accurate radiosensitivity evaluation, as multinucleated giant cells can confound multi-well plate assays.

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