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Published on: June 9, 2020
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.
Abstract:
Loss of wild-type p53 function is widely accepted to be permissive for the development of multinucleated giant cells. However, whether therapy-induced multinucleation is associated with cancer cell death or survival remains controversial. Herein, we demonstrate that exposure of p53-deficient or p21WAF1 (p21)-deficient solid tumor-derived cell lines to ionizing radiation (between 2 and 8 Gy) results in the development of multinucleated giant cells that remain adherent to the culture dish for long times post-irradiation. Somewhat surprisingly, single-cell observations revealed that virtually all multinucleated giant cells that remain adherent for the duration of the experiments (up to three weeks post-irradiation) retain viability and metabolize 3-(4,5-dimethylthiazol-2-yl)-2,5-diphenyl-tetrazolium bromide (MTT), and the majority (>60%) exhibit DNA synthesis. We further report that treatment of multinucleated giant cells with pharmacological activators of apoptosis (e.g., sodium salicylate) triggers their demise. Our observations reinforce the notion that radiation-induced multinucleation may reflect a survival mechanism for p53/p21-deficient cancer cells. With respect to evaluating radiosensitivity, our observations underscore the importance of single-cell experimental approaches (e.g., single-cell MTT) as the creation of viable multinucleated giant cells complicates the interpretation of the experimental data obtained by commonly-used multi-well plate colorimetric assays.
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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