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Updated: May 11, 2026

Live Cell Imaging to Assess the Dynamics of Metaphase Timing and Cell Fate Following Mitotic Spindle Perturbations
Published on: September 20, 2019
Centromere fragmentation is a common mitotic defect of S and G2 checkpoint override
Neil Beeharry1, Jerome B Rattner, Juliane P Caviston
1Cancer Biology Program, Fox Chase Cancer Center, Philadelphia, PA, USA. Neil.Beeharry@fccc.edu
Abstract:
DNA damaging agents, including those used in the clinic, activate cell cycle checkpoints, which blocks entry into mitosis. Given that checkpoint override results in cell death via mitotic catastrophe, inhibitors of the DNA damage checkpoint are actively being pursued as chemosensitization agents. Here we explored the effects of gemcitabine in combination with Chk1 inhibitors in a panel of pancreatic cancer cell lines and found variable abilities to override the S phase checkpoint. In cells that were able to enter mitosis, the chromatin was extensively fragmented, as assessed by metaphase spreads and Comet assay. Notably, electron microscopy and high-resolution light microscopy showed that the kinetochores and centromeres appeared to be detached from the chromatin mass, in a manner reminiscent of mitosis with unreplicated genomes (MUGs). Cell lines that were unable to override the S phase checkpoint were able to override a G2 arrest induced by the alkylator MMS or the topoisomerase II inhibitors doxorubicin or etoposide. Interestingly, checkpoint override from the topoisomerase II inhibitors generated fragmented kinetochores (MUGs) due to unreplicated centromeres. Our studies show that kinetochore and centromere fragmentation is a defining feature of checkpoint override and suggests that loss of cell viability is due in part to acentric genomes. Furthermore, given the greater efficacy of forcing cells into premature mitosis from topoisomerase II-mediated arrest as compared with gemcitabine-mediated arrest, topoisomerase II inhibitors maybe more suitable when used in combination with checkpoint inhibitors.
Insights
Inhibiting DNA damage checkpoints can cause cell death. This study found that checkpoint override leads to fragmented kinetochores and centromeres, causing acentric genomes and cell death, especially with topoisomerase II inhibitors.
Area of Science:
- Cell Biology
- Cancer Research
- Molecular Oncology
Background:
- DNA damaging agents activate cell cycle checkpoints, preventing mitosis.
- Checkpoint override can lead to mitotic catastrophe and cell death.
- Inhibitors of DNA damage checkpoints are explored as chemosensitizers.
Purpose of the Study:
- To investigate the effects of gemcitabine combined with Chk1 inhibitors on pancreatic cancer cells.
- To understand the mechanisms of checkpoint override and its consequences.
Main Methods:
- Utilized pancreatic cancer cell lines.
- Assessed S phase checkpoint override.
- Analyzed mitotic catastrophe using metaphase spreads, Comet assay, electron microscopy, and high-resolution light microscopy.
Main Results:
- Variable S phase checkpoint override observed with gemcitabine and Chk1 inhibitors.
- Checkpoint override resulted in fragmented chromatin, kinetochores, and centromeres (mitosis with unreplicated genomes).
- Topoisomerase II inhibitors induced fragmented kinetochores due to unreplicated centromeres, suggesting greater efficacy in combination with checkpoint inhibitors.
Conclusions:
- Kinetochore and centromere fragmentation is a hallmark of checkpoint override.
- Loss of cell viability is partly due to acentric genomes.
- Topoisomerase II inhibitors may be more effective than gemcitabine when combined with checkpoint inhibitors.
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