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Updated: Jan 26, 2026

Evaluation of the Spindle Assembly Checkpoint Integrity in Mouse Oocytes
Published on: September 13, 2022
Imbalance of the spindle-assembly checkpoint promotes spindle poison-mediated cytotoxicity with distinct kinetics
Xiaofang Zeng1,2, Wendy Kaichun Xu1,3, Tsun Ming Lok1
1Division of Life Science, Center for Cancer Research, and State Key Laboratory of Molecular Neuroscience, Hong Kong University of Science and Technology, Clear Water Bay, Hong Kong.
Abstract:
Disrupting microtubule dynamics with spindle poisons activates the spindle-assembly checkpoint (SAC) and induces mitotic cell death. However, mitotic exit can occur prematurely without proper chromosomal segregation or cytokinesis by a process termed mitotic slippage. It remains controversial whether mitotic slippage increases the cytotoxicity of spindle poisons or the converse. Altering the SAC induces either mitotic cell death or mitotic slippage. While knockout of MAD2-binding protein p31comet strengthened the SAC and promoted mitotic cell death, knockout of TRIP13 had the opposite effect of triggering mitotic slippage. We demonstrated that mitotic slippage prevented mitotic cell death caused by spindle poisons, but reduced subsequent long-term survival. Weakening of the SAC also reduced cell survival in response to spindle perturbation insufficient for triggering mitotic slippage, of which mitotic exit was characterized by displaced chromosomes during metaphase. In either mitotic slippage or mitotic exit with missegregated chromosomes, cell death occurred only after one cell cycle following mitotic exit and increased progressively during subsequent cell cycles. Consistent with these results, transient inhibition of the SAC using an MPS1 inhibitor acted synergistically with spindle perturbation in inducing chromosome missegregation and cytotoxicity. The specific temporal patterns of cell death after mitotic exit with weakened SAC may reconcile the contradictory results from many previous studies.
Insights
Mitotic slippage, a premature cell cycle exit, prevents immediate death from spindle poisons but reduces long-term survival. Weakening the spindle-assembly checkpoint (SAC) causes slippage or chromosome missegregation, leading to delayed cell death.
Area of Science:
- Cell Biology
- Molecular Biology
- Cancer Research
Background:
- Spindle poisons disrupt microtubule dynamics, activating the spindle-assembly checkpoint (SAC) and inducing mitotic cell death.
- Mitotic slippage, a premature exit from mitosis without proper chromosome segregation, can occur, but its role in the cytotoxicity of spindle poisons is debated.
Purpose of the Study:
- To investigate the relationship between mitotic slippage, SAC function, and the cytotoxicity of spindle poisons.
- To determine how altering SAC components affects cell fate following spindle perturbation.
Main Methods:
- Genetic manipulation of SAC components (p31comet, TRIP13) in cell models.
- Treatment with spindle poisons and MPS1 inhibitors.
- Analysis of mitotic progression, chromosome segregation, and cell death kinetics.
Main Results:
- Mitotic slippage prevented immediate cell death from spindle poisons but reduced long-term survival.
- Weakening the SAC triggered mitotic slippage or mitotic exit with missegregated chromosomes, leading to delayed, progressive cell death in subsequent cell cycles.
- Transient SAC inhibition synergized with spindle perturbation to increase chromosome missegregation and cytotoxicity.
Conclusions:
- Mitotic slippage acts as a survival mechanism against immediate spindle poison toxicity but compromises long-term cell viability.
- The timing of cell death following mitotic exit with a weakened SAC explains previously contradictory findings on spindle poison efficacy.
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