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Live Cell Imaging to Assess the Dynamics of Metaphase Timing and Cell Fate Following Mitotic Spindle Perturbations
Published on: September 20, 2019
Mitotic catastrophe and cell death induced by depletion of centrosomal proteins
1Department of Molecular Pathobiochemistry, Gifu University Graduate School of Medicine, 1-1 Yanagido, Gifu, Japan.
Abstract:
Mitotic catastrophe, which refers to cell death or its prologue triggered by aberrant mitosis, can be induced by a heterogeneous group of stimuli, including chromosome damage or perturbation of the mitotic apparatus. We investigated the mechanism of mitotic catastrophe and cell death induced by depletion of centrosomal proteins that perturbs microtubule organization. We transfected cells harboring wild-type or mutated p53 with siRNAs targeting Aurora A, ninein, TOG, TACC3, γ-tubulin, or pericentriolar material-1, and monitored the effects on cell death. Knockdown of Aurora A, ninein, TOG, and TACC3 led to cell death, regardless of p53 status. Knockdown of Aurora A, ninein, and TOG, led to aberrant spindle formation and subsequent cell death, which was accompanied by several features of apoptosis, including nuclear condensation and Annexin V binding in HeLa cells. During this process, cleavage of poly(ADP-ribose) polymerase-1, caspase-3, and caspase-9 was detected, but cleavage of caspase-8 was not. Cell death, monitored by time-lapse imaging, occurred during both interphase and M phase. In cells depleted of a centrosomal protein (Aurora A, ninein, or TOG), the rate of cell death was higher if the cells were cotransfected with siRNA against BubR1 or Mad2 than if they were transfected with siRNA against Bub1 or a control siRNA. These results suggest that metaphase arrest is necessary for the mitotic catastrophe and cell death caused by depletion of centrosomal proteins. Knockdown of centrosomal proteins led to increased phosphorylation of Chk2. Enhanced p-Chk2 localization was also observed at the centrosome in cells arrested in M phase, as well as in the nuclei of dying cells. Cotransfection of siRNAs against Chk2, in combination with depletion of a centrosomal protein, decreased the amount of cell death. Thus, Chk2 activity is indispensable for apoptosis after mitotic catastrophe induced by depletion of centrosomal proteins that perturbs microtubule organization.
Insights
Depleting centrosomal proteins triggers cell death via mitotic catastrophe, requiring Chk2 kinase activity for apoptosis. This process involves aberrant mitosis and metaphase arrest, highlighting Chk2
Area of Science:
- Cell Biology
- Molecular Biology
- Cancer Research
Background:
- Mitotic catastrophe is cell death induced by abnormal mitosis.
- Centrosomal proteins are crucial for microtubule organization and cell division.
Purpose of the Study:
- Investigate the mechanism of mitotic catastrophe and cell death.
- Determine the role of centrosomal protein depletion in cell death.
- Elucidate the involvement of Chk2 kinase in this process.
Main Methods:
- siRNA-mediated knockdown of centrosomal proteins (Aurora A, ninein, TOG, TACC3, γ-tubulin, PCM-1).
- Cell viability assays and time-lapse imaging.
- Analysis of apoptotic markers (Annexin V, caspase cleavage) and Chk2 phosphorylation.
- Cotransfection with siRNAs targeting cell cycle regulators (BubR1, Mad2, Bub1) and Chk2.
Main Results:
- Knockdown of Aurora A, ninein, TOG, and TACC3 induced cell death, irrespective of p53 status.
- Depletion of Aurora A, ninein, and TOG caused aberrant spindle formation and apoptosis-like features.
- Metaphase arrest was necessary for mitotic catastrophe induced by centrosomal protein depletion.
- Chk2 kinase activity was essential for apoptosis following mitotic catastrophe.
Conclusions:
- Centrosomal protein depletion triggers mitotic catastrophe and cell death.
- Chk2 kinase is indispensable for apoptosis mediated by centrosomal protein loss.
- Targeting Chk2 may offer therapeutic strategies for cancers with disrupted microtubule organization.
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