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Updated: Jul 18, 2026

Cell Death Associated with Abnormal Mitosis Observed by Confocal Imaging in Live Cancer Cells
Published on: August 21, 2013
Taxol-induced mitotic block triggers rapid onset of a p53-independent apoptotic pathway
C M Woods1, J Zhu, P A McQueney
1Department of Pharmacology, Merck Research Laboratories, West Point, Pennsylvania, USA.
Background:
At therapeutic concentrations, the antineoplastic agent taxol selectively perturbs mitotic spindle microtubules. Taxol has recently been shown to induce apoptosis, similar to the mechanism of cell death induced by other antineoplastic agents. However, taxol has shown efficacy against drug-refractory cancers, raising the possibility that this pharmacological agent may trigger an alternative apoptotic pathway.
Materials And Methods:
The kinetics and IC50 of mitotic (M) block, aberrant mitosis, and cytotoxicity following taxol treatment were analyzed in human cell lines as well as normal mouse embryo fibroblasts (MEFs) and MEFs derived from p53-null mice. Apoptosis was followed by DNA gel electrophoresis and by in situ DNA end-labeling (TUNEL).
Results:
Taxol induced two forms of cell cycle arrest: either directly in early M at prophase or, for those cells progressing through aberrant mitosis, arrest in G1 as multimininucleated cells. TUNEL labeling revealed that DNA nicking occurred within 30 min of the arrest in prophase. In contrast, G1-arrested, multimininucleated cells became TUNEL positive only after several days. In the subset of cells that became blocked directly in prophase, both wt p53-expressing and p53-null MEFs responded similarly to taxol, showing rapid onset of DNA nicking and apoptosis. However, p53-null MEFs progressing through aberrant mitosis failed to arrest in the subsequent G1 phase or to become TUNEL positive, and remained viable.
Conclusions:
Taxol induces two forms of cell cycle arrest, which in turn induce two independent apoptotic pathways. Arrest in prophase induces rapid onset of a p53-independent pathway, whereas G1-block and the resulting slow (3-5 days) apoptotic pathway are p53 dependent.
Insights
Taxol induces two cell cycle arrests, triggering distinct apoptosis pathways. Prophase arrest leads to rapid, p53-independent apoptosis, while G1 arrest results in slower, p53-dependent cell death.
Area of Science:
- Oncology
- Cell Biology
- Molecular Biology
Background:
- Taxol (paclitaxel) is an antineoplastic agent targeting mitotic spindle microtubules.
- Taxol induces apoptosis, a programmed cell death mechanism.
- Taxol's efficacy in drug-refractory cancers suggests potential alternative apoptotic pathways.
Purpose of the Study:
- To investigate the distinct apoptotic pathways induced by Taxol.
- To determine the role of p53 in Taxol-mediated apoptosis.
- To analyze the kinetics of cell cycle arrest and apoptosis following Taxol treatment.
Main Methods:
- Analysis of mitotic block, aberrant mitosis, and cytotoxicity in human cell lines and mouse embryo fibroblasts (MEFs).
- Comparison of wild-type and p53-null MEFs to assess p53 dependency.
- Apoptosis detection using DNA gel electrophoresis and TUNEL (terminal deoxynucleotidyl transferase dUTP nick end labeling) assay.
Main Results:
- Taxol induced two cell cycle arrest types: prophase arrest and G1 arrest in multinucleated cells.
- Prophase arrest led to rapid DNA nicking and apoptosis (within 30 min), independent of p53.
- G1-arrested cells showed delayed apoptosis (3-5 days), dependent on p53, with p53-null cells remaining viable.
Conclusions:
- Taxol triggers two independent apoptotic pathways linked to distinct cell cycle arrests.
- A rapid, p53-independent apoptotic pathway is initiated by prophase arrest.
- A slower, p53-dependent apoptotic pathway is associated with G1 arrest.
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