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Suppression of centromere dynamics by Taxol in living osteosarcoma cells
Jonathan Kelling1, Kevin Sullivan, Leslie Wilson
1Department of Molecular, Cellular, and Developmental Biology and the Neuroscience Research Institute, University of California Santa Barbara, Santa Barbara, California 93106, USA.
Abstract:
Taxol potently blocks mitosis at the transition from metaphase to anaphase, leading to apoptosis in many types of tumor cells. However, the precise mechanism of action of Taxol is not understood. Here we have tested the hypothesis that a primary mechanism of action of Taxol involves suppression of spindle microtubule dynamics. We have used centromere-binding protein B coupled to green fluorescent protein as a marker for the kinetochores and centromeres of chromosomes and analyzed the effects of low Taxol concentrations on the dynamics of centromeres during metaphase of mitosis in living human osteosarcoma (U2OS) cells by quantitative time-lapse confocal microscopy. In the absence of Taxol, the centromere pairs on attached sister chromatids alternately stretch apart and relax back together approximately 1.2 times/min due to tension on the kinetochores produced by the spindle microtubules (referred to here as centromere dynamics). We found that 50-100 nM Taxol significantly suppressed centromere dynamics. For example, Taxol reduced the mean separation distance between the sister centromeres from 0.73 to 0.65 microm, a distance equivalent to that observed in the complete absence of microtubules. The frequency of transitions between stretching and relaxing was also significantly diminished by Taxol (by 27%-35%). The suppressive effects of Taxol on centromere dynamics were associated with maximal accumulation of cells at mitosis (63%), a >90% block of the metaphase/anaphase transition, and complete inhibition of cell proliferation. The data strongly support the idea that the inhibition of centromere dynamics by Taxol prevents silencing of the mitotic spindle surveillance (checkpoint) mechanism. Because Taxol strongly suppresses microtubule dynamics, the data also indicate that centromere dynamics can be accounted for by microtubule dynamics and may not require significant energetic contributions from microtubule motors. The strict correlation between the degree of suppression of centromere dynamics by Taxol and the degree of mitotic block strongly indicates that the primary mechanism responsible for the mitotic block by Taxol in U2OS cells involves suppression of the polymerization dynamics of kinetochore microtubules.
Insights
Taxol, a cancer drug, blocks cell division by suppressing centromere dynamics, which are driven by microtubule polymerization. This mechanism prevents cells from progressing through mitosis and inhibits proliferation.
Area of Science:
- Cell Biology
- Molecular Pharmacology
- Cancer Research
Background:
- Taxol is a potent anti-mitotic drug that induces apoptosis in tumor cells.
- The precise mechanism by which Taxol inhibits mitosis remains incompletely understood.
- Taxol's action at the metaphase-anaphase transition suggests interference with spindle-dependent processes.
Purpose of the Study:
- To test the hypothesis that Taxol's primary mechanism involves suppression of spindle microtubule dynamics.
- To investigate the effects of low Taxol concentrations on centromere dynamics during mitosis.
- To elucidate the relationship between centromere dynamics and mitotic progression.
Main Methods:
- Utilized centromere-binding protein B-green fluorescent protein as a kinetochore marker in human osteosarcoma (U2OS) cells.
- Employed quantitative time-lapse confocal microscopy to analyze centromere dynamics during metaphase.
- Measured centromere separation distance and transition frequency in the presence and absence of Taxol.
Main Results:
- Taxol (50-100 nM) significantly suppressed centromere dynamics, reducing separation distance and transition frequency.
- Suppressed centromere dynamics correlated with maximal mitotic arrest (63%) and a >90% block of the metaphase/anaphase transition.
- Taxol treatment led to complete inhibition of cell proliferation.
Conclusions:
- Taxol's primary mechanism involves the suppression of kinetochore microtubule polymerization dynamics, leading to inhibited centromere dynamics.
- Inhibition of centromere dynamics by Taxol prevents the silencing of the mitotic spindle checkpoint.
- Centromere dynamics are primarily driven by microtubule dynamics, with minimal contribution from motor proteins.
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