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Updated: May 2, 2026

Live Imaging to Study Microtubule Dynamic Instability in Taxane-resistant Breast Cancers
Published on: February 20, 2017
The taccalonolides and paclitaxel cause distinct effects on microtubule dynamics and aster formation
April L Risinger1, Stephen M Riffle, Manu Lopus
1Department of Pharmacology, University of Texas Health Science Center at San Antonio, San Antonio, TX 78229, USA. risingera@uthscsa.edu.
Background:
Microtubule stabilizers suppress microtubule dynamics and, at the lowest antiproliferative concentrations, disrupt the function of mitotic spindles, leading to mitotic arrest and apoptosis. At slightly higher concentrations, these agents cause the formation of multiple mitotic asters with distinct morphologies elicited by different microtubule stabilizers.
Results:
We tested the hypothesis that two classes of microtubule stabilizing drugs, the taxanes and the taccalonolides, cause the formation of distinct aster structures due, in part, to differential effects on microtubule dynamics. Paclitaxel and the taccalonolides suppressed the dynamics of microtubules formed from purified tubulin as well as in live cells. Both agents suppressed microtubule dynamic instability, with the taccalonolides having a more pronounced inhibition of microtubule catastrophe, suggesting that they stabilize the plus ends of microtubules more effectively than paclitaxel. Live cell microscopy was also used to evaluate the formation and resolution of asters after drug treatment. While each drug had similar effects on initial formation, substantial differences were observed in aster resolution. Paclitaxel-induced asters often coalesced over time resulting in fewer, larger asters whereas numerous compact asters persisted once they were formed in the presence of the taccalonolides.
Conclusions:
We conclude that the increased resistance of microtubule plus ends to catastrophe may play a role in the observed inability of taccalonolide-induced asters to coalesce during mitosis, giving rise to the distinct morphologies observed after exposure to these agents.
Insights
Microtubule stabilizers like taxanes and taccalonolides disrupt cell division by affecting microtubule dynamics. Taccalonolides create distinct mitotic asters that do not coalesce, unlike those formed by paclitaxel.
Area of Science:
- Cell Biology
- Pharmacology
- Biochemistry
Background:
- Microtubule stabilizers disrupt mitotic spindle function, causing cell cycle arrest and apoptosis.
- At higher concentrations, these agents induce distinct mitotic aster morphologies.
Purpose of the Study:
- To investigate if taxanes and taccalonolides produce different aster structures due to varied effects on microtubule dynamics.
- To compare the stabilization effects of paclitaxel and taccalonolides on microtubule dynamics.
Main Methods:
- Studied microtubule dynamics using purified tubulin and live cells.
- Utilized live cell microscopy to observe aster formation and resolution after drug treatment.
Main Results:
- Both paclitaxel and taccalonolides suppressed microtubule dynamics and dynamic instability.
- Taccalonolides more strongly inhibited microtubule catastrophe, indicating superior plus-end stabilization compared to paclitaxel.
- Paclitaxel-induced asters coalesced, while taccalonolide-induced asters persisted as distinct structures.
Conclusions:
- Differential stabilization of microtubule plus ends by taccalonolides contributes to their distinct aster morphologies.
- The resistance of microtubule plus ends to catastrophe may prevent aster coalescence during mitosis.
Related Concept Videos
Drugs that Stabilize Microtubules
Drugs that Destabilize Microtubules
Microtubule Instability
Microtubule Instability
Destabilization of Microtubules
Microtubule Associated Proteins (MAPs)

