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Resistance to Taxol in lung cancer cells associated with increased microtubule dynamics
A Gonçalves1, D Braguer, K Kamath
1Unité Propre de Recherche de l'Enseignement Supérieur-A Centre National de la Recherche Scientifique 6032, Université de la Mediterranée, Marseille, France.
Abstract:
Microtubule dynamics are crucial for mitotic spindle assembly and chromosome movement. Suppression of dynamics by Taxol appears responsible for the drug's potent ability to inhibit mitosis and cell proliferation. Although Taxol is an important chemotherapeutic agent, development of resistance limits its efficacy. To examine the role of microtubule dynamics in Taxol resistance, we measured the dynamic instability of individual rhodamine-labeled microtubules in Taxol-sensitive and -resistant living human cancer cells. Taxol-resistant A549-T12 and -T24 cell lines were selected from a human lung carcinoma cell line, A549. They are, respectively, 9- and 17-fold resistant to Taxol and require low concentrations of Taxol for proliferation. We found that microtubule dynamic instability was significantly increased in the Taxol-resistant cells. For example, with A549-T12 cells in the absence of added Taxol, microtubule dynamicity increased 57% as compared with A549 cells. The length and rate of shortening excursions increased 75 and 59%, respectively. These parameters were further increased in A549-T24 cells, with overall dynamicity increasing by 167% compared with parental cells. Thus, the decreased Taxol-sensitivity of these cells can be explained by their increased microtubule dynamics. When grown without Taxol, A549-T12 cells were blocked at the metaphase/anaphase transition and displayed abnormal mitotic spindles with uncongressed chromosomes. In the presence of 2-12 nM Taxol, the cells grew normally, suggesting that mitotic block resulted from excessive microtubule dynamics. These results indicate that microtubule dynamics play an important role in Taxol resistance, and that both excessively rapid dynamics and suppressed dynamics impair mitotic spindle function and inhibit proliferation.
Insights
Increased microtubule dynamics contribute to Taxol resistance in cancer cells. Both excessively rapid and suppressed microtubule dynamics can impair mitotic spindle function and inhibit cell proliferation.
Area of Science:
- Cell Biology
- Cancer Research
- Pharmacology
Background:
- Microtubule dynamics are essential for cell division (mitosis).
- Taxol (paclitaxel) inhibits mitosis by suppressing microtubule dynamics, making it a key chemotherapy drug.
- Drug resistance limits Taxol's effectiveness in cancer treatment.
Purpose of the Study:
- To investigate the role of microtubule dynamics in Taxol resistance.
- To compare microtubule dynamic instability in Taxol-sensitive and Taxol-resistant human cancer cells.
Main Methods:
- Cultured Taxol-sensitive (A549) and Taxol-resistant (A549-T12, A549-T24) human lung carcinoma cell lines.
- Measured dynamic instability of individual rhodamine-labeled microtubules in living cells.
- Observed mitotic spindle and chromosome behavior in the presence and absence of Taxol.
Main Results:
- Microtubule dynamic instability was significantly increased in Taxol-resistant cell lines (A549-T12 and A549-T24) compared to sensitive cells.
- Overall microtubule dynamicity increased by 57% in A549-T12 and 167% in A549-T24 cells.
- Taxol-resistant cells grown without Taxol exhibited mitotic arrest and abnormal spindles, which normalized at low Taxol concentrations.
Conclusions:
- Increased microtubule dynamics are a key mechanism of Taxol resistance.
- Both excessively rapid and suppressed microtubule dynamics can disrupt mitotic spindle function and inhibit cell proliferation.
- Understanding microtubule dynamics is crucial for overcoming Taxol resistance in cancer therapy.