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Mechanisms of resistance to cabazitaxel
George E Duran1, Yan C Wang1, E Brian Francisco1
1Oncology Division, Department of Medicine, Stanford University School of Medicine, Stanford, California.
Abstract:
We studied mechanisms of resistance to the novel taxane cabazitaxel in established cellular models of taxane resistance. We also developed cabazitaxel-resistant variants from MCF-7 breast cancer cells by stepwise selection in drug alone (MCF-7/CTAX) or drug plus the transport inhibitor PSC-833 (MCF-7/CTAX-P). Among multidrug-resistant (MDR) variants, cabazitaxel was relatively less cross-resistant than paclitaxel and docetaxel (15- vs. 200-fold in MES-SA/Dx5 and 9- vs. 60-fold in MCF-7/TxT50, respectively). MCF-7/TxTP50 cells that were negative for MDR but had 9-fold resistance to paclitaxel were also 9-fold resistant to cabazitaxel. Selection with cabazitaxel alone (MCF-7/CTAX) yielded 33-fold resistance to cabazitaxel, 52-fold resistance to paclitaxel, activation of ABCB1, and 3-fold residual resistance to cabazitaxel with MDR inhibition. The MCF-7/CTAX-P variant did not express ABCB1, nor did it efflux rhodamine-123, BODIPY-labeled paclitaxel, and [(3)H]-docetaxel. These cells are hypersensitive to depolymerizing agents (vinca alkaloids and colchicine), have reduced baseline levels of stabilized microtubules, and impaired tubulin polymerization in response to taxanes (cabazitaxel or docetaxel) relative to MCF-7 parental cells. Class III β-tubulin (TUBB3) RNA and protein were elevated in both MCF-7/CTAX and MCF-7/CTAX-P. Decreased BRCA1 and altered epithelial-mesenchymal transition (EMT) markers are also associated with cabazitaxel resistance in these MCF-7 variants, and may serve as predictive biomarkers for its activity in the clinical setting. In summary, cabazitaxel resistance mechanisms include MDR (although at a lower level than paclitaxel and docetaxel), and alterations in microtubule dynamicity, as manifested by higher expression of TUBB3, decreased BRCA1, and by the induction of EMT.
Insights
Mechanisms of cabazitaxel resistance in breast cancer cells involve multidrug resistance (MDR) and altered microtubule dynamics. BRCA1 and epithelial-mesenchymal transition (EMT) markers may predict cabazitaxel efficacy.
Area of Science:
- Oncology
- Pharmacology
- Molecular Biology
Background:
- Cabazitaxel is a novel taxane used in prostate cancer treatment.
- Understanding resistance mechanisms is crucial for optimizing therapy.
- Established cellular models are key to studying drug resistance.
Purpose of the Study:
- To investigate the mechanisms of cabazitaxel resistance in taxane-resistant cellular models.
- To develop and characterize cabazitaxel-resistant breast cancer cell lines.
- To identify potential biomarkers for cabazitaxel resistance.
Main Methods:
- Stepwise drug selection to create cabazitaxel-resistant MCF-7 breast cancer variants (MCF-7/CTAX and MCF-7/CTAX-P).
- Assessment of cross-resistance to paclitaxel and docetaxel in multidrug-resistant (MDR) variants.
- Analysis of ABCB1 expression, drug efflux, microtubule dynamics, TUBB3, BRCA1, and EMT markers.
Main Results:
- Cabazitaxel showed lower cross-resistance compared to paclitaxel and docetaxel in MDR variants.
- Cabazitaxel resistance involved alterations in microtubule dynamics, increased TUBB3, and decreased BRCA1.
- Epithelial-mesenchymal transition (EMT) markers were altered in resistant cells, suggesting potential predictive value.
Conclusions:
- Cabazitaxel resistance mechanisms include MDR and changes in microtubule dynamics.
- Elevated TUBB3, decreased BRCA1, and EMT induction are associated with cabazitaxel resistance.
- BRCA1 and EMT markers may serve as predictive biomarkers for cabazitaxel activity.
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