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Long-term Live-cell Imaging to Assess Cell Fate in Response to Paclitaxel
Published on: May 14, 2018
Paclitaxel targets FOXM1 to regulate KIF20A in mitotic catastrophe and breast cancer paclitaxel resistance
P Khongkow1, A R Gomes1, C Gong1,2
1Department of Surgery and Cancer, Imperial College London, Hammersmith Hospital Campus, London, UK.
Abstract:
FOXM1 has been implicated in taxane resistance, but the molecular mechanism involved remains elusive. In here, we show that FOXM1 depletion can sensitize breast cancer cells and mouse embryonic fibroblasts into entering paclitaxel-induced senescence, with the loss of clonogenic ability, and the induction of senescence-associated β-galactosidase activity and flat cell morphology. We also demonstrate that FOXM1 regulates the expression of the microtubulin-associated kinesin KIF20A at the transcriptional level directly through a Forkhead response element (FHRE) in its promoter. Similar to FOXM1, KIF20A expression is downregulated by paclitaxel in the sensitive MCF-7 breast cancer cells and deregulated in the paclitaxel-resistant MCF-7Tax(R) cells. KIF20A depletion also renders MCF-7 and MCF-7Tax(R) cells more sensitive to paclitaxel-induced cellular senescence. Crucially, resembling paclitaxel treatment, silencing of FOXM1 and KIF20A similarly promotes abnormal mitotic spindle morphology and chromosome alignment, which have been shown to induce mitotic catastrophe-dependent senescence. The physiological relevance of the regulation of KIF20A by FOXM1 is further highlighted by the strong and significant correlations between FOXM1 and KIF20A expression in breast cancer patient samples. Statistical analysis reveals that both FOXM1 and KIF20A protein and mRNA expression significantly associates with poor survival, consistent with a role of FOXM1 and KIF20A in paclitaxel action and resistance. Collectively, our findings suggest that paclitaxel targets the FOXM1-KIF20A axis to drive abnormal mitotic spindle formation and mitotic catastrophe and that deregulated FOXM1 and KIF20A expression may confer paclitaxel resistance. These findings provide insights into the underlying mechanisms of paclitaxel resistance and have implications for the development of predictive biomarkers and novel chemotherapeutic strategies for paclitaxel resistance.
Insights
Forkhead box M1 (FOXM1) depletion sensitizes breast cancer cells to paclitaxel by downregulating Kinesin family member 20A (KIF20A). This FOXM1-KIF20A axis disruption promotes mitotic catastrophe and paclitaxel resistance.
Area of Science:
- Oncology
- Molecular Biology
- Cell Biology
Background:
- Taxane resistance is a significant challenge in breast cancer treatment.
- The precise molecular mechanisms underlying taxane resistance, particularly involving FOXM1, are not fully understood.
Purpose of the Study:
- To elucidate the role of FOXM1 in paclitaxel resistance in breast cancer.
- To identify downstream targets of FOXM1 involved in paclitaxel sensitivity and resistance.
Main Methods:
- Depletion of FOXM1 and KIF20A using gene silencing techniques.
- Assessment of paclitaxel-induced senescence, clonogenic ability, and cell morphology.
- Analysis of mitotic spindle and chromosome alignment.
- Correlation analysis of FOXM1 and KIF20A expression in patient samples.
Main Results:
- FOXM1 depletion sensitizes breast cancer cells to paclitaxel, inducing senescence.
- FOXM1 directly regulates KIF20A transcription via a Forkhead response element.
- Both FOXM1 and KIF20A expression correlate with poor patient survival and paclitaxel resistance.
- Silencing FOXM1 or KIF20A leads to abnormal mitotic spindle formation and chromosome alignment.
Conclusions:
- Paclitaxel resistance may involve the FOXM1-KIF20A signaling axis.
- Dysregulation of FOXM1 and KIF20A contributes to paclitaxel resistance through mitotic catastrophe.
- FOXM1 and KIF20A represent potential biomarkers for predicting paclitaxel response and therapeutic targets.
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