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Published on: August 25, 2023
Whole-genome duplication increases tumor cell sensitivity to MPS1 inhibition
Mohamed Jemaà1, Gwenola Manic2, Gwendaline Lledo1
1CRBM, CNRS UMR5237, Université de Montpellier, Montpellier, France.
Abstract:
Several lines of evidence indicate that whole-genome duplication resulting in tetraploidy facilitates carcinogenesis by providing an intermediate and metastable state more prone to generate oncogenic aneuploidy. Here, we report a novel strategy to preferentially kill tetraploid cells based on the abrogation of the spindle assembly checkpoint (SAC) via the targeting of TTK protein kinase (better known as monopolar spindle 1, MPS1). The pharmacological inhibition as well as the knockdown of MPS1 kills more efficiently tetraploid cells than their diploid counterparts. By using time-lapse videomicroscopy, we show that tetraploid cells do not survive the aborted mitosis due to SAC abrogation upon MPS1 depletion. On the contrary diploid cells are able to survive up to at least two more cell cycles upon the same treatment. This effect might reflect the enhanced difficulty of cells with whole-genome doubling to tolerate a further increase in ploidy and/or an elevated level of chromosome instability in the absence of SAC functions. We further show that MPS1-inhibited tetraploid cells promote mitotic catastrophe executed by the intrinsic pathway of apoptosis, as indicated by the loss of mitochondrial potential, the release of the pro-apoptotic cytochrome c from mitochondria, and the activation of caspases. Altogether, our results suggest that MPS1 inhibition could be used as a therapeutic strategy for targeting tetraploid cancer cells.
Insights
Targeting TTK protein kinase (MPS1) preferentially eliminates tetraploid cells, which are prone to cancer. Inhibiting MPS1 causes mitotic catastrophe in tetraploid cells but spares diploid cells, offering a potential cancer therapy.
Area of Science:
- Cell biology
- Cancer research
- Molecular oncology
Background:
- Whole-genome duplication (tetraploidy) creates a metastable state that promotes cancer development.
- Tetraploid cells are more susceptible to oncogenic aneuploidy.
- Targeting cancer-specific vulnerabilities is a key therapeutic strategy.
Purpose of the Study:
- To investigate a novel strategy for selectively eliminating tetraploid cancer cells.
- To explore the role of TTK protein kinase (MPS1) in tetraploid cell viability.
- To determine if MPS1 inhibition can be a therapeutic approach against tetraploid cancers.
Main Methods:
- Pharmacological inhibition and knockdown of MPS1.
- Time-lapse videomicroscopy to observe cell division and survival.
- Analysis of apoptosis markers (mitochondrial potential, cytochrome c release, caspase activation).
Main Results:
- MPS1 inhibition preferentially killed tetraploid cells compared to diploid cells.
- Tetraploid cells underwent mitotic catastrophe and apoptosis upon MPS1 depletion.
- Diploid cells tolerated MPS1 inhibition for at least two cell cycles.
Conclusions:
- Abrogation of the spindle assembly checkpoint (SAC) by MPS1 inhibition is a viable strategy to target tetraploid cells.
- MPS1 inhibition induces mitotic catastrophe and apoptosis in tetraploid cancer cells.
- Targeting MPS1 represents a promising therapeutic avenue for cancers with tetraploid populations.
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