Resistance to Spindle Inhibitors in Glioblastoma Depends on STAT3 and Therapy Induced Senescence
Abstract:
While mitotic spindle inhibitors specifically kill proliferating tumor cells without the toxicities of microtubule poisons, resistance has limited their clinical utility. Treating glioblastomas with the spindle inhibitors ispinesib, alisertib, or volasertib creates a subpopulation of therapy induced senescent cells that resist these drugs by relying upon the anti-apoptotic and metabolic effects of activated STAT3. Furthermore, these senescent cells expand the repertoire of cells resistant to these drugs by secreting an array of factors, including TGFβ, which induce proliferating cells to exit mitosis and become quiescent-a state that also resists spindle inhibitors. Targeting STAT3 restores sensitivity to each of these drugs by depleting the senescent subpopulation and inducing quiescent cells to enter the mitotic cycle. These results support a therapeutic strategy of targeting STAT3-dependent therapy-induced senescence to enhance the efficacy of spindle inhibitors for the treatment of glioblastoma.
Highlights:
• Resistance to non-microtubule spindle inhibitors limits their efficacy in glioblastoma and depends on STAT3.• Resistance goes hand in hand with development of therapy induced senescence (TIS).• Spindle inhibitor resistant glioblastomas consist of three cell subpopulations-proliferative, quiescent, and TIS-with proliferative cells sensitive and quiescent and TIS cells resistant.• TIS cells secrete TGFβ, which induces proliferative cells to become quiescent, thereby expanding the population of resistant cells in a spindle inhibitor resistant glioblastoma• Treatment with a STAT3 inhibitor kills TIS cells and restores sensitivity to spindle inhibitors.
Insights
Resistance to spindle inhibitors in glioblastoma is overcome by targeting STAT3. This approach eliminates therapy-induced senescent cells and restores drug sensitivity, improving glioblastoma treatment.
Area of Science:
- Oncology
- Cell Biology
- Cancer Therapeutics
Background:
- Spindle inhibitors show promise against proliferating tumor cells but face resistance.
- Therapy-induced senescence (TIS) and STAT3 activation contribute to glioblastoma resistance.
- Resistant glioblastomas comprise proliferative, quiescent, and TIS cells, with TIS cells secreting TGFβ.
Purpose of the Study:
- To investigate the mechanisms of resistance to non-microtubule spindle inhibitors in glioblastoma.
- To evaluate the role of STAT3 and therapy-induced senescence in glioblastoma drug resistance.
- To explore STAT3 inhibition as a strategy to overcome spindle inhibitor resistance.
Main Methods:
- Treatment of glioblastomas with spindle inhibitors (ispinesib, alisertib, volasertib).
- Analysis of cell subpopulations: proliferative, quiescent, and therapy-induced senescent (TIS).
- Assessment of STAT3 activation, TGFβ secretion, and drug sensitivity.
Main Results:
- Spindle inhibitor treatment induced a subpopulation of TIS cells dependent on STAT3.
- TIS cells secreted TGFβ, promoting quiescence in proliferative cells and expanding resistance.
- STAT3 inhibition depleted TIS cells and restored sensitivity to spindle inhibitors.
Conclusions:
- STAT3-dependent therapy-induced senescence is a key mechanism of glioblastoma resistance to spindle inhibitors.
- Targeting STAT3 effectively overcomes this resistance by eliminating senescent cells and reactivating quiescent cells.
- Combining STAT3 inhibitors with spindle inhibitors offers a promising therapeutic strategy for glioblastoma.
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