DNA damage response inhibitors enhance tumour treating fields (TTFields) potency in glioma stem-like cells
Aurelie Vanderlinden1, Callum G Jones1, Katie N Myers1
1Division of Clinical Medicine, The University of Sheffield, School of Medicine and Population Health, Sheffield, S10 2RX, UK.
Background:
High-grade gliomas are primary brain cancers with unacceptably low and persistent survival rates of 10-16 months for WHO grade 4 gliomas over the last 40 years, despite surgical resection and DNA-damaging chemo-radiotherapy. More recently, tumour-treating fields therapy (TTFields) has demonstrated modest survival benefit and been clinically approved in several countries. TTFields is thought to mediate anti-cancer activity by primarily disrupting mitosis. However, recent data suggest that TTFields may also attenuate DNA damage repair and replication fork dynamics, providing a potential platform for therapeutic combinations incorporating standard-of-care treatments and targeted DNA damage response inhibitors (DDRi).
Methods:
We have used patient-derived, typically resistant, glioma stem-like cells (GSCs) in combination with the previously validated preclinical Inovitro™ TTFields system together with a number of therapeutic DDRi.
Results:
We show that TTFields robustly activates PARP- and ATR-mediated DNA repair (including PARylation and CHK1 phosphorylation, respectively), whilst combining TTFields with PARP1 or ATR inhibitor treatment leads to significantly reduced clonogenic survival. The potency of each of these strategies is further enhanced by radiation treatment, leading to increased amounts of DNA damage with profound delay in DNA damage resolution.
Conclusion:
To our knowledge, our findings represent the first report of TTFields applied with clinically approved or in-trial DDRi in GSC models and provides a basis for translational studies toward multimodal DDRi/TTFields-based therapeutic strategies for patients with these currently incurable tumours.
Insights
Tumour-Treating Fields (TTFields) therapy activates DNA repair pathways in glioma stem cells. Combining TTFields with DNA damage response inhibitors and radiation significantly enhances anti-cancer effects, offering new therapeutic strategies for brain tumors.
Area of Science:
- Neuro-oncology
- Cancer biology
- Medical physics
Background:
- High-grade gliomas have poor survival rates despite standard treatments.
- Tumour-Treating Fields (TTFields) therapy shows modest survival benefits by disrupting mitosis.
- TTFields may also impact DNA repair and replication, suggesting combination therapy potential.
Purpose of the Study:
- To investigate the combined effects of TTFields and DNA damage response inhibitors (DDRi) in glioma stem-like cells (GSCs).
- To evaluate the potential of TTFields-based multimodal therapeutic strategies for glioblastoma.
Main Methods:
- Utilized patient-derived GSCs and a preclinical TTFields system.
- Administered TTFields in combination with various DDR inhibitors (PARP1, ATR inhibitors).
- Assessed the impact of combined treatments, with and without radiation, on cell survival and DNA damage.
Main Results:
- TTFields robustly activated PARP- and ATR-mediated DNA repair.
- Combining TTFields with PARP1 or ATR inhibitors significantly reduced GSC clonogenic survival.
- Radiation further enhanced the potency of these combined strategies, delaying DNA damage resolution.
Conclusions:
- This study is the first to report TTFields combined with clinically relevant DDRi in GSC models.
- Findings support TTFields and DDRi as a promising multimodal therapeutic strategy for glioblastoma.
- Further translational studies are warranted for these currently incurable brain tumors.
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