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Updated: Aug 26, 2025

Tumor Treating Field Therapy in Combination with Bevacizumab for the Treatment of Recurrent Glioblastoma
Published on: October 27, 2014
Can tumor treating fields induce DNA damage and reduce cell motility in medulloblastoma cell lines?
Objective:
Medulloblastoma (MB) is the most common malignant pediatric brain tumor and accounts for approximately 20% of all pediatric CNS tumors. Current multimodal treatment is associated with a 70%-90% 5-year survival rate; however, the prognosis for patients with tumor dissemination and recurrent MB remains poor. The majority of survivors exhibit long-term neurocognitive complications; thus, more effective and less toxic treatments are critically needed. Tumor treating fields (TTFields) are low-intensity, alternating electric fields that disrupt cell division through physical interactions with key molecules during mitosis. Side effects from TTField therapy are minimal, making it an ideal candidate for MB treatment.
Methods:
To determine if TTFields can be an effective treatment for MB, the authors conducted an in vitro study treating multiple MB cell lines. Three MB molecular subgroups (SHH [sonic hedgehog], group 3, and group 4) were treated for 24, 48, and 72 hours at 100, 200, 300, and 400 kHz. Combinatorial studies were conducted with the small-molecule casein kinase 2 inhibitor CX-4945.
Results:
TTFields reduced MB cell growth with an optimal frequency of 300 kHz, and the most efficacious treatment time was 72 hours. Treatment with TTFields dysregulated actin polymerization and corresponded with a reduction in cell motility and invasion. TTFields also induced DNA damage (γH2AX, 53BP1) that correlated with an increase in apoptotic cells. The authors discovered that CX-4945 works synergistically with TTFields to reduce MB growth. In addition, combining CX-4945 and TTFields increased the cellular actin dysregulation, which correlated with a decrease in MB migration.
Conclusions:
The findings of this study demonstrate that TTFields may be a novel and less toxic method to treat patients with MB.
Insights
Tumor Treating Fields (TTFields) show promise in reducing medulloblastoma (MB) growth and invasion by disrupting cell division and inducing DNA damage. Combining TTFields with CX-4945 enhances these effects, offering a potentially less toxic treatment for pediatric brain tumors.
Area of Science:
- Oncology
- Biophysics
- Molecular Biology
Background:
- Medulloblastoma (MB) is the most common pediatric brain tumor, with poor prognosis for disseminated or recurrent cases.
- Current treatments have significant long-term neurocognitive side effects, necessitating novel, less toxic therapies.
- Tumor Treating Fields (TTFields) are low-intensity electric fields that disrupt mitosis and have minimal side effects.
Purpose of the Study:
- To evaluate the efficacy of TTFields as a treatment for medulloblastoma in vitro.
- To determine optimal TTFields parameters (frequency and duration) for MB cell lines.
- To investigate the synergistic effect of TTFields combined with CX-4945.
Main Methods:
- In vitro treatment of multiple MB cell lines from SHH, group 3, and group 4 subgroups.
- Application of TTFields at various frequencies (100-400 kHz) and durations (24-72 hours).
- Combinatorial treatment studies with the casein kinase 2 inhibitor CX-4945.
Main Results:
- TTFields significantly reduced MB cell growth, with optimal efficacy at 300 kHz and 72 hours.
- TTFields treatment led to actin polymerization dysregulation, decreased cell motility, invasion, and induced DNA damage and apoptosis.
- CX-4945 synergized with TTFields to further inhibit MB growth and migration.
Conclusions:
- TTFields demonstrate potential as a novel, less toxic therapeutic approach for medulloblastoma.
- The combination of TTFields and CX-4945 shows enhanced anti-tumor effects.
- Further research into TTFields for MB treatment is warranted.
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