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Updated: Jan 21, 2026

The Clinical Application of Tumor Treating Fields Therapy in Glioblastoma
Published on: April 16, 2019
Tumor-treating fields induce autophagy by blocking the Akt2/miR29b axis in glioblastoma cells
Eun Ho Kim1, Yunhui Jo1,2, Sei Sai3
1Division of Radiation Biomedical Research, Korea Institute of Radiological and Medical Sciences, Seoul, 01812, Republic of Korea.
Abstract:
Tumor-treating fields (TTFs) - a type of electromagnetic field-based therapy using low-intensity electrical fields - has recently been characterized as a potential anticancer therapy for glioblastoma multiforme (GBM). However, the molecular mechanisms involved remain poorly understood. Our results show that the activation of autophagy contributes to the TTF-induced anti-GBM activity in vitro or in vivo and GBM patient stem cells or primary in vivo culture systems. TTF-treatment upregulated several autophagy-related genes (~2-fold) and induced cytomorphological changes. TTF-induced autophagy in GBM was associated with decreased Akt2 expression, not Akt1 or Akt3, via the mTOR/p70S6K pathway. An Affymetrix GeneChip miRNA 4.0 Array analysis revealed that TTFs altered the expression of many microRNAs (miRNAs). TTF-induced autophagy upregulated miR-29b, which subsequently suppressed the Akt signaling pathway. A luciferase reporter assay confirmed that TTFs induced miR-29b to target Akt2, negatively affecting Akt2 expression thereby triggering autophagy. TTF-induced autophagy suppressed tumor growth in GBM mouse models subjected to TTFs as determined by positron emission tomography and computed tomography (PET-CT). GBM patient stem cells and a primary in vivo culture system with high Akt2 levels also showed TTF-induced inhibition. Taken together, our results identified autophagy as a critical cell death pathway triggered by TTFs in GBM and indicate that TTF is a potential treatment option for GBM.
Insights
Tumor-treating fields (TTFs) activate autophagy, a cell death pathway, to fight glioblastoma multiforme (GBM). This electromagnetic therapy downregulates Akt2 via miR-29b, inhibiting GBM growth in preclinical models.
Area of Science:
- Oncology
- Biophysics
- Molecular Biology
Background:
- Glioblastoma multiforme (GBM) is an aggressive brain tumor with limited treatment options.
- Tumor-treating fields (TTFs) show potential as an anticancer therapy for GBM, but underlying mechanisms are unclear.
Purpose of the Study:
- To elucidate the molecular mechanisms by which TTFs exert anti-GBM activity.
- To investigate the role of autophagy and specific signaling pathways in TTF treatment response.
Main Methods:
- In vitro and in vivo studies using GBM cell lines, patient-derived stem cells, and mouse models.
- Analysis of autophagy-related gene expression, cytomorphology, and signaling pathway components (Akt, mTOR/p70S6K).
- MicroRNA (miRNA) profiling and functional validation using luciferase reporter assays.
Main Results:
- TTF treatment upregulated autophagy-related genes and induced characteristic cytomorphological changes in GBM cells.
- TTF-induced autophagy was linked to decreased Akt2 expression via the mTOR/p70S6K pathway.
- TTFs modulated miRNA expression, notably upregulating miR-29b, which targets and suppresses Akt2, thereby promoting autophagy and inhibiting GBM growth.
Conclusions:
- Autophagy is a key cell death pathway activated by TTFs in GBM.
- TTF therapy, through miR-29b and Akt2 regulation, demonstrates significant potential for inhibiting GBM progression.
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