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Updated: Jul 2, 2026

The Clinical Application of Tumor Treating Fields Therapy in Glioblastoma
Published on: April 16, 2019
New (alternative) temozolomide regimens for the treatment of glioma
Wolfgang Wick1, Michael Platten, Michael Weller
1Department of Neurooncology, University Clinic of Heidelberg, Heidelberg, Germany. wolfgang.wick@med.uni-heidelberg.de
Abstract:
One barrier to successful treatment of malignant glioma is resistance to alkylating agents such as temozolomide. The cytotoxic activity of temozolomide and other alkylating agents is believed to manifest largely by the formation of O(6)-methylguanine DNA adducts. Consequently, the primary mechanism of resistance to temozolomide is a function of the activity of the DNA repair enzyme O(6)-methylguanine DNA methyltransferase (MGMT). Fortuitously, MGMT is inactivated after each reaction (i.e., suicide enzyme). Therefore, if the rate of DNA alkylation were to outpace the rate of MGMT protein synthesis, the enzyme could, in theory, be depleted. Several studies have shown that prolonged exposure to temozolomide can deplete MGMT activity in blood cells, a process that could potentially increase the antitumor activity of the drug. To date, however, there are limited data demonstrating the depletion of MGMT activity in tumor tissue exposed to temozolomide. A variety of dosing schedules that increase the duration of exposure and the cumulative dose of temozolomide are currently being investigated for the treatment of glioma, with the goal of improving antitumor activity and overcoming resistance. These alternative dosing regimens have been shown to deplete MGMT activity in peripheral blood mononuclear cells, but the regimen that provides the best balance between enhanced antitumor activity and acceptable hematologic toxicity has yet to be determined.
Insights
Malignant glioma treatment faces resistance from alkylating agents like temozolomide. Depleting the O(6)-methylguanine DNA methyltransferase (MGMT) enzyme may overcome this resistance, but optimal dosing for tumor depletion remains undetermined.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Malignant glioma treatment is hindered by resistance to alkylating agents, notably temozolomide.
- Temozolomide's cytotoxicity stems from O(6)-methylguanine DNA adducts.
- The DNA repair enzyme O(6)-methylguanine DNA methyltransferase (MGMT) is the primary mechanism of resistance.
Purpose of the Study:
- To investigate the potential of depleting MGMT activity to overcome temozolomide resistance in malignant glioma.
- To evaluate alternative temozolomide dosing schedules for enhanced antitumor activity and MGMT depletion.
- To assess the balance between therapeutic efficacy and hematologic toxicity with novel dosing regimens.
Main Methods:
- Review of existing studies on temozolomide exposure and MGMT activity.
- Analysis of data from alternative dosing schedules in glioma treatment.
- Monitoring of MGMT activity in peripheral blood mononuclear cells.
Main Results:
- Prolonged temozolomide exposure can deplete MGMT activity in blood cells.
- Limited data exist on MGMT depletion within tumor tissue.
- Alternative dosing regimens show potential for MGMT depletion in peripheral blood cells.
Conclusions:
- Depleting MGMT activity is a theoretical strategy to enhance temozolomide efficacy against malignant glioma.
- Further research is needed to determine optimal dosing strategies for tumor MGMT depletion.
- Balancing enhanced antitumor effects with acceptable toxicity is crucial for clinical application.
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