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Effect of eflornithine on mutation frequency in temozolomide-treated U87MG cells
Noymi Yam1, Jason Levin1, Zhengzheng Bao2
1Orbus Therapeutics, Inc., Palo Alto, CA, USA.
Abstract:
Treatment of infiltrative glioma presents a number of unique challenges due to poor penetration of typical chemotherapeutic agents into the infiltrating edge of tumors. The current chemotherapy options include nitrosoureas (e.g., lomustine) and the imidazotetrazine-class monofunctional DNA alkylating agent, temozolomide (TMZ). Both classes of drugs alkylate DNA and have relatively unrestricted passage from blood into brain where infiltrative tumor cells reside. Recent research indicates that secondary mutations detected in the RB and AKT-mTOR signaling pathways are linked to characteristics of recurrent tumors specific to TMZ-treated patients. It has been hypothesized that a decrease in rate of secondary mutations may result in delay of tumor recurrence. To that end, this study was designed to test viability of decreasing secondary mutations by disrupting the cell division cycle using eflornithine, a specific inhibitor of ornithine decarboxylase. U87MG glioblastoma cell line characterized by chromosomal abnormalities commonly attributed to primary cancers was used as a model for this study. The cells were subjected to TMZ treatment for 3 days followed by eflornithine (DFMO) treatment for 4 or 11 days. It was shown that TMZ significantly increased the frequency of mutations in U87MG glioblastoma cells while DFMO-treated cells showed mutation frequency statistically similar to that of the untreated cells on the respective treatment days. The findings of this study provide evidence to support the hypothesis that DFMO may inhibit progression of DNA mutations caused by alkylating chemotherapy agents, such as TMZ.
Insights
Eflornithine (DFMO) may inhibit DNA mutations caused by chemotherapy. This study found DFMO treatment reduced mutations in glioblastoma cells exposed to temozolomide (TMZ), suggesting a way to delay tumor recurrence.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Genetics
Background:
- Infiltrative gliomas are challenging to treat due to poor drug penetration.
- Temozolomide (TMZ) is a common chemotherapy agent that alkylates DNA.
- Secondary mutations in RB and AKT-mTOR pathways are linked to TMZ-resistant recurrent tumors.
Purpose of the Study:
- To investigate if eflornithine (DFMO) can decrease secondary mutations.
- To test the hypothesis that disrupting the cell division cycle with DFMO may delay tumor recurrence.
Main Methods:
- U87MG glioblastoma cells were used as a model system.
- Cells were treated with TMZ for 3 days, followed by DFMO for 4 or 11 days.
- Mutation frequency was analyzed in treated and untreated cells.
Main Results:
- TMZ treatment significantly increased mutation frequency in U87MG cells.
- DFMO treatment resulted in mutation frequencies statistically similar to untreated cells.
- DFMO appeared to inhibit the progression of TMZ-induced DNA mutations.
Conclusions:
- DFMO may counteract DNA mutations induced by alkylating chemotherapy agents like TMZ.
- This finding supports the potential of DFMO in managing recurrent gliomas.
- Further research is warranted to explore DFMO's role in glioma treatment.

