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DNA repair in personalized brain cancer therapy with temozolomide and nitrosoureas
Bernd Kaina1, Markus Christmann1
1Institute of Toxicology, University Medical Center Mainz, Obere Zahlbacher Str. 67, D-55131 Mainz, Germany.
Abstract:
Alkylating agents have been used since the 60ties in brain cancer chemotherapy. Their target is the DNA and, although the DNA of normal and cancer cells is damaged unselectively, they exert tumor-specific killing effects because of downregulation of some DNA repair activities in cancer cells. Agents exhibiting methylating properties (temozolomide, procarbazine, dacarbazine, streptozotocine) induce at least 12 different DNA lesions. These are repaired by damage reversal mechanisms involving the alkyltransferase MGMT and the alkB homologous protein ALKBH2, and through base excision repair (BER). There is a strong correlation between the MGMT expression level and therapeutic response in high-grade malignant glioma, supporting the notion that O6-methylguanine and, for nitrosoureas, O6-chloroethylguanine are the most relevant toxic damages at therapeutically relevant doses. Since MGMT has a significant impact on the outcome of anti-cancer therapy, it is a predictive marker of the effectiveness of methylating anticancer drugs, and clinical trials are underway aimed at assessing the influence of MGMT inhibition on the therapeutic success. Other DNA repair factors involved in methylating drug resistance are mismatch repair, DNA double-strand break (DSB) repair by homologous recombination (HR) and DSB signaling. Base excision repair and ALKBH2 might also contribute to alkylating drug resistance and their downregulation may have an impact on drug sensitivity notably in cells expressing a high amount of MGMT and at high doses of temozolomide, but the importance in a therapeutic setting remains to be shown. MGMT is frequently downregulated in cancer cells (up to 40% in glioblastomas), which is due to CpG promoter methylation. Astrocytoma (grade III) are frequently mutated in isocitrate dehydrogenase (IDH1). These tumors show a surprisingly good therapeutic response. IDH1 mutation has an impact on ALKBH2 activity thus influencing DNA repair. A master switch between survival and death is p53, which often retains transactivation activity (wildtype) in malignant glioma. The role of p53 in regulating survival via DNA repair and the routes of death are discussed and conclusions as to cancer therapeutic options were drawn.
Insights
Methylating chemotherapy agents target DNA, but cancer cells can resist treatment by downregulating DNA repair pathways like MGMT. Inhibiting MGMT may improve brain cancer therapy outcomes.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Alkylating agents are mainstays in brain cancer chemotherapy, targeting cancer cell DNA.
- Tumor-specific killing effects arise from cancer cells' reduced DNA repair capacity compared to normal cells.
- Methylating agents induce numerous DNA lesions, primarily repaired by MGMT and ALKBH2 via base excision repair (BER).
Purpose of the Study:
- To explore the role of DNA repair mechanisms, particularly MGMT, in the efficacy of methylating anticancer drugs.
- To investigate the impact of MGMT expression levels and inhibition on therapeutic response in high-grade malignant glioma.
- To discuss the influence of other DNA repair factors and genetic mutations (IDH1) on drug resistance and therapeutic options.
Main Methods:
- Review of DNA repair pathways involved in resistance to methylating agents.
- Analysis of the correlation between MGMT expression and therapeutic response in glioma.
- Discussion of the role of p53, IDH1 mutations, and other DNA repair factors in drug sensitivity.
Main Results:
- MGMT expression level strongly correlates with therapeutic response in high-grade glioma, indicating O6-methylguanine and O6-chloroethylguanine as key toxic lesions.
- MGMT downregulation, often due to CpG promoter methylation, occurs in up to 40% of glioblastomas.
- IDH1 mutations in astrocytoma impact ALKBH2 activity, influencing DNA repair and potentially contributing to observed therapeutic responses.
Conclusions:
- MGMT is a predictive marker for methylating anticancer drug effectiveness, with ongoing trials exploring MGMT inhibition.
- Other DNA repair pathways (MMR, HR, BER) and factors like ALKBH2 and p53 play roles in drug resistance and sensitivity.
- Understanding these complex DNA repair dynamics and genetic alterations is crucial for optimizing brain cancer therapeutic strategies.
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