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DDRugging glioblastoma: understanding and targeting the DNA damage response to improve future therapies
Ola Rominiyi1,2,3, Spencer J Collis1,2,4
1Weston Park Cancer Centre, Sheffield, UK.
Abstract:
Glioblastoma is the most frequently diagnosed type of primary brain tumour in adults. These aggressive tumours are characterised by inherent treatment resistance and disease progression, contributing to ~ 190 000 brain tumour-related deaths globally each year. Current therapeutic interventions consist of surgical resection followed by radiotherapy and temozolomide chemotherapy, but average survival is typically around 1 year, with < 10% of patients surviving more than 5 years. Recently, a fourth treatment modality of intermediate-frequency low-intensity electric fields [called tumour-treating fields (TTFields)] was clinically approved for glioblastoma in some countries after it was found to increase median overall survival rates by ~ 5 months in a phase III randomised clinical trial. However, beyond these treatments, attempts to establish more effective therapies have yielded little improvement in survival for patients over the last 50 years. This is in contrast to many other types of cancer and highlights glioblastoma as a recognised tumour of unmet clinical need. Previous work has revealed that glioblastomas contain stem cell-like subpopulations that exhibit heightened expression of DNA damage response (DDR) factors, contributing to therapy resistance and disease relapse. Given that radiotherapy, chemotherapy and TTFields-based therapies all impact DDR mechanisms, this Review will focus on our current knowledge of the role of the DDR in glioblastoma biology and treatment. We also discuss the potential of effective multimodal targeting of the DDR combined with standard-of-care therapies, as well as emerging therapeutic targets, in providing much-needed improvements in survival rates for patients.
Insights
Glioblastoma treatment resistance is linked to DNA damage response (DDR) factors in cancer stem cells. Targeting DDR pathways offers a promising strategy to improve survival rates for aggressive brain tumors.
Area of Science:
- Neuro-oncology
- Cancer Biology
- Radiation Oncology
Background:
- Glioblastoma is an aggressive primary brain tumor with poor prognosis and limited treatment options.
- Current treatments (surgery, radiotherapy, chemotherapy) offer survival benefits but are insufficient, highlighting glioblastoma as a major unmet clinical need.
- Glioblastoma stem-like cells possess heightened DNA damage response (DDR) factors, contributing to therapeutic resistance and tumor recurrence.
Purpose of the Study:
- To review the role of DDR mechanisms in glioblastoma biology and treatment resistance.
- To explore the potential of targeting DDR pathways to enhance the efficacy of standard-of-care therapies.
- To discuss emerging therapeutic targets for glioblastoma.
Main Methods:
- Literature review focusing on DNA damage response (DDR) in glioblastoma.
- Analysis of the impact of radiotherapy, chemotherapy, and tumor-treating fields (TTFields) on DDR.
- Discussion of multimodal therapeutic strategies targeting DDR.
Main Results:
- Glioblastoma's inherent resistance and progression are associated with stem-like cells expressing high levels of DDR factors.
- Standard treatments like radiotherapy, chemotherapy, and TTFields interact with DDR pathways.
- Multimodal targeting of DDR alongside standard therapies shows potential for improved patient survival.
Conclusions:
- The DNA damage response (DDR) is a critical factor in glioblastoma's resistance to therapy and its relapse.
- Combining standard treatments with novel strategies that target DDR mechanisms is a promising avenue for improving glioblastoma patient outcomes.
- Further research into emerging DDR-targeting therapies is essential for advancing glioblastoma treatment.
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