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The Clinical Application of Tumor Treating Fields Therapy in Glioblastoma
Published on: April 16, 2019
Temozolomide Resistance in Glioblastoma by NRF2: Protecting the Evil
Karoline Almeida Lima1, Isabeli Yumi Araújo Osawa1, Maria Carolina Clares Ramalho1
1Department of Clinical and Experimental Oncology, Federal University of Sao Paulo (UNIFESP), Sao Paulo 04037-003, Brazil.
Abstract:
The transcription factor NRF2 is constitutively active in glioblastoma, a highly aggressive brain tumor subtype with poor prognosis. Temozolomide (TMZ) is the primary chemotherapeutic agent for this type of tumor treatment, but resistance to this drug is often observed. This review highlights the research that is demonstrating how NRF2 hyperactivation creates an environment that favors the survival of malignant cells and protects against oxidative stress and TMZ. Mechanistically, NRF2 increases drug detoxification, autophagy, DNA repair, and decreases drug accumulation and apoptotic signaling. Our review also presents potential strategies for targeting NRF2 as an adjuvant therapy to overcome TMZ chemoresistance in glioblastoma. Specific molecular pathways, including MAPKs, GSK3β, βTRCP, PI3K, AKT, and GBP, that modulate NRF2 expression leading to TMZ resistance are discussed, along with the importance of identifying NRF2 modulators to reverse TMZ resistance and develop new therapeutic targets. Despite the significant progress in understanding the role of NRF2 in GBM, there are still unanswered questions regarding its regulation and downstream effects. Future research should focus on elucidating the precise mechanisms by which NRF2 mediates resistance to TMZ, and identifying potential novel targets for therapeutic intervention.
Insights
The transcription factor NRF2 promotes glioblastoma survival and resistance to temozolomide (TMZ) chemotherapy. Targeting NRF2 may offer a new strategy to improve glioblastoma treatment outcomes.
Area of Science:
- Neuro-oncology
- Molecular Biology
- Cancer Research
Background:
- Glioblastoma (GBM) is an aggressive brain tumor with poor prognosis.
- Temozolomide (TMZ) is the standard chemotherapy, but resistance is common.
- Constitutive NRF2 activity is observed in GBM, contributing to treatment challenges.
Purpose of the Study:
- To review the role of NRF2 in promoting glioblastoma cell survival and TMZ resistance.
- To explore molecular pathways modulating NRF2 and TMZ resistance.
- To discuss NRF2-targeting strategies as adjuvant therapy for GBM.
Main Methods:
- Literature review of research on NRF2 function in glioblastoma.
- Analysis of NRF2's mechanisms in conferring resistance to TMZ.
- Discussion of signaling pathways (MAPKs, GSK3β, βTRCP, PI3K, AKT, GBP) affecting NRF2.
Main Results:
- NRF2 hyperactivation enhances glioblastoma cell survival by increasing drug detoxification, autophagy, and DNA repair.
- NRF2 activation decreases drug accumulation and apoptotic signaling.
- NRF2 plays a critical role in mediating resistance to temozolomide.
Conclusions:
- Targeting NRF2 presents a promising therapeutic strategy to overcome TMZ chemoresistance in glioblastoma.
- Further research is needed to fully elucidate NRF2 regulation and downstream effects in GBM.
- Identifying NRF2 modulators is crucial for developing novel treatments for glioblastoma.
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