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Author Spotlight: Innovative Cancer Therapies with Iron Oxide Nanoparticles for Glioblastoma Treatment
Published on: September 27, 2024
Radiotherapy for glioblastoma: clinical issues and nanotechnology strategies
Ruiqi Li1, Haihong Wang1, Qing Liang1
1Cancer Center, Union Hospital, Tongji Medical College, Huazhong University of Science & Technology, Wuhan 430022, P. R. China. jhrenmed@hust.edu.cn.
Abstract:
Glioblastoma multiforme (GBM) is the most common primary brain cancer in adults with poor prognosis. Despite the current state of knowledge on its genetic characteristics, relatively little progress has been made in improving the treatment of patients with this fatal disease. Radiotherapy (RT) has been identified as a crucial treatment for GBM following surgical resection to improve both local control and survival. Unfortunately, radiotherapy resistance is frequently observed in GBM patients, which is the major reason for the high mortality rate of cancer patients. Radioresistance of GBM is often multifactorial and heterogeneous, and associated with the recurrence of GBM after surgery. Nanotechnology has gained increasing attention and has already been investigated for optimization of radiosensitization due to the unique properties of nanobiomaterials, such as photoelectric decay characteristics or potential as carriers for drug delivery to the central nervous system. A large body of preclinical data has accumulated over the past several years, in which nanotechnology-based strategies exhibit promising potential to enhance the radiosensitivity of GBM, both in cellular and animal models. In this review, we summarize the mechanisms of GBM radioresistance, including tumor cell-intrinsic factors as well as tumor microenvironment (TME). We further discuss current nano-biotechnology-based radiosensitizer in the treatment of GBM, summarize the latest findings, highlight challenges, and put forward prospects for the future of nano-radiosensitizers. These data suggest that nanotechnology has the potential to address many of the clinical challenges and nanobiomaterials would become promising next-generation radiotherapy sensitizers for GBM treatment.
Insights
Glioblastoma multiforme (GBM) treatment faces challenges due to radioresistance. Nanotechnology offers promising solutions to enhance radiotherapy effectiveness for brain cancer patients.
Area of Science:
- Neuro-oncology
- Nanomedicine
- Radiation Oncology
Background:
- Glioblastoma multiforme (GBM) is an aggressive brain cancer with poor prognosis.
- Radiotherapy (RT) is a key treatment, but radioresistance limits its efficacy.
- Understanding GBM radioresistance mechanisms is crucial for improving patient outcomes.
Purpose of the Study:
- To review mechanisms of GBM radioresistance.
- To discuss nanotechnology-based strategies for radiosensitization in GBM.
- To highlight challenges and future prospects of nano-radiosensitizers.
Main Methods:
- Literature review of preclinical data on nanotechnology and GBM radiosensitization.
- Summary of tumor cell-intrinsic and tumor microenvironment factors in radioresistance.
- Discussion of current nano-biotechnology-based radiosensitizers.
Main Results:
- Nanotechnology-based strategies show potential in enhancing GBM radiosensitivity in preclinical models.
- Nanomaterials offer unique properties for drug delivery and radiosensitization.
- Various nano-biotechnology approaches are being investigated to overcome GBM radioresistance.
Conclusions:
- Nanotechnology holds significant promise for overcoming GBM radioresistance.
- Nanomaterials could become next-generation radiotherapy sensitizers for GBM treatment.
- Further research is needed to translate these findings into clinical applications.

