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Published on: October 27, 2014
Low-frequency magnetic field therapy for glioblastoma: Current advances, mechanisms, challenges and future
Yinlong Liu1, Qisheng Tang2, Quan Tao3
1Department of Neurosurgery, Huashan Hospital, Fudan University, China.
Background:
Glioblastoma (GBM) is the most common malignant tumour of the central nervous system. Despite recent advances in multimodal GBM therapy incorporating surgery, radiotherapy, systemic therapy (chemotherapy, targeted therapy), and supportive care, the overall survival (OS) remains poor, and long-term survival is rare. Currently, the primary obstacles hindering the effectiveness of GBM treatment are still the blood-brain barrier and tumor heterogeneity. In light of its substantial advantages over conventional therapies, such as strong penetrative ability and minimal side effects, low-frequency magnetic fields (LF-MFs) therapy has gradually caught the attention of scientists.
Aim Of Review:
In this review, we shed the light on the current status of applying LF-MFs in the treatment of GBM. We specifically emphasize our current understanding of the mechanisms by which LF-MFs mediate anticancer effects and the challenges faced by LF-MFs in treating GBM cells. Furthermore, we discuss the prospective applications of magnetic field therapy in the future treatment of GBM. Key scientific concepts of review: The review explores the current progress on the use of LF-MFs in the treatment of GBM with a special focus on the potential underlying mechanisms of LF-MFs in anticancer effects. Additionally, we also discussed the complex magnetic field features and biological characteristics related to magnetic bioeffects. Finally, we proposed a promising magnetic field treatment strategy for future applications in GBM therapy.
Insights
Low-frequency magnetic fields (LF-MFs) offer a promising new avenue for glioblastoma (GBM) treatment, potentially overcoming key therapeutic challenges like the blood-brain barrier and tumor heterogeneity.
Area of Science:
- Neuro-oncology
- Biophysics
- Medical Physics
Background:
- Glioblastoma (GBM) remains a challenging central nervous system malignancy with poor prognoses despite multimodal treatments.
- Current therapies face significant hurdles including the blood-brain barrier and tumor heterogeneity.
- Low-frequency magnetic fields (LF-MFs) are emerging as a potential therapeutic modality due to their penetrative ability and minimal side effects.
Purpose of the Study:
- To review the current applications of LF-MFs in glioblastoma treatment.
- To elucidate the mechanisms by which LF-MFs exert anticancer effects.
- To discuss challenges and future prospective applications of magnetic field therapy for GBM.
Main Methods:
- Literature review of studies on LF-MFs and glioblastoma.
- Analysis of proposed mechanisms of magnetic bioeffects in cancer therapy.
- Discussion of magnetic field characteristics and biological interactions.
Main Results:
- LF-MFs show potential in overcoming glioblastoma treatment barriers.
- Understanding of LF-MFs' anticancer mechanisms is evolving.
- Challenges in clinical translation and future strategies are identified.
Conclusions:
- LF-MF therapy presents a promising, less invasive approach for glioblastoma.
- Further research into mechanisms and optimized treatment strategies is warranted.
- Magnetic field therapy holds potential for future glioblastoma treatment paradigms.
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