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NANOTECHNOLOGY - NEW TRENDS IN THE TREATMENT OF BRAIN TUMOURS
Petr Krůpa1, Svatopluk Řehák2, Daniel Diaz-Garcia3
1Charles University in Prague, Department of Neurosurgery, Faculty of Medicine in Hradec Králové, and University Hospital Hradec Králové, Czech Republic. petrkrupa@centrum.cz.
Abstract:
High grade gliomas are some of the deadliest human tumours. Conventional treatments such as surgery, radiotherapy and chemotherapy have only a limited effect. Nowadays, resection is the common treatment of choice and although new approaches, such as perioperative magnetic resonance imaging or fluorescent microscopy have been developed, the survival rate of diagnosed patients is still very low. The inefficacy of conventional methods has led to the development of new strategies and the significant progress of nanotechnology in recent years. These platforms can be used either as novel imaging tools or to improve anticancer drug delivery into tumours while minimizing its distribution and toxicity in healthy tissues. Amongst the new nanotechnology platforms used for delivery into the brain tissue are: polymeric nanoparticles, liposomes, dendrimers, nanoshells, carbon nanotubes, superparamagnetic nanoparticles and nucleic acid based nanoparticles (DNA, RNA interference [RNAi] and antisense oligonucleotides [ASO]). These nanoparticles have been applied in the delivery of small molecular weight drugs as well as macromolecules - proteins, peptides and genes. The unique properties of these nanoparticles, such as surface charge, particle size, composition and ability to modify their surface with tissue recognition ligands and antibodies, improve their biodistribution and pharmacokinetics. All of the above mentioned characteristics make of nanoplatforms a very suitable tool for its use in targeted, personalized medicine, where they could possibly carry large doses of therapeutic agents specifically into malignant cells while avoiding healthy cells. This review poses new possibilities in the large field of nanotechnology with special interest in the treatment of high grade brain tumours.
Insights
Nanotechnology offers new hope for treating deadly high-grade gliomas. Nanoparticles can improve drug delivery to brain tumors, enhancing treatment efficacy and reducing side effects.
Area of Science:
- Oncology
- Nanotechnology
- Neuroscience
Background:
- High-grade gliomas are aggressive brain tumors with poor prognoses.
- Conventional treatments like surgery, radiotherapy, and chemotherapy show limited efficacy.
- Existing advanced techniques offer minimal survival improvement for diagnosed patients.
Purpose of the Study:
- To explore nanotechnology's potential in treating high-grade brain tumors.
- To review various nanotechnology platforms for targeted drug delivery.
- To highlight nanoplatforms for personalized medicine in neuro-oncology.
Main Methods:
- Review of current literature on nanotechnology applications in brain tumor treatment.
- Analysis of different nanoparticle types (polymeric, liposomes, dendrimers, etc.).
- Examination of nanoparticle properties influencing drug delivery and biodistribution.
Main Results:
- Nanoparticles show promise as novel imaging tools and drug delivery systems.
- Various nanoplatforms can deliver small molecules, proteins, peptides, and genes.
- Nanoparticle properties (size, charge, surface modification) enhance targeted delivery and pharmacokinetics.
Conclusions:
- Nanotechnology platforms offer a promising strategy for high-grade glioma treatment.
- Targeted delivery via nanoplatforms can improve therapeutic efficacy and minimize toxicity.
- Nanotechnology facilitates personalized medicine approaches for brain tumors.

