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Carbon Dot-Based Nanoparticles: A Promising Therapeutic Approach for Glioblastoma
Yongzhi Wang1,2, Hao Wu3, Yu Guo4
1Department of Neurosurgery, Fu Yang People's Hospital, FuYang, People's Republic of China.
Abstract:
Glioblastoma (GBM) is a malignant tumor that currently still faces challenges for a complete cure. Although GBM treatment has made great progress, the prognosis of patients is still poor due to interference of various factors in treatment such as the blood-brain barrier (BBB), grade malignancy, intra- and intertumor heterogeneity, drug resistance, and poor targeting of anti-tumor drugs. In recent years, with marked advances in nanotechnology, different types of nanodrug delivery systems have been developed and have been considered as a promising therapeutic measure to gradually overcome chemotherapy resistance and improve tumor targeting. Carbon dots (CDs), as a new type of therapeutic NP, have become a research hotspot of concern for many researchers in recent years. NPs based on CDs have high modifiability and functionalization, allowing for covalent binding with chemotherapy drugs, genes, immune cells and photosensitizers, effectively targeting tumor cells and reducing peripheral cytotoxicity. However, at present, CDs are still in the basic research stage or the preclinical exploratory research stage, and has not yet entered the clinical trial stage or the implementation and application stage. Here, we review the fundamental principles of CDs in the broader field of nanotechnology, their development history, classification, synthesis, and potential for tumor treatment. Especially in the treatment of cancer, CDs can not only participate in photodynamic therapy, photothermal therapy, sonodynamic therapy, chemodynamic therapy, and chemotherapy, but also in multi-modal combination therapy. Here, we hope to provide some insights for further research.
Insights
Carbon dots (nanoparticles) show promise for glioblastoma treatment by improving drug delivery and targeting. Further research is needed as they are still in early development stages.
Area of Science:
- Nanotechnology
- Materials Science
- Oncology
Background:
- Glioblastoma (GBM) treatment faces challenges including the blood-brain barrier, tumor heterogeneity, and drug resistance.
- Nanotechnology offers potential solutions for targeted drug delivery and overcoming treatment resistance.
- Carbon dots (CDs) are emerging as a novel class of nanoparticles for therapeutic applications.
Purpose of the Study:
- To review the fundamental principles, development, and synthesis of carbon dots (CDs).
- To explore the potential of CDs in glioblastoma (GBM) treatment and other cancer therapies.
- To provide insights into the future research directions for CDs in oncology.
Main Methods:
- Review of existing literature on carbon dots and their applications in cancer therapy.
- Analysis of the properties and synthesis methods of carbon dots (CDs).
- Discussion of various therapeutic strategies involving CDs, including monotherapy and combination therapy.
Main Results:
- Carbon dots (CDs) exhibit high modifiability and functionalization capabilities for targeted drug delivery.
- CDs can be integrated with chemotherapy drugs, genes, immune cells, and photosensitizers.
- CDs demonstrate potential in photodynamic therapy, photothermal therapy, sonodynamic therapy, chemodynamic therapy, and chemotherapy.
Conclusions:
- Carbon dots (CDs) represent a promising nanotherapeutic platform for glioblastoma (GBM) and other cancers.
- CDs offer advantages in targeting tumor cells and reducing systemic toxicity.
- Further research and clinical trials are necessary to translate CD-based therapies into clinical practice.
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