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Precise glioma targeting of and penetration by aptamer and peptide dual-functioned nanoparticles
Huile Gao1, Jun Qian, Shijie Cao
1Key Laboratory of Smart Drug Delivery, Ministry of Education & PLA, School of Pharmacy, Fudan University, Shanghai 201203, China.
Abstract:
The treatment of a brain glioma is still one of the most difficult challenges in oncology. To effectively treat brain glioma and reduce the side effects, drugs must be transported across the blood brain barrier (BBB) and then targeted to the brain cancer cells because most anti-tumor drugs are highly toxic to the normal brain tissue. A cascade delivery strategy was developed to perform these two aims and to achieve enhanced and precisely targeted delivery. Herein, we utilize a phage-displayed TGN peptide and an AS1411 aptamer, which are specific targeting ligands of the BBB and cancer cells, respectively and we conjugate them with nanoparticles to establish the brain glioma cascade delivery system (AsTNP). In vitro cell uptake and three-dimensional tumor spheroid penetration studies demonstrated that the system could not only target endothelial and tumor cells but also penetrate the endothelial monolayers and tumor cells to reach the core of the tumor spheroids, which was extremely important but mostly ignored in glioma therapy. In vivo imaging further demonstrated that the AsTNP provided the highest tumor distribution and tumor/normal brain ratio. The distribution was also reconfirmed by fluorescent images of the brain slides. As a result, the docetaxel-loaded AsTNP presents the best anti-glioma effect with improved glioma bearing survival. In conclusion, the AsTNP could precisely target to the brain glioma, which was a valuable target for glioma imaging and therapy.
Insights
A novel nanoparticle system (AsTNP) effectively targets brain glioma by crossing the blood-brain barrier and delivering drugs directly to cancer cells, improving treatment outcomes and survival rates.
Area of Science:
- Oncology
- Nanotechnology
- Biomedical Engineering
Background:
- Brain glioma treatment faces challenges due to the blood-brain barrier (BBB) and drug toxicity to normal brain tissue.
- Targeted drug delivery across the BBB to glioma cells is crucial for effective treatment and reduced side effects.
Purpose of the Study:
- To develop a cascade delivery system (AsTNP) for precise targeting of brain glioma cells.
- To enhance drug delivery across the BBB and into tumor cores, improving therapeutic efficacy.
Main Methods:
- Conjugation of TGN peptide and AS1411 aptamer with nanoparticles to create the AsTNP system.
- In vitro studies: cell uptake and 3D tumor spheroid penetration.
- In vivo studies: biodistribution imaging and therapeutic efficacy assessment of docetaxel-loaded AsTNP.
Main Results:
- AsTNP demonstrated successful targeting of endothelial and tumor cells, penetrating endothelial monolayers and tumor spheroids.
- In vivo imaging confirmed superior tumor distribution and tumor/normal brain ratio for AsTNP.
- Docetaxel-loaded AsTNP showed significant anti-glioma effects and improved survival in glioma-bearing models.
Conclusions:
- The AsTNP system precisely targets brain glioma, offering a promising platform for glioma imaging and therapy.
- This cascade delivery strategy overcomes BBB limitations and enhances drug delivery to the tumor core.
- AsTNP represents a valuable advancement in brain glioma treatment, improving therapeutic outcomes.

