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Nanoparticle Delivery of an Oligonucleotide Payload in a Glioblastoma Multiforme Animal Model
Published on: September 27, 2024
Whole-cell SELEX aptamer-functionalised poly(ethyleneglycol)-poly(ε-caprolactone) nanoparticles for enhanced targeted
Huile Gao1, Jun Qian, Zhi Yang
1Key Laboratory of Smart Drug Delivery, Ministry of Education & PLA, Department of Pharmaceutics Sciences, School of Pharmacy, Fudan University, 826 Zhangheng Road, Shanghai 201203, China.
Abstract:
Though there has been substantial advancement in the knowledge about tumour development and treatment in the past 40 years, the prognosis of brain glioblastoma is still very grim due to the difficulty of targeting drugs to glioblastoma cells. An active targeting delivery system helps increase intracellular drug delivery, which is promising for the treatment of glioblastoma. For an active targeting delivery system, targeting ligands are crucial for efficient intracellular drug delivery. Current methods include systematic evolution of ligands by exponential enrichment (SELEX), which has been utilised for selecting specific ligands with better targeting effects. The GMT8 aptamer was a short DNA sequence selected by SELEX that could specifically bind with U87 cells. In this study, nanoparticles functionalised with GMT8 aptamers (ApNP) were utilised for glioblastoma therapy. In vitro cell uptake and U87 tumour spheroid uptake demonstrated that nanoparticles functionalised with GMT8 aptamer significantly enhanced intracellular drug delivery and tumour spheroid penetration. Assays for cell apoptosis and growth inhibition of tumour spheroids identified docetaxel-loaded ApNP to significantly induce cell apoptosis and inhibit tumour spheroid growth. In vivo imaging of glioblastoma-bearing mice demonstrated that ApNP could target glioblastoma and accumulate at the tumour site, which was further verified by fluorescence imaging of brain slices. Pharmacodynamic results indicated that docetaxel-loaded ApNP significantly prolonged the median survival time of glioblastoma-bearing mice compared to NP, DTX and control. In conclusion, GMT8 aptamer-functionalised nanoparticles enhanced tumour penetration and targeted glioblastoma therapy, which is promising for the prognosis of brain glioblastoma.
Insights
New aptamer-functionalized nanoparticles show promise for glioblastoma treatment. These targeted nanoparticles improve drug delivery and survival rates in brain glioblastoma models, offering hope for better patient outcomes.
Area of Science:
- Biotechnology
- Nanomedicine
- Oncology
Background:
- Glioblastoma treatment remains challenging due to difficulties in targeting cancer cells effectively.
- Active targeting delivery systems are crucial for enhancing intracellular drug delivery and improving therapeutic outcomes.
- Systematic evolution of ligands by exponential enrichment (SELEX) is a key method for selecting specific targeting ligands.
Purpose of the Study:
- To investigate the efficacy of nanoparticles functionalized with the GMT8 aptamer (ApNP) for targeted glioblastoma therapy.
- To evaluate the potential of ApNP to enhance drug delivery, tumor penetration, and therapeutic outcomes in glioblastoma models.
Main Methods:
- Utilized nanoparticles functionalized with the GMT8 aptamer (ApNP) for glioblastoma treatment.
- Conducted in vitro cell uptake and tumor spheroid penetration studies.
- Performed cell apoptosis and tumor spheroid growth inhibition assays.
- Utilized in vivo imaging and pharmacodynamic studies in glioblastoma-bearing mice.
Main Results:
- ApNP significantly enhanced intracellular drug delivery and tumor spheroid penetration compared to non-functionalized nanoparticles.
- Docetaxel-loaded ApNP significantly induced cell apoptosis and inhibited tumor spheroid growth.
- In vivo studies confirmed ApNP's ability to target glioblastoma and accumulate at the tumor site, prolonging median survival time.
Conclusions:
- GMT8 aptamer-functionalized nanoparticles represent a promising strategy for targeted glioblastoma therapy.
- ApNP enhances tumor penetration and improves therapeutic efficacy, offering potential for better glioblastoma prognosis.
- This targeted delivery system holds significant promise for advancing brain glioblastoma treatment.
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