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UPA-sensitive ACPP-conjugated nanoparticles for multi-targeting therapy of brain glioma
Abstract:
Now it is well evidenced that tumor growth is a comprehensive result of multiple pathways, and glioma parenchyma cells and stroma cells are closely associated and mutually compensatory. Therefore, drug delivery strategies targeting both of them simultaneously might obtain more promising therapeutic benefits. In the present study, we developed a multi-targeting drug delivery system modified with uPA-activated cell-penetrating peptide (ACPP) for the treatment of brain glioma (ANP). In vitro experiments demonstrated nanoparticles (NP) decorated with cell-penetrating peptide (CPP) or ACPP could significantly improve nanoparticles uptake by C6 glioma cells and nanoparticles penetration into glioma spheroids as compared with traditional NP and thus enhanced the therapeutic effects of its payload when paclitaxel (PTX) was loaded. In vivo imaging experiment revealed that ANP accumulated more specifically in brain glioma site than NP decorated with or without CPP. Brain slides further showed that ACPP contributed to more nanoparticles accumulation in glioma site, and ANP could co-localize not only with glioma parenchyma cells, but also with stroma cells including neo-vascular cells and tumor associated macrophages. The pharmacodynamics results demonstrated ACPP could significantly improve the therapeutic benefits of nanoparticles by significantly prolonging the survival time of glioma bearing mice. In conclusion, the results suggested that nanoparticles modified with uPA-sensitive ACPP could reach multiple types of cells in glioma tissues and provide a novel strategy for glioma targeted therapy.
Insights
This study introduces a novel drug delivery system for brain glioma treatment. The modified nanoparticles effectively target both glioma and stroma cells, significantly improving therapeutic outcomes and extending survival time in mice.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Oncology
Background:
- Glioma growth involves complex interactions between parenchyma and stroma cells.
- Simultaneous targeting of both cell types offers a promising therapeutic strategy for brain glioma.
- Current drug delivery systems face challenges in effectively reaching diverse glioma cell populations.
Purpose of the Study:
- To develop and evaluate a multi-targeting drug delivery system for brain glioma.
- To investigate the efficacy of nanoparticles modified with urokinase plasminogen activator-activated cell-penetrating peptide (uPA-ACPP).
- To assess the system's ability to target both glioma parenchyma and stroma cells.
Main Methods:
- Development of nanoparticles (NP) modified with cell-penetrating peptide (CPP) or uPA-ACPP.
- In vitro studies using C6 glioma cells and spheroids to assess nanoparticle uptake and penetration.
- In vivo studies involving biodistribution, tissue imaging, and pharmacodynamics in glioma-bearing mice.
Main Results:
- ACPP-modified nanoparticles (ANP) significantly enhanced nanoparticle uptake and penetration compared to traditional NP.
- ANP demonstrated specific accumulation in brain glioma sites and co-localized with glioma parenchyma and stroma cells.
- Pharmacodynamic studies showed ANP significantly prolonged survival time in glioma-bearing mice.
Conclusions:
- uPA-sensitive ACPP-modified nanoparticles represent a novel strategy for targeted glioma therapy.
- The developed system effectively targets multiple cell types within glioma tissues.
- This approach holds potential for improved therapeutic benefits in brain glioma treatment.
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