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Characterization of Immune Cell-derived Extracellular Vesicles and Studying Functional Impact on Cell Environment
Published on: June 2, 2020
Internalisation of RGD-Engineered Extracellular Vesicles by Glioblastoma Cells
Dovydas Gečys1,2, Arūnas Kazlauskas3, Emilija Gečytė2
1Faculty of Pharmacy, Institute of Pharmaceutical Technologies, Lithuanian University of Health Sciences, LT-50162 Kaunas, Lithuania.
Abstract:
Glioblastoma multiforme (GBM) is the most aggressive CNS tumour with no efficient treatment, partly due to the retention of anticancer drugs by the blood-brain barrier (BBB) and their insufficient concentration in tumour cells. Extracellular vesicles (EVs) are attractive drug carriers because of their biocompatibility and ability to cross the BBB. Additional efficiency can be achieved by adding GBM-cell-specific ligands. GBM cells overexpress integrins; thus, one of the most straightforward targeting strategies is to modify EVs with integrin-recognising molecules. This study investigated the therapeutic potential of genetically engineered EVs with elevated membrane levels of the integrin-binding peptide RGD (RGD-EVs) against GBM cells in vitro. For RGD-EV production, stable RGD-HEK 293FT cells were generated by using a pcDNA4/TO-Lamp2b-iRGD-HA expression vector and performing antibiotic-based selection. RGD-EVs were isolated from RGD-HEK 293FT-cell-conditioned medium and characterised by size (Zetasizer), specific markers (ELISA) and RGD expression (Western Blot). Internalisation by human GBM cells HROG36 and U87 MG and BJ-5ta human fibroblasts was assessed by fluorescent EV RNA labelling. The effect of doxorubicin-loaded RGD-EVs on GBM cells was evaluated by the metabolic PrestoBlue viability assay; functional GAPDH gene knockdown by RGD-EV-encapsulated siRNA was determined by RT-qPCR. RGD-EVs had 40% higher accumulation in GBM cells (but not in fibroblasts) and induced significantly stronger toxicity by loaded doxorubicin and GAPDH silencing by loaded siRNA compared to unmodified EVs. Thus, RGD modification substantially increases the specific delivery capacity of HEK 293FT-derived EVs to GBM cells.
Insights
Genetically engineered extracellular vesicles (EVs) modified with RGD peptides show enhanced delivery to glioblastoma cells. These RGD-EVs improve drug and siRNA delivery, increasing therapeutic efficacy against brain tumors.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Oncology
Background:
- Glioblastoma multiforme (GBM) is an aggressive brain tumor with limited treatment options.
- The blood-brain barrier (BBB) restricts drug delivery to brain tumors.
- Extracellular vesicles (EVs) show promise as drug carriers due to their biocompatibility and ability to cross the BBB.
Purpose of the Study:
- To investigate the therapeutic potential of genetically engineered EVs modified with RGD peptides (RGD-EVs) for targeting GBM cells.
- To enhance the specific delivery of therapeutic payloads to GBM cells using RGD-modified EVs.
Main Methods:
- Stable RGD-HEK 293FT cells were generated for RGD-EV production.
- RGD-EVs were characterized for size, markers, and RGD expression.
- EV internalization by GBM cells and fibroblasts was assessed.
- The efficacy of doxorubicin-loaded RGD-EVs and siRNA-loaded RGD-EVs was evaluated in vitro.
Main Results:
- RGD-EVs exhibited 40% higher accumulation in GBM cells compared to unmodified EVs.
- RGD-EVs demonstrated significantly enhanced toxicity when loaded with doxorubicin.
- RGD-EVs effectively delivered siRNA, leading to significant GAPDH gene knockdown in GBM cells.
Conclusions:
- RGD modification significantly enhances the specific delivery of EVs to GBM cells.
- RGD-EVs represent a promising strategy for improving targeted drug and gene delivery in GBM therapy.
- This approach holds potential for overcoming BBB limitations and increasing therapeutic outcomes for glioblastoma.

