Magnetically Responsive Biodegradable Nanoparticles Enhance Adenoviral Gene Transfer in Cultured Smooth Muscle and Endothelial Cells
- 4 June 2009
- journal article
- research article
- Published by American Chemical Society (ACS) in Molecular Pharmaceutics
- Vol. 6 (5) , 1380-1387
- https://doi.org/10.1021/mp900017m
Abstract
Replication-defective adenoviral (Ad) vectors have shown promise as a tool for gene delivery-based therapeutic applications. Their clinical use is however limited by therapeutically suboptimal transduction levels in cell types expressing low levels of Coxsackie-Ad receptor (CAR), the primary receptor responsible for the cell entry of the virus, and by systemic adverse reactions. Targeted delivery achievable with Ad complexed with biodegradable magnetically responsive nanoparticles (MNP) may therefore be instrumental for improving both the safety and efficiency of these vectors. Our hypothesis was that magnetically driven delivery of Ad affinity-bound to biodegradable MNP can substantially increase transgene expression in CAR deficient vascular cells in culture. Fluorescently labeled MNP were formulated from polylactide with inclusion of iron oxide and surface-modified with the D1 domain of CAR as an affinity linker. MNP cellular uptake and GFP reporter transgene expression were assayed fluorimetrically in cultured endothelial and smooth muscle cells using λex/λem of 540 nm/575 nm and 485 nm/535 nm, respectively. Stable vector-specific association of Ad with MNP resulted in formation of MNP−Ad complexes displaying rapid cell binding kinetics following a brief exposure to a high gradient magnetic field with resultant gene transfer levels significantly increased compared to free vector or nonmagnetic control treatment. Multiple regression analysis suggested a mechanism of MNP−Ad mediated transduction distinct from that of free Ad, and confirmed the major contribution of the complexes to the gene transfer under magnetic conditions. The magnetically enhanced transduction was achieved without compromising the cell viability or growth kinetics. The enhancement of adenoviral gene delivery by affinity complexation with biodegradable MNP represents a promising approach with a potential to extend the applicability of the viral gene therapeutic strategies.Keywords
This publication has 24 references indexed in Scilit:
- High field gradient targeting of magnetic nanoparticle-loaded endothelial cells to the surfaces of steel stentsProceedings of the National Academy of Sciences, 2008
- Magnetically driven plasmid DNA delivery with biodegradable polymeric nanoparticlesThe FASEB Journal, 2007
- Encapsulation of Viral Vectors for Gene Therapy ApplicationsBiotechnology Progress, 2007
- Adenovirus-induced thrombocytopenia: the role of von Willebrand factor and P-selectin in mediating accelerated platelet clearanceBlood, 2006
- Adenoviral Gene Vector Tethering to Nanoparticle Surfaces Results in Receptor-Independent Cell Entry and Increased Transgene ExpressionMolecular Therapy, 2006
- Formulation of Insulin-Loaded Polymeric Nanoparticles Using Response Surface MethodologyDrug Development and Industrial Pharmacy, 2005
- Targeted Adenovirus VectorsHuman Gene Therapy, 2004
- Synthesis of adenoviral targeting molecules by intein-mediated protein ligationGene Therapy, 2003
- Improved Method of Recombinant AAV2 Delivery for Systemic Targeted Gene TherapyMolecular Therapy, 2002
- Application of Central Composite Designs to the Preparation of Polycaprolactone Nanoparticles by Solvent DisplacementJournal of Pharmaceutical Sciences, 1996