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Vector unpacking as a potential barrier for receptor-mediated polyplex gene delivery

Biotechnology and Bioengineering · 2000 · Vol. 67(5) · pp. 598–606
David V. SchafferNick A. FidelmanNily DanDouglas A. Lauffenburger

Abstract

Ligand-conjugated polymer (polyplex) gene delivery vectors have strong potential as targeted, in vivo gene transfer vehicles; however, they are currently limited by low delivery efficiency. A number of barriers to polyplex-mediated delivery have been previously identified, including receptor binding, internalization, endosomal escape, and nuclear localization. However, based on understanding of viral gene delivery systems, yet another potential barrier may exist; a limited ability to unpackage the plasmid DNA cargo following localization to the nucleus. We have developed a model system that employs a cationic polymer linked to epidermal growth factor (EGF) as a ligand to target delivery of plasmid DNA encoding the green fluorescent protein to mouse fibroblasts bearing the EGF receptor. Using fluorescence microscopy to simultaneously trace both the plasmid and polymer during gene delivery in combination with an in vitro transcription assay, we provide evidence that plasmid unpackaging can indeed be a limiting step for gene expression for sufficiently large polymer constructs. Short-term expression is significantly enhanced by using short polycations that dissociate from DNA more rapidly both in vitro and in vivo. Finally, we describe a thermodynamic model that supports these data by showing that shorter polycations can have a higher probability of dissociating from DNA. This work demonstrates that vector unpackaging should be added to the list of barriers to receptor-mediated polyplex gene delivery, thus providing an additional design principle for targeted synthetic delivery vehicles.

RNA Interference and Gene DeliveryVirus-based gene therapy researchViral Infectious Diseases and Gene Expression in InsectsUnpackingGene deliveryVector (molecular biology)Delivery systemComputational biologyReceptorCell biologyGeneChemistryBiology

MeSH terms

AnimalsEpidermal Growth FactorGenetic VectorsLigandsLuminescent ProteinsPlasmidsPolymersGenes, ReporterGene Transfer TechniquesGreen Fluorescent ProteinsMiceErbB Receptors
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References
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Proceedings of the National Academy of Sciences · 1995 · 6,198 citations
POLYAMINES
Annual Review of Biochemistry · 1984 · 3,048 citations
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