Virus-sized self-assembling lamellar complexes between plasmid DNA and cationic micelles promote gene transfer.

Proc Natl Acad Sci U S A

Vector Development, Rhône-Poulenc Rorer Gencell, 13 quai Jules Guesde, BP 14, 94403 Vitry-sur-seine Cedex, France.

Published: December 1997

Gene therapy is based on the vectorization of genes to target cells and their subsequent expression. Cationic amphiphile-mediated delivery of plasmid DNA is the nonviral gene transfer method most often used. We examined the supramolecular structure of lipopolyamine/plasmid DNA complexes under various condensing conditions. Plasmid DNA complexation with lipopolyamine micelles whose mean diameter was 5 nm revealed three domains, depending on the lipopolyamine/plasmid DNA ratio. These domains respectively corresponded to negatively, neutrally, and positively charged complexes. Transmission electron microscopy and x-ray scattering experiments on complexes originating from these three domains showed that although their morphology depends on the lipopolyamine/plasmid DNA ratio, their particle structure consists of ordered domains characterized by even spacing of 80 A, irrespective of the lipid/DNA ratio. The most active lipopolyamine/DNA complexes for gene transfer were positively charged. They were characterized by fully condensed DNA inside spherical particles (diameter: 50 nm) sandwiched between lipid bilayers. These results show that supercoiled plasmid DNA is able to transform lipopolyamine micelles into a supramolecular organization characterized by ordered lamellar domains.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC25002PMC
http://dx.doi.org/10.1073/pnas.94.26.14412DOI Listing

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