Polyion Complex Micelles of pDNA with Acetal-poly(ethylene glycol)-poly(2-(dimethylamino)ethyl methacrylate) Block Copolymer as the Gene Carrier System: Physicochemical Properties of Micelles Relevant to Gene Transfection Efficacy
- 25 September 2004
- journal article
- Published by American Chemical Society (ACS) in Biomacromolecules
- Vol. 5 (6) , 2128-2136
- https://doi.org/10.1021/bm040009j
Abstract
An acetal-poly(ethylene glycol)-poly(2-(dimethylamino)ethyl methacrylate) (acetal-PEG-PAMA) block copolymer spontaneously associated with plasmid DNA (pDNA) to form water-soluble complexes (polyion complex micelle: PIC micelle) in aqueous solution. Physicochemical characteristics and transfection efficiency of the PIC micelles thus prepared were studied here, focusing on the residual molar mixing ratio (N/P ratio) of AMA units in acetal-PEG-PAMA to the phosphate units in pDNA. With the N/P ratio increasing to unity, acetal-PEG-PAMA cooperatively formed complex micelles with pDNA through electrostatic interaction, allowing pDNA to condense effectively. Dynamic light scattering measurements revealed that the PIC micelle at N/P > or = 3 had a constant size of approximately 90-100 nm. Eventually, acetal-PEG-PAMA/pDNA micelles underwent no precipitation even after long-term storage for more than 1 month at all N/P ratios. The PIC micelles were stable even in the presence of excess polyanions, poly(vinyl sulfate), in contrast to polyplexes based on the PAMA homopolymer, yet this stabilization effect was highly dependent on the N/P ratio to reach a plateau at N/P = 3-4. This character may be attributed to the increased hydrophobicity in the vicinity of the complexed pDNA. Furthermore, the pDNA in the micelle was adequately protected from DNase I attack. The transfection ability of the PIC micelles toward 293 cells was remarkably enhanced with an increasing N/P ratio as high as 25. The zeta-potential of the micelles with a high N/P ratio was an appreciably large positive value, suggesting a noncooperative micelle formation. This deviated micellar composition with an excess cationic nature as well as the presence of free acetal-PEG-PAMA may play a substantial role in the enhanced transfection efficiency of the PIC micelle system in the high N/P ratio (approximately 25) region.Keywords
This publication has 27 references indexed in Scilit:
- Lactose-conjugated polyion complex micelles incorporating plasmid DNA as a targetable gene vector system: their preparation and gene transfecting efficiency against cultured HepG2 cellsJournal of Controlled Release, 2004
- PEG−PLL Block Copolymers Induce Reversible Large Discrete Coil−Globule Transition in a Single DNA Molecule through Cooperative Complex FormationMacromolecules, 2003
- Polyion complex micelles as vectors in gene therapy – pharmacokinetics and in vivo gene transferGene Therapy, 2002
- A Mechanistic Study of the Hydrolytic Stability of Poly(2-(dimethylamino)ethyl methacrylate)Macromolecules, 1998
- Remarkable Increase in Nuclease Resistance of Plasmid DNA through Supramolecular Assembly with Poly(ethylene glycol)–Poly(l-lysine) Block CopolymerJournal of Pharmaceutical Sciences, 1998
- Water-Soluble Polyion Complex Associates of DNA and Poly(ethylene glycol)−Poly(l-lysine) Block CopolymerBioconjugate Chemistry, 1997
- A novel synthesis of semitelechelic functional poly(methacrylate)s through an alcoholate initiated polymerization. Synthesis of poly[2‐(N,N‐diethylaminoethyl) methacrylate] macromonomerMacromolecular Rapid Communications, 1997
- Characterization of Vectors for Gene Therapy Formed by Self-Assembly of DNA with Synthetic Block Co-PolymersHuman Gene Therapy, 1996
- Efficient transformation of mammalian cells using DNA interpolyelectrolyte complexes with carbon chain polycationsBioconjugate Chemistry, 1993
- Concepts and strategies for human gene therapyEuropean Journal of Biochemistry, 1992