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Branched lipid chains to prepare cationic amphiphiles producing hexagonal aggregates: supramolecular behavior and application to gene delivery.
Bouraoui, Amal; Ghanem, Rosy; Berchel, Mathieu; Deschamps, Laure; Vié, Véronique; Paboeuf, Gilles; Le Gall, Tony; Montier, Tristan; Jaffrès, Paul-Alain.
Affiliation
  • Bouraoui A; Univ Brest, CNRS, CEMCA, UMR CNRS 6521, 6 Avenue Victor Le Gorgeu, F-29238 Brest, France. pjaffres@univ-brest.fr.
Org Biomol Chem ; 18(2): 337-345, 2020 01 02.
Article in En | MEDLINE | ID: mdl-31845706
ABSTRACT
A ramified lipid alcohol, 2-hexyldecanol, was used as a hydrophobic moiety to prepare cationic amphiphiles on a gram scale in 3 to 4 steps, featuring either a trimethylammonium 5, dimethylhydroxyethylammonium 6 or N-methylimidazolium 7 polar head group. Compression isotherms at the air-water interface reveal that all these cationic amphiphiles collapse at a relatively low pressure indicating a weak stabilization of the monolayer via hydrophobic interactions. Ellipsometry measurements point out the presence of a thin monolayer at low lateral pressure whereas thickening of the monolayer occurs at higher pressure with a high percentage of variation of the thickness, thus demonstrating an adaptability to the constraints. 31P NMR spectroscopy of the hydrated cationic amphiphiles clearly shows that these cationic amphiphiles self-assemble in water to form hexagonal phases, irrespective of the nature of their polar head group. Furthermore, a comparison of molecular structures suggests that compounds 5-7 self-organize into an inverted hexagonal phase (HII). These cationic amphiphiles, alone or in the presence of DOPE, were evaluated for the transfection of three human-derived cell lines (i.e. A549, 16HBE and HeLa). The three compounds demonstrated high transfection efficacies in every cell line tested, 7/DOPE being the most efficient.
Subject(s)

Full text: 1 Database: MEDLINE Main subject: Surface-Active Agents / Gene Transfer Techniques / Unilamellar Liposomes / Lipids Limits: Humans Language: En Year: 2020 Type: Article

Full text: 1 Database: MEDLINE Main subject: Surface-Active Agents / Gene Transfer Techniques / Unilamellar Liposomes / Lipids Limits: Humans Language: En Year: 2020 Type: Article