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1.
Chemistry ; 8(4): 900-9, 2002 Feb 15.
Article in English | MEDLINE | ID: mdl-11857704

ABSTRACT

Although detailed structure-activity, physicochemical and biophysical investigations in probing the anchor influence in liposomal gene delivery have been reported for glycerol-based transfection lipids, the corresponding investigation for non-glycerol based simple monocationic transfection lipids have not yet been undertaken. Towards this end, herein, we delineate our structure-activity and physicochemical approach in deciphering the anchor dependency in liposomal gene delivery using fifteen new structural analogues (lipids 1-15) of recently reported non-glycerol based monocationic transfection lipids. The C(14) analogues in both series 1 (lipids 1-6) and series 2 (lipids 7-15) showed maximum efficiency in transfecting COS-1 and CHO cells. However, the C(12) analogue of the ether series (lipid 3) exhibited a seemingly anomalous behavior compared with its transfection efficient C(10) and C(14) analogues (lipids 2 and 4) in being completely inefficient to transfect both COS-1 and CHO cells. The present structure-activity investigation also convincingly demonstrates that enhancement of transfection efficiencies through incorporation of membrane reorganizing unsaturation elements in the hydrophobic anchor of cationic lipids is not universal but cell dependent. The strength of the interaction of lipids 1-15 with DNA was assessed by their ability to exclude ethidium bromide bound to the DNA. Cationic lipids with long hydrophobic tails were found, in general, to be efficient in excluding EtBr from DNA. Gel to liquid crystalline transition temperatures of the lipids was measured by fluorescence anisotropy measurement technique. In general (lipid 2 being an exception), transfection efficient lipids were found to have their mid transition temperatures at or below physiological temperatures (37 degrees C).


Subject(s)
Liposomes/chemical synthesis , Liposomes/pharmacokinetics , Transfection/standards , Animals , COS Cells , Cations/chemistry , DNA/metabolism , DNA/pharmacokinetics , Fluorescence Polarization , Fluorescent Dyes , Liposomes/metabolism , Particle Size , Phosphatidylethanolamines , Structure-Activity Relationship , Surface-Active Agents/chemical synthesis , Surface-Active Agents/metabolism , Surface-Active Agents/pharmacokinetics , Temperature , Transfection/methods , beta-Galactosidase/genetics
2.
Biochim Biophys Acta ; 1559(2): 87-95, 2002 Feb 15.
Article in English | MEDLINE | ID: mdl-11853677

ABSTRACT

Detailed structure-activity investigations aimed at probing the anchor chain length dependency for glycerol-based lipofectins have been reported previously. Herein, we report on the first detailed investigation on the anchor-dependent transfection biology of non-glycerol based simple monocationic cytofectins containing single 2-hydroxyethyl head group functionality using 11 new structural analogs of our previously published first generation of non-glycerol based transfection lipids (lipids 1-11). The C-14 and C-16 analogs of DOMHAC (lipids 4 and 5, respectively) were found to be remarkably efficient in transfecting COS-1 cells. In addition, the present anchor-dependency investigation also revealed that the C-14 analog of DOHEMAB (lipid 10) is significantly efficient in transfecting both COS-1 and NIH3T3 cells. Our results also indicate that too strong lipid-DNA interactions might result in weaker transfection for non-glycerol based cationic lipids. In summary, the anchor-dependence investigations presented here convincingly demonstrate that non-glycerol based cationic lipids containing a single hydroxyethyl head group and hydrophobic C-14 or C-16 anchors are promising non-toxic cationic transfection lipids for future use in liposomal gene delivery.


Subject(s)
Cation Exchange Resins/chemistry , Lipids/chemistry , Lipids/chemical synthesis , Phosphatidylethanolamines/chemistry , Quaternary Ammonium Compounds/chemistry , 3T3 Cells , Animals , COS Cells , Drug Carriers , Genetic Therapy , Glycerol/chemistry , Lipids/toxicity , Liposomes , Mice , Plasmids/chemistry , Structure-Activity Relationship , Transfection/methods
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