The overall objective of the proposed investigation is to synthesize a variety of members of a new class of positively-charged lipids, all of which are based on the backbone structure of naturally occurring phospholipids many of which promise to be unusually effective agents for gene transfection and to elucidate the mechanism by which they interact with DNA and facilitate its entry into cells. Presently, cationic lipids are commonly used for transfection of eukaryotic cells in culture and are becoming indispensable tools in molecular biology research. Recently, medical uses of the technique have been indicated by application of the technique to whole animals in which gene transfection has been remarkably successful in introducing functional genes into a large proportion of cells in many tissues. These successes with animal models indicate that cationic lipids could become one of the primary delivery systems for gene therapy and gene therapeutics of, among others, infectious diseases and cancer. Although cationic lipids hold considerable promise as gene transfer agents, the cationic lipids most popular to date are not amenable to molecular tailoring for optimizing their efficiency. Hence, little is known about how the lipid interacts with DNA, how the resulting complex enters the cell and how the DNA is released for eventual transfer to and expression in the nucleus. We propose a study of the structure and transfection efficiency of DNA complexes formed with a new class of cationic lipids derived from natural phospholipids which can be altered synthetically to maximize transfection efficiency and which, as variants of naturally-occurring molecules, are biodegradable to preclude toxic accumulation in the organism.
The first aim calls for the systematic variation of the structure of these lipids, which is facilitated by the variety of precursors available and the ease of modification of these precursors. Determination of the efficiency of transfection of tissue culture cells will reveal which aspects of molecular structure are critical for transfection and whether there are specific interactions with particular types of cells.
The second aim i s to elucidate the structure of the complex. Choosing compounds that vary widely in transfection efficiency, we will examine the structure of their complexes with DNA to determine what characteristics of the complex are critical for transfection. In particular, the stability of the complex will be tested to determine if it is unstable under cellular conditions, a property which would partially explain why these complexes are effective transducing agents.
The third aim i s to understand how the complex enters the cell, by fusion at the cell surface or by endocytosis, as well as to identify the region in the cell where the complex dissociates. Finally, the compounds will be assessed with respect to cellular toxicity and metabolic fate.

Agency
National Institute of Health (NIH)
Institute
National Institute of General Medical Sciences (NIGMS)
Type
Research Project (R01)
Project #
5R01GM052329-03
Application #
2392228
Study Section
Physiological Chemistry Study Section (PC)
Project Start
1995-09-30
Project End
2000-03-31
Budget Start
1997-04-01
Budget End
1998-03-31
Support Year
3
Fiscal Year
1997
Total Cost
Indirect Cost
Name
Northwestern University at Chicago
Department
Biochemistry
Type
Schools of Arts and Sciences
DUNS #
City
Evanston
State
IL
Country
United States
Zip Code
60201
Marcoux, Julien; Politis, Argyris; Rinehart, Dennis et al. (2014) Mass spectrometry defines the C-terminal dimerization domain and enables modeling of the structure of full-length OmpA. Structure 22:781-90
Zhuang, Tiandi; Tamm, Lukas K (2014) Control of the conductance of engineered protein nanopores through concerted loop motions. Angew Chem Int Ed Engl 53:5897-902
Buchanan, Kyle D; Huang, Shao-Ling; Kim, Hyunggun et al. (2010) Encapsulation of NF-kappaB decoy oligonucleotides within echogenic liposomes and ultrasound-triggered release. J Control Release 141:193-8
Lei, Guohua; MacDonald, Robert C (2008) Effects on interactions of oppositely charged phospholipid vesicles of covalent attachment of polyethylene glycol oligomers to their surfaces: adhesion, hemifusion, full fusion and ""endocytosis"". J Membr Biol 221:97-106
Koynova, Rumiana; Wang, Li; Macdonald, Robert C (2008) Cationic phospholipids forming cubic phases: lipoplex structure and transfection efficiency. Mol Pharm 5:739-44
Koynova, Rumiana; Wang, Li; MacDonald, Robert C (2007) Synergy in lipofection by cationic lipid mixtures: superior activity at the gel-liquid crystalline phase transition. J Phys Chem B 111:7786-95
Koynova, Rumiana; Macdonald, Robert C (2007) Natural lipid extracts and biomembrane-mimicking lipid compositions are disposed to form nonlamellar phases, and they release DNA from lipoplexes most efficiently. Biochim Biophys Acta 1768:2373-82
Koynova, Rumiana; Tarahovsky, Yury S; Wang, Li et al. (2007) Lipoplex formulation of superior efficacy exhibits high surface activity and fusogenicity, and readily releases DNA. Biochim Biophys Acta 1768:375-86
Pozharski, Edwin V; MacDonald, Robert C (2007) Single lipoplex study of cationic lipoid-DNA, self-assembled complexes. Mol Pharm 4:962-74
Wang, Li; MacDonald, Robert C (2007) Synergistic effect between components of mixtures of cationic amphipaths in transfection of primary endothelial cells. Mol Pharm 4:615-23

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