Phospholipids are a diverse class of amphipathic molecules present in all biological membranes. Because of the difficulties encountered in working with membrane components, little is known about the enzymatic and genetic control of phospholipid metabolism, or about the role of individual phospholipid species in membrane function. A greater understanding of this aspect of membrane biochemistry would be desirable, since phospholipids play a role in many disease processes, including hyperlipoproteinemias, sphingolipidoses and diabetes. The isolation and characterization of mutants lacking specific lipid molecules are the major goals of this project. The identification of genes that code for the enzymes involved in the synthesis and assembly of membrane lipids has rceived very little attention. Even in a simple organism like E. coli there must be 100-200 of such genes. At best, one-third of these have been identified. In the coming grant period, there will be three major areas of emphasis. 1) The enzymatic synthesis of the lipid A component of lipopolysaccharide will be elucidated. The P.I.'s recent discovery of the novel lipids 2, 3-diacyl-glucosamine 1-phosphate and UDP-2, 3-diacylglucosamine in E. coli pgsB mutants forms the basis for this effort. 2) Mutants in the biogenesis of lipid A will be isolated as the enzymatic studies unfold. Colony autoradiography techniques previously developed for isolation of mutants in phospholipid synthesis will be used for this purpose. 3) The control of membrane lipid biogenesis - especially the partitioning of chloroform-soluble nucleotides into different pathways -will be examined with genetic and biochemical techniques. The elucidation of lipid A biosynthesis in the context of recent revisions of its covalent structure are of special medical significance, since lipid A is responsible for endotoxic shock associated with Gram-negative sepsis and it has many important effects on the immune system.

Agency
National Institute of Health (NIH)
Institute
National Institute of Arthritis, Diabetes, Digestive and Kidney Diseases (NIADDK)
Type
Research Project (R01)
Project #
2R01AM019551-09
Application #
3151228
Study Section
Microbial Physiology and Genetics Subcommittee 2 (MBC)
Project Start
1977-01-01
Project End
1989-12-31
Budget Start
1985-01-01
Budget End
1985-12-31
Support Year
9
Fiscal Year
1985
Total Cost
Indirect Cost
Name
University of Wisconsin Madison
Department
Type
Earth Sciences/Resources
DUNS #
161202122
City
Madison
State
WI
Country
United States
Zip Code
53715
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Icho, T (1988) Membrane-bound phosphatases in Escherichia coli: sequence of the pgpB gene and dual subcellular localization of the pgpB product. J Bacteriol 170:5117-24
Brozek, K A; Bulawa, C E; Raetz, C R (1987) Biosynthesis of lipid A precursors in Escherichia coli. A membrane-bound enzyme that transfers a palmitoyl residue from a glycerophospholipid to lipid X. J Biol Chem 262:5170-9
Ray, B L; Raetz, C R (1987) The biosynthesis of gram-negative endotoxin. A novel kinase in Escherichia coli membranes that incorporates the 4'-phosphate of lipid A. J Biol Chem 262:1122-8
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Golenbock, D T; Will, J A; Raetz, C R et al. (1987) Lipid X ameliorates pulmonary hypertension and protects sheep from death due to endotoxin. Infect Immun 55:2471-6
Raetz, C R (1986) Molecular genetics of membrane phospholipid synthesis. Annu Rev Genet 20:253-95
Crowell, D N; Anderson, M S; Raetz, C R (1986) Molecular cloning of the genes for lipid A disaccharide synthase and UDP-N-acetylglucosamine acyltransferase in Escherichia coli. J Bacteriol 168:152-9
Strain, S M; Armitage, I M; Anderson, L et al. (1985) Location of polar substituents and fatty acyl chains on lipid A precursors from a 3-deoxy-D-manno-octulosonic acid-deficient mutant of Salmonella typhimurium. Studies by 1H, 13C, and 31P nuclear magnetic resonance. J Biol Chem 260:16089-98

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