Transverse and lateral distribution of phospholipids and glycolipids in the membrane of the bacterium Micrococcus luteus. 1989

J de Bony, and A Lopez, and M Gilleron, and M Welby, and G Lanéelle, and B Rousseau, and J P Beaucourt, and J F Tocanne
Centre de recherche de Biochimie et de Génétique cellulaires du CNRS, Toulouse, France.

The photodimerization of anthracene was used to investigate the transverse and lateral distribution of lipids in the membrane of the Gram-positive bacterium Micrococcus luteus. 9-(2-Anthryl)nonanoic acid (9-AN) is incorporated at a high rate into various membrane lipids of M. luteus. On irradiation of intact bacteria at 360 nm, anthracene-labeled lipids form stable photodimers which can be extracted and separated by thin-layer chromatography. We present here the results of a study on the distribution of two major lipids, phosphatidylglycerol (PG) and dimannosyldiacylglycerol (DMDG), within each leaflet of the membrane lipid bilayer. After metabolic incorporation of a tritiated derivative of 9-AN in M. luteus, the radioactivity associated with the photodimers issued from PG and DMDG was counted. In the bacterial membrane, the ratio of PG-DMDG heterodimer with respect to PG-PG and DMDG-DMDG homodimers is around half of what should be obtained for a homogeneous mixture of the two lipids. In order to find out whether this was due to an asymmetric distribution of the two lipids between the two membrane leaflets or a heterogeneous distribution of the two lipids within the same membrane leaflet, the transverse distribution of PG and DMDG was also investigated. This was carried out by following the kinetics of oxidation of the two lipids by periodic acid in the membrane of M. luteus protoplasts. PG predominated slightly in the outer layer (60%), while DMDG was found to be symmetrically distributed between the two leaflets. By itself, this lipid asymmetry cannot account for the lipid distribution determined from the photodimerization experiments. This indicates that PG and DMDG are not homogeneously distributed in the plane of the bacterial membrane.

UI MeSH Term Description Entries
D007700 Kinetics The rate dynamics in chemical or physical systems.
D008433 Mathematics The deductive study of shape, quantity, and dependence. (From McGraw-Hill Dictionary of Scientific and Technical Terms, 6th ed) Mathematic
D008563 Membrane Lipids Lipids, predominantly phospholipids, cholesterol and small amounts of glycolipids found in membranes including cellular and intracellular membranes. These lipids may be arranged in bilayers in the membranes with integral proteins between the layers and peripheral proteins attached to the outside. Membrane lipids are required for active transport, several enzymatic activities and membrane formation. Cell Membrane Lipid,Cell Membrane Lipids,Membrane Lipid,Lipid, Cell Membrane,Lipid, Membrane,Lipids, Cell Membrane,Lipids, Membrane,Membrane Lipid, Cell,Membrane Lipids, Cell
D008837 Micrococcus A genus of gram-positive, spherical bacteria found in soils and fresh water, and frequently on the skin of man and other animals.
D008962 Models, Theoretical Theoretical representations that simulate the behavior or activity of systems, processes, or phenomena. They include the use of mathematical equations, computers, and other electronic equipment. Experimental Model,Experimental Models,Mathematical Model,Model, Experimental,Models (Theoretical),Models, Experimental,Models, Theoretic,Theoretical Study,Mathematical Models,Model (Theoretical),Model, Mathematical,Model, Theoretical,Models, Mathematical,Studies, Theoretical,Study, Theoretical,Theoretical Model,Theoretical Models,Theoretical Studies
D010084 Oxidation-Reduction A chemical reaction in which an electron is transferred from one molecule to another. The electron-donating molecule is the reducing agent or reductant; the electron-accepting molecule is the oxidizing agent or oxidant. Reducing and oxidizing agents function as conjugate reductant-oxidant pairs or redox pairs (Lehninger, Principles of Biochemistry, 1982, p471). Redox,Oxidation Reduction
D010743 Phospholipids Lipids containing one or more phosphate groups, particularly those derived from either glycerol (phosphoglycerides see GLYCEROPHOSPHOLIPIDS) or sphingosine (SPHINGOLIPIDS). They are polar lipids that are of great importance for the structure and function of cell membranes and are the most abundant of membrane lipids, although not stored in large amounts in the system. Phosphatides,Phospholipid
D010777 Photochemistry A branch of physical chemistry which studies chemical reactions, isomerization and physical behavior that may occur under the influence of visible and/or ultraviolet light. Photochemistries
D002462 Cell Membrane The lipid- and protein-containing, selectively permeable membrane that surrounds the cytoplasm in prokaryotic and eukaryotic cells. Plasma Membrane,Cytoplasmic Membrane,Cell Membranes,Cytoplasmic Membranes,Membrane, Cell,Membrane, Cytoplasmic,Membrane, Plasma,Membranes, Cell,Membranes, Cytoplasmic,Membranes, Plasma,Plasma Membranes
D006017 Glycolipids Any compound containing one or more monosaccharide residues bound by a glycosidic linkage to a hydrophobic moiety such as an acylglycerol (see GLYCERIDES), a sphingoid, a ceramide (CERAMIDES) (N-acylsphingoid) or a prenyl phosphate. (From IUPAC's webpage) Glycolipid

Related Publications

J de Bony, and A Lopez, and M Gilleron, and M Welby, and G Lanéelle, and B Rousseau, and J P Beaucourt, and J F Tocanne
April 1996, FEBS letters,
J de Bony, and A Lopez, and M Gilleron, and M Welby, and G Lanéelle, and B Rousseau, and J P Beaucourt, and J F Tocanne
December 1998, Journal of marine biotechnology,
J de Bony, and A Lopez, and M Gilleron, and M Welby, and G Lanéelle, and B Rousseau, and J P Beaucourt, and J F Tocanne
January 1980, Neurochemistry international,
J de Bony, and A Lopez, and M Gilleron, and M Welby, and G Lanéelle, and B Rousseau, and J P Beaucourt, and J F Tocanne
February 1980, Biochemical Society transactions,
J de Bony, and A Lopez, and M Gilleron, and M Welby, and G Lanéelle, and B Rousseau, and J P Beaucourt, and J F Tocanne
February 1976, Journal of bacteriology,
J de Bony, and A Lopez, and M Gilleron, and M Welby, and G Lanéelle, and B Rousseau, and J P Beaucourt, and J F Tocanne
March 1990, The Biochemical journal,
J de Bony, and A Lopez, and M Gilleron, and M Welby, and G Lanéelle, and B Rousseau, and J P Beaucourt, and J F Tocanne
July 2004, Microbial ecology,
J de Bony, and A Lopez, and M Gilleron, and M Welby, and G Lanéelle, and B Rousseau, and J P Beaucourt, and J F Tocanne
January 1976, Biochimie,
J de Bony, and A Lopez, and M Gilleron, and M Welby, and G Lanéelle, and B Rousseau, and J P Beaucourt, and J F Tocanne
December 1977, Nature,
J de Bony, and A Lopez, and M Gilleron, and M Welby, and G Lanéelle, and B Rousseau, and J P Beaucourt, and J F Tocanne
September 1974, Annales de microbiologie,
Copied contents to your clipboard!