By Magdi M Mossoba
Content material: approach and functions in lipid research / NIls Hinrichsen and Hans Steinhart -- an outline of contemporary mass spectrometry equipment within the toolbox of lipid chemists and biochemists / R. Moreau -- international mobile lipidome analyses through shotgun lipidomics utilizing multidimensional mass spectrometry / X. Han and R.W. Gross -- LC/MS and chiral separation / A. Kuksis and Y. Itabashi -- LC/MS and lipid oxidation / A. Kuksis and O. Sjovall -- Structural research of unsaturated fatty acid methyl ester isomers with acetonitrile covalent adduct chemical ionization (CACI) / J.T. Brenna -- fresh advances in silver-ion HPLC using acetonitrile in hexane as solvent: temperature results on lipid elution orders/resolution / R.O. Adlof -- research of trans-18:1 fatty acids by means of silver ion HPLC / P. Delmonte, J.K.G. Kramer, and M.P. Yurawecz -- High-performance size-exclusion chromatography for lipid research in natural media / G. Márquez-Ruiz and M.C. Dobarganes -- Lipid separations utilizing packed-column supercritical fluid chromatography / D.G. Hayes --TLC-FID with distinct connection with marine lipids and different high-molecular-weight natural compounds / R.G. Ackman and A. Timmins -- quickly GC for mobile reputation research of micro organism / J.S. purchaser. Use of mobile fatty acids to spot food-borne pathogens by way of infrared spectroscopy and capillary fuel chromatography / M.M. Mossoba and S.F. Al-Khaldi -- program of FT-NIR for swift selection of the trans fatty acid composition in fat and oils / H. Azizian and J.K.G. Kramer -- Infrared spectroscopy and partial least sq. calibration within the simultaneous quantification of remoted trans and conjugated linoleic acids / A.A. Christy -- research of protein-lipid interactions by way of vibrational spectroscopy / G. Meng, N.K. Howell, and E.C.Y. Li-Chan -- fats replacers: an summary / W.E. Artz, S.M. Mahungu, and S.L. Hansen -- Phospholipids: constructions and physicochemical actions / M.C. Erickson -- Waxes and sterols: buildings and chemistry / E.J. Parish and A.D. Bell
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Extra info for Lipid analysis and lipidomics : new techniques and applications
D. Plattner, Ammonia Chemical Ionization Mass Spectrometry of Intact Diacyl Phosphatidylcholine, J. Lipid Res. 24:456–460 (1983). 14. , and N. , Liquid Chromatography-Mass Spectrometry of Lipids, Prog. Lipid Res. 32:221–245 (1983). 15. S. J. D. N. Tyler, Fast Atom Bombardment Mass Spectrometry, Anal. Chem. 64:645A–657A (1982). 16. B. L. Gross, Fast Atom Bombardment and Tandem Mass Spectrometry of Phosphatidylserine and Phosphatidylcholine, Lipids 21:580–588 (1986). 17. C. Murphy, Characterization of Chain-Shortened Oxidized Glycerophosphocholine Lipids Using Fast Atom Bombardment and Tandem Mass Spectrometry, Anal.
In the infused solution. Similarly, in the negative-ion mode, the ion source selectively ionizes anions and selectively removes the cationic moieties to waste. , OH−, Cl−, formate, acetate) (whatever is available in the matrix) to Copyright (c) 2006 by AOCS Press Chapter03 2/25/06 12:49 PM Page 55 Global Lipidome Analysis by Shotgun Lipidomics 55 yield adduct ions in the presence of high positive or high negative electric fields, respectively. The ionization efficiencies of these electrically neutral analytes depend on the inherent dipoles of the compounds, the concentration of the small matrix ions, the affinity of the small ions toward the analytes, and the resultant electrochemical properties of the adducts.
S. J. D. N. Tyler, Fast Atom Bombardment Mass Spectrometry, Anal. Chem. 64:645A–657A (1982). 16. B. L. Gross, Fast Atom Bombardment and Tandem Mass Spectrometry of Phosphatidylserine and Phosphatidylcholine, Lipids 21:580–588 (1986). 17. C. Murphy, Characterization of Chain-Shortened Oxidized Glycerophosphocholine Lipids Using Fast Atom Bombardment and Tandem Mass Spectrometry, Anal. Biochem. 221:16–24 (1994). 18. H. O. J. J. Quin, K. A. L. Dilliplane, Identification of Ceramide-Phosphoylethanolamine in Oomycete Plant Pathogens: Pythium ultimum, Phytophthora infestans, and Phytophthora capsici, Lipids 33:307–317 (1998).