Separation of alkenylacyl, alkylacyl, and diacyl analogues and their molecular species by high performance liquid chromatography.

High performance liquid chromatography methods were established for separation of alkenylacyl, alkylacyl, and diacyl acetylglycerols derived from ethanolamine glycerophospholipids (EGP) and for separation of the individual molecular species from each of the separated classes. The EGP were isolated f...

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Main Authors: Y Nakagawa, L A Horrocks
Format: Article
Language:English
Published: Elsevier 1983-09-01
Series:Journal of Lipid Research
Online Access:http://www.sciencedirect.com/science/article/pii/S0022227520379098
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spelling doaj-8f7b6658a5924d46ba6f5ede31fbdf832021-04-25T04:17:13ZengElsevierJournal of Lipid Research0022-22751983-09-0124912681275Separation of alkenylacyl, alkylacyl, and diacyl analogues and their molecular species by high performance liquid chromatography.Y NakagawaL A HorrocksHigh performance liquid chromatography methods were established for separation of alkenylacyl, alkylacyl, and diacyl acetylglycerols derived from ethanolamine glycerophospholipids (EGP) and for separation of the individual molecular species from each of the separated classes. The EGP were isolated from bovine brain, hydrolyzed with phospholipase C, and acetylated with acetic anhydride. The three classes of diradylacetylglycerols were separated quantitatively on a mu Porasil silica column. Individual classes were further fractionated on a Zorbax ODS reverse phase column. By gas--liquid chromatographic quantitation of each peak, 29-33 different molecular species were identified within each class. For alkenylacyl-GPE, the major species were 18:1-18:1, 21.8%, and 16:0-18:1, 14.8%. Polyenoic fatty acids predominated at the 2-position of diacyl-GPE. The major species were 18:0-22:6 (n-3), 25.5%, and 18:0-20:4 (n-6), 15.8%. Three species of alkylacyl-GPE, 18:0-20:6 (n-3), 16:0-22:4 (n-6), and 18:0-22:4 (n-6), each accounted for 10%.http://www.sciencedirect.com/science/article/pii/S0022227520379098
collection DOAJ
language English
format Article
sources DOAJ
author Y Nakagawa
L A Horrocks
spellingShingle Y Nakagawa
L A Horrocks
Separation of alkenylacyl, alkylacyl, and diacyl analogues and their molecular species by high performance liquid chromatography.
Journal of Lipid Research
author_facet Y Nakagawa
L A Horrocks
author_sort Y Nakagawa
title Separation of alkenylacyl, alkylacyl, and diacyl analogues and their molecular species by high performance liquid chromatography.
title_short Separation of alkenylacyl, alkylacyl, and diacyl analogues and their molecular species by high performance liquid chromatography.
title_full Separation of alkenylacyl, alkylacyl, and diacyl analogues and their molecular species by high performance liquid chromatography.
title_fullStr Separation of alkenylacyl, alkylacyl, and diacyl analogues and their molecular species by high performance liquid chromatography.
title_full_unstemmed Separation of alkenylacyl, alkylacyl, and diacyl analogues and their molecular species by high performance liquid chromatography.
title_sort separation of alkenylacyl, alkylacyl, and diacyl analogues and their molecular species by high performance liquid chromatography.
publisher Elsevier
series Journal of Lipid Research
issn 0022-2275
publishDate 1983-09-01
description High performance liquid chromatography methods were established for separation of alkenylacyl, alkylacyl, and diacyl acetylglycerols derived from ethanolamine glycerophospholipids (EGP) and for separation of the individual molecular species from each of the separated classes. The EGP were isolated from bovine brain, hydrolyzed with phospholipase C, and acetylated with acetic anhydride. The three classes of diradylacetylglycerols were separated quantitatively on a mu Porasil silica column. Individual classes were further fractionated on a Zorbax ODS reverse phase column. By gas--liquid chromatographic quantitation of each peak, 29-33 different molecular species were identified within each class. For alkenylacyl-GPE, the major species were 18:1-18:1, 21.8%, and 16:0-18:1, 14.8%. Polyenoic fatty acids predominated at the 2-position of diacyl-GPE. The major species were 18:0-22:6 (n-3), 25.5%, and 18:0-20:4 (n-6), 15.8%. Three species of alkylacyl-GPE, 18:0-20:6 (n-3), 16:0-22:4 (n-6), and 18:0-22:4 (n-6), each accounted for 10%.
url http://www.sciencedirect.com/science/article/pii/S0022227520379098
work_keys_str_mv AT ynakagawa separationofalkenylacylalkylacylanddiacylanaloguesandtheirmolecularspeciesbyhighperformanceliquidchromatography
AT lahorrocks separationofalkenylacylalkylacylanddiacylanaloguesandtheirmolecularspeciesbyhighperformanceliquidchromatography
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