Biosynthesis of triacylglycerols containing ricinoleate in castor microsomes using 1‐acyl‐2‐oleoyl‐sn‐glycero‐3‐phosphocholine as the substrate of oleoyl‐12‐hydroxylase
- 1 January 1998
- Vol. 33 (1) , 59-69
- https://doi.org/10.1007/s11745-998-0180-3
Abstract
We have examined the biosynthetic pathway of triacylglycerols containing ricinoleate to determine the steps in the pathway that lead to the high levels of ricinoleate incorporation in castor oil. The biosynthetic pathway was studied by analysis of products resulting from castor microsomal incubation of 1-palmitoyl-2-[14C]oleoyl-sn-glycero-3-phosphocholine, the substrate of oleoyl-12-hydroxylase, using high-performance liquid chromatography, gas chromatography, mass spectrometry, and/or thin-layer chromatography. In addition to formation of the immediate and major metabolite, 1-palmitoyl-2-[14C]rici-noleoyl-sn-glycero-3-phosphocholine, 14C-labeled 2-linoleoyl-phosphatidylcholine (PC), and 14C-labeled phosphatidylethanolamine were also identified as the metabolites. In addition, the four triacylglycerols that constitute castor oil, triricinolein, 1,2-diricinoleoyl-3-oleoyl-sn-glycerol, 1,2-diricinoleoyl-3-linoleoyl-sn-glycerol, 1,2-diricinoleoyl-3-linolenoyl-sn-glycerol, were also identified as labeled metabolites in the incubation along with labeled fatty acids: ricinoleate, oleate, and linoleate. The conversion of PC to free fatty acids by phospholipase A2 strongly favored ricinoleate among the fatty acids on the sn-2 position of PC. A major metabolite, 1-palmitoyl-2-oleoyl-sn-glycerol, was identified as the phospholipase C hydrolyte of the substrate; however, its conversion to triacylglycerols was blocked. In the separate incubations of 2-[14C]ricinoleoyl-PC and [14C]ricinoleate plus CoA, the metabolites were free ricinoleate and the same triacylglycerols that result from incubation with 2-oleoyl-PC. Our results demonstrate the proposed pathway: 2-oleoyl-PC. Out results demonstrate the proposed pathway: 2-oleoyl-PC→2-ricinoleoyl-PC→ricinoleate →triacylglycerols. The first two steps as well as the step of diacylglycerol acyltransferase show preference for producing ricinoleate and incorporating it in triacylglycerols over oleate and linoleate. Thus, the productions of these triacylglycerols in this relatively short incubation (30 min), as well as the availability of 2-oleoyl-PC in vivo, reflect the in vivo drive to produce triricinolein in castor bean.Keywords
This publication has 23 references indexed in Scilit:
- Non-aqueous reversed-phase high-performance liquid chromatography of synthetic triacylglycerols and diacylglycerolsJournal of Chromatography A, 1997
- Ricinoleate biosynthesis in castor microsomesIndustrial Crops and Products, 1997
- Triacylglycerols are synthesised and utilized by transacylation reactions in microsomal preparations of developing safflower ( Carthamus tinctorius L.) seedsPlanta, 1997
- Remodelling of triacylglycerols in microsomal preparations from developing castor bean ( Ricinus communis L.) endospermPlanta, 1997
- Gradient reversed-phase high-performance liquid chromatography of saturated, unsaturated and oxygenated free fatty acids and their methyl estersJournal of Chromatography A, 1995
- Fatty acid biosynthesis in novel ufa mutants of Neurospora crassaMicrobiology, 1994
- Substrates of diacylglycerol acyltransferase in microsomes from developing oil seedsPhytochemistry, 1994
- Phosphatidylethanolamine Synthesis by Castor Bean EndospermPlant Physiology, 1990
- Phosphatidylethanolamine Synthesis in Castor Bean EndospermPlant Physiology, 1981
- Recent Studies of the Enzymic Synthesis of Ricinoleic Acid by Developing Castor BeansPlant Physiology, 1981