A Study of Phospholipids and Galactolipids in Pollen of Two Lines of Brassica napus L. (Rapeseed) with Different Ratios of Linoleic to Linolenic Acid
Open Access
- 1 June 1990
- journal article
- research article
- Published by Oxford University Press (OUP) in Plant Physiology
- Vol. 93 (2) , 418-424
- https://doi.org/10.1104/pp.93.2.418
Abstract
The phospholipids and galactolipids of the pollen-coat and internal domains of two lines of Brassica napus, Wesroona and IXLIN, with different linoleic/linolenic acid ratios (18:2/18:3) have been characterized by normal phase silica high performance liquid chromatography and gas liquid chromatography. The polar lipids of the pollen-coat are similar to leaf lipids in the high proportion of galactolipids (almost 50%) and the fatty acids; 18:3, palmitic (16:0) and hexadecatrienoic (16:3). In contrast, the pollen internal domain, although rich in 18:3, 18:2 and 16:0, is composed primarily of phosphatidyl-choline, -ethanolamine, and -inositol whose 18:2/18:3 ratio is correlated with that of the seed generation. The difference between the two divergent 18:2/18:3 ratio lines is most evident in the internal domain phospholipids. The 18:2/18:3 ratio of the galactolipids of both pollen domains is not significantly effected by the line genotype. The results are interpreted in terms of the previously described `prokaryotic' and `eukaryotic' plant desaturation pathways (PG Roughan, CR Slack [1982] Annu Rev Plant Physiol 33: 97-132). We propose that the eukaryotic pathway is the major desaturation pathway providing polyunsaturated fatty acids to the haploid-specified internal domain in which the IXLIN genotype modifies the activity of the sn-2 linoleoyl phosphatidylcholine desaturase/s of the endoplasmic reticulum. In the diploid-specified pollen-coat, our evidence suggests that a combination of the prokaryotic and eukaryotic pathways contribute polyunsaturated fatty acids.This publication has 14 references indexed in Scilit:
- Differential Effects of a Substituted Pyridazinone, BASF 13-338, on Pathways of Monogalactosyldiacylglycerol Synthesis in ArabidopsisPlant Physiology, 1987
- Separation of lipid classes by high-performance liquid chromatography with the “mass detector”Journal of Chromatography A, 1986
- A Mutant of Arabidopsis Deficient in C18:3 and C16:3 Leaf LipidsPlant Physiology, 1986
- Metabolism of Unsaturated Monogalactosyldiacylglycerol Molecular Species in Arabidopsis thaliana Reveals Different Sites and Substrates for Linolenic Acid SynthesisPlant Physiology, 1986
- Analysis of molecular species of plant polar lipids by high-performance and gas liquid chromatographyPhytochemistry, 1985
- Specificities and Selectivities of Glycerol‐3‐Phosphate Acyltransferase and Monoacylglycerol‐3‐Phosphate Acyltransferase from Pea and Spinach ChloroplastsEuropean Journal of Biochemistry, 1983
- Desaturation of Fatty Acids Associated with Monogalactosyl Diacylglycerol: The Effects of San 6706 and San 9785Plant Physiology, 1981
- A precise localization of cardiolipin in plant cellsBiochimica et Biophysica Acta (BBA) - Lipids and Lipid Metabolism, 1980
- The biosynthesis of linoleate and α-linolenate in homogenates from developing soya bean cotyledonsPlant Science Letters, 1980
- The role of plastids in the formation of pollen grain coatings.1973