Dietary linoleic acid and polyunsaturated fatty acids in rat brain and other organs. Minimal requirements of linoleic acid
- 1 August 1990
- Vol. 25 (8) , 465-472
- https://doi.org/10.1007/bf02538090
Abstract
Starting three weeks before mating, 12 groups of female rats were fed different amounts of linoleic acid (18∶2n−6). Their male pups were killed when 21-days-old. Varying the dietary 18∶2n−6 content between 150 and 6200 mg/100 g food intake had the following results. Linoleic acid levels remained very low in brain, myelin, synaptosomes, and retina. In contrast, 18∶2n−6 levels increased in sciatic nerve. In heart, linoleic acid levels were high, but were not related to dietary linoleic acid intake. Levels of 18∶2n−6 were significantly increased in liver, lung, kidney, and testicle and were even higher in muscle and adipose tissue. On the other hand, in heart a constant amount of 18∶2n−6 was found at a low level of dietary 18∶2n−6. Constant levels of arachidonic acid (20∶4n−6) were reached at 150 mg/100 g diet in all nerve structures, and at 300 mg/100g diet in testicle and muscle, at 800 mg/100 g diet in kidney, and at 1200 mg/100 g diet in liver, lung, and heart. Constant adrenic acid (22∶4n−6) levels were obtained at 150, 900, and 1200 mg/100 g diet in myelin, sciatic nerve, and brain, respectively. Minimal levels were difficult to determine. In all fractions examined accumulation of docosapentaenoic acid (22∶5n−6) was the most direct and specific consequence of increasing amounts of dietary 18∶2n−6. Tissue eicosapentaenoic acid (20∶5n−3) and 22∶5n−3 levels were relatively independent of dietary 18∶2n−6 intake, except in lung, liver, and kidney. In several organs (muscle, lung, kidney, liver, heart) as well as in myelin, very low levels of dietary linoleic acid led to an increase in 20∶5n−3. Dietary requirements for 18∶2n−6 varied from 150 to 1200 mg/100 g food intake, depending on the organ and the nature of the tissue fatty acid. Therefore, the minimum dietary requirement is estimated to be about 1200 mg/100 g (i.e., the level that ensures stable and constant amounts of arachidonic acid).Keywords
This publication has 36 references indexed in Scilit:
- The modification of mammalian membrane polyunsaturated fatty acid composition in relation to membrane fluidity and functionPublished by Elsevier ,2003
- Retinal Function in Rats and Guinea-Pigs Reared on Diets Low in Essential Fatty Acids and Supplemented with Linoleic or Linolenic AcidsAnnals of Nutrition and Metabolism, 1986
- Alterations in the Fatty Acid Composition of Rat Brain Cells (Neurons, Astrocytes, and Oligodendrocytes) and of Subcellular Fractions (Myelin and Synaptosomes) Induced by a Diet Devoid of n‐3 Fatty AcidsJournal of Neurochemistry, 1984
- Release of immunoreactive TRH in serum-free cultures of mouse hypothalamic cellsDevelopmental Brain Research, 1983
- Loss of delta-6-desaturase activity as a key factor in agingMedical Hypotheses, 1981
- Nutritional and hormonal factors influencing desaturation of essential fatty acidsProgress in Lipid Research, 1981
- IN VITRO FORMATION OF POLYUNSATURATED FATTY ACIDS BY DESATURATION IN RAT BRAIN: SOME PROPERTIES OF THE ENZYMES IN DEVELOPING BRAIN AND COMPARISONS WITH LIVER1Journal of Neurochemistry, 1978
- ACCUMULATION OF TRIENOIC FATTY ACIDS IN RAT BRAIN AFTER DEPLETION OF LIVER (n‐6) POLYUNSATURATED FATTY ACIDSJournal of Neurochemistry, 1975
- The absence of an 8-desaturaseinratliver: A reevaluation of optional pathways for the metabolism of linoleic and linolenic acidsBiochimica et Biophysica Acta (BBA) - Lipids and Lipid Metabolism, 1975
- Linoleic- and linolenic acid dependency of some brain membrane-bound enzymes after lipid deprivation in ratsBiochemical and Biophysical Research Communications, 1974