Abstract
Docosahexaenoic acid [22:6(n-3); 22:6(4,-7,10,13,16,19) (DHA)] is required in quantity by the developing nervous system of the fetus. This need could be met through synthesis of DHA from linolenic acid in the fetus or through placental transfer of DHA directly. To study the placental transfer of n-3 fatty acids, we obtained umbilical and maternal blood samples from 26 healthy women and infants at parturition and measured the fatty acid composition and content of both plasma and erythrocytes. A striking finding was a considerable venous-arterial difference for DHA in the umbilical erythrocytes as a proportion of total fatty acids and in absolute concentration. This difference of 2.2 micrograms per billion erythrocytes was 6 times larger than the difference in fetal plasma, when the plasma and erythrocyte concentrations were normalized to whole blood. Most other erythrocyte fatty acids showed a similar trend. In umbilical plasma, significant venous-arterial differences were found for 16:0, 16:1, 18:2, and total saturated fatty acids. There was a similar trend for most other plasma fatty acids. Compared with maternal blood, fetal plasma and erythrocytes had higher levels of 20:4 and DHA and lower levels of 18:2 and 18:3(n - 3) fatty acids as a proportion of total fatty acids. These results suggest that erythrocytes play a major role in the necessary transport of the essential fatty acid DHA into the fetus.
MeSH Terms
Arachidonic Acid
Arachidonic Acids/blood
Docosahexaenoic Acids/blood
Erythrocytes/metabolism
Fatty Acids/blood
Fatty Acids, Unsaturated/blood
Female
Fetal Blood/physiology
Fetus
Humans
Maternal-Fetal Exchange
Pregnancy
Umbilical Arteries/physiology
Umbilical Veins/physiology
Chemicals
Arachidonic Acids
Fatty Acids
Fatty Acids, Unsaturated
Docosahexaenoic Acids
Arachidonic Acid
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Ruyle M
Department of Medicine, Oregon Health Sciences University, Portland 97201.
Connor W E
Anderson G J
Lowensohn R I
References (24)
24 references, click to expand
-
Composition of phospholipids and of phospholipid fatty acids and aldehydes in human red cells.
J Lipid Res. 1967 Nov;8(6):667-75
PMID: 6057495
-
Polydipsia in rhesus monkeys deficient in omega-3 fatty acids.
Physiol Behav. 1990 Feb;47(2):315-23
PMID: 2159161
-
Human fetal insulin response after acute maternal glucose administration during labor.
Pediatrics. 1969 Nov;44(5):668-71
PMID: 4911916
-
Influence of environmental temperature and acidosis on lipid mobilization in the human infant during the first two hours after birth.
Acta Paediatr Scand. 1971 Jul;60(4):385-98
PMID: 5556382
-
Arteriovenous nonesterified fatty acids and glycerol differences in the umbilical cord at term and their relationship to fetal metabolism.
Am J Obstet Gynecol. 1972 Jun 1;113(3):358-62
PMID: 4637027
-
The effect of different dietary levels of essential fatty acids on lipids of rat cerebrum during maturation.
J Neurochem. 1974 Dec;23(6):1263-70
PMID: 4452906
-
Essential fatty acids and fetal brain growth.
Lancet. 1976 Feb 28;1(7957):452-3
PMID: 55720
-
Cord blood fatty acid composition in infants and in their mothers during the third trimester.
J Pediatr. 1978 Mar;92(3):461-6
PMID: 632993
-
Synthesis of arachidonic acid in the human placenta in vitro.
Biol Neonate. 1979;35(3-4):209-12
PMID: 435597
-
Evidence for fatty acid transfer across the human placenta.
Ciba Found Symp. 1978 Mar 30-Apr 1;(63):75-91
PMID: 256547
-
Structural organization and dynamics of phospholipids in red cell membranes.
Prog Clin Biol Res. 1979;30:451-6
PMID: 531035
-
Fatty acid utilization in perinatal de novo synthesis of tissues.
Early Hum Dev. 1981 Sep;5(4):355-66
PMID: 7285840
-
Dietary omega-3 fatty acid deficiency and visual loss in infant rhesus monkeys.
J Clin Invest. 1984 Jan;73(1):272-6
PMID: 6317716
-
Red blood cell as glucose carrier: significance for placental and cerebral glucose transfer.
Am J Physiol. 1984 Mar;246(3 Pt 2):R289-98
PMID: 6367491
-
The transfer of free fatty acids across the human placenta.
Br J Obstet Gynaecol. 1985 Sep;92(9):945-52
PMID: 2931099
-
The rate of uptake and efflux of phosphatidylcholine from human erythrocytes depends on the fatty acyl composition of the exchanging species.
Biochim Biophys Acta. 1986 May 9;857(1):75-84
PMID: 3964706
-
Biochemical and functional effects of prenatal and postnatal omega 3 fatty acid deficiency on retina and brain in rhesus monkeys.
Proc Natl Acad Sci U S A. 1986 Jun;83(11):4021-5
PMID: 3459166
-
n-3 fatty acids in the brain and retina: evidence for their essentiality.
Nutr Rev. 1986 Sep;44(9):285-94
PMID: 3537864
-
Docosahexaenoic acid status of preterm infants at birth and following feeding with human milk or formula.
Am J Clin Nutr. 1986 Dec;44(6):798-804
PMID: 2947455
-
The essentiality of n-3 fatty acids for the development and function of the retina and brain.
Annu Rev Nutr. 1988;8:517-41
PMID: 3060176
-
Amino acid transport in human red blood cells.
Acta Psychiatr Scand Suppl. 1988;345:25-8
PMID: 3227987
-
Membrane docosahexaenoate is supplied to the developing brain and retina by the liver.
Proc Natl Acad Sci U S A. 1989 Apr;86(8):2903-7
PMID: 2523075
-
Rapid modulation of the n-3 docosahexaenoic acid levels in the brain and retina of the newly hatched chick.
J Lipid Res. 1989 Mar;30(3):433-41
PMID: 2542425
-
Transfer of free fatty acids across the primate placenta.
Am J Physiol. 1969 Jan;216(1):143-7
PMID: 4974724