On the molecular etiology of decreased arachidonic (20:4n-6), docosapentaenoic (22:5n-6) and docosahexaenoic (22:6n-3) acids in Zellweger syndrome and other peroxisomal disorders

被引:0
作者
Juan P. Infante
Virginia A. Huszagh
机构
[1] The Institute for Theoretical Biochemistry and Molecular Biology,
来源
Molecular and Cellular Biochemistry | 1997年 / 168卷
关键词
adrenoleukodystrophy; mitochondrial-disease; carnitine-deficiency; omega-3-fatty-acid; retina; fetal-alcohol-syndrome;
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暂无
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学科分类号
摘要
Alterations in the metabolism of arachidonic (20:4n-6), docosapentaenoic (22:5n-6), and docosahexaenoic (22:6n-3) acids and other polyunsaturated fatty acids in Zellweger syndrome and other peroxisomal disorders are reviewed. Previous proposals that peroxisomes are necessary for the synthesis of 22:6n-3 and 22:5n-6 are critically examined. The data suggest that 22:6n-3 is biosynthesized in mitochondria via a channelled carnitine-dependent pathway involving an n-3-specific D-4 desaturase, while 20:4n-6, 20:5n-3 and 22:5n-6 are synthesized by both mitochondrial and microsomal systems; these pathways are postulated to be interregulated as compensatory-redundant systems. Present evidence suggests that 22:6n-3-containing phospholipids may be required for the biochemical events involved in successful neuronal migration and developmental morphogenesis, and as structural cofactors for the functional assembly and integration of a variety of membrane enzymes, receptors, and other proteins in peroxisomes and other subcellular organelles. A defect in the mitochondrial desaturation pathway is proposed to be a primary etiologic factor in the clinicopathology of Zellweger syndrome and other related disorders. Several implications of this proposal are examined relating to effects of pharmacological agents which appear to inhibit steps in this pathway, such as some hypolipidemics (fibrates), neuroleptics (phenothiazines and phenytoin) and prenatal alcohol exposure.
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页码:101 / 115
页数:14
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共 589 条
  • [61] Narce M(1995)Biosynthesis and composition of phosphatides in outer and inner mitochondrial membranes FASEB J 9 A470-598
  • [62] Huang YS(1987)Microsomal marker enzymes and their limitations in distinguishing the outer membrane of rat liver mitochondria from the microsomes Mol Cell Biochem 74 111-58
  • [63] Horrobin DF(1978)Active labeling of phosphatidylcholines by [1–14C]docosahexaenoate in isolated photoreceptor membranes Proc Soc Exp Biol Med 158 595-37
  • [64] Poisson JP(1988)Labeling of phosphatidylcholines of retinal subcellular fractions by [1–14C]eicosatetraenoate (20:4 Acta Physiol Pharmacol Latinoam 38 49-363
  • [65] Goldfischer S(1993)-6), docosapentaenoate (22:5 Mol Cell Biochem 129 31-471
  • [66] Collins J(1991)-3) and docosahexaenoate (22:6 Lipids 26 359-459
  • [67] Rapin I(1983)-3) Biochim Biophys Acta 750 465-643
  • [68] Newman P(1983)Ultrastructural localization of glycerolipid synthesis in rod cells of the isolated frog retina Biochim Biophys Acta 753 450-237
  • [69] Neglia W(1965)Pathways for the uptake and conservation of docosahexaenoic acid in photoreceptors and synapses: biochemical and autoradiographic studies J Am Oil Chem Soc 42 639-207
  • [70] Spiro AJ(1967)Biosynthesis of acyl-specific glycerophospholipids in mammalian tissues. Postulation of new pathways J Neurochem 14 227-195