Literature DB >> 10227680

Lipid changes in Niemann-Pick disease type C brain: personal experience and review of the literature.

M T Vanier1.   

Abstract

Niemann-Pick disease type C (NPC) is a neurovisceral disorder characterized by lysosomal sequestration of endocytosed LDL-cholesterol, premature and abnormal enrichment of cholesterol in trans Golgi cisternae and accompanying anomalies in intracellular sterol trafficking. In addition to cholesterol, the NPC lesion has also been shown to impact the metabolism of sphingolipids. Lipids, more particularly glycolipids, were studied in brain tissue from eight cases with proven NPC, ranging from 21 fetal weeks to 19 years of age (one case with rapidly fatal neonatal cholestatic icterus, three cases with infantile neurological onset, one late infantile and two juvenile neurological cases). In gray matter, the concentrations of total cholesterol, sphingomyelin and total gangliosides were within the normal range in all cases. In white matter, a severe loss of galactosylceramide and other myelin lipids (including cholesterol) was prominent in patients with the neurological severe infantile form (levels similar to those in 6-8 month-old infants) or the late infantile form of the disease, but only a slight decrease was observed in patients with a juvenile neurological onset. Analysis of the ganglioside profiles and study of minor neutral glycolipids revealed striking abnormalities, although not present at the fetal stage. In cerebral cortex, gangliosides GM3 and GM2 showed a significant increase, 10-15 fold and 3-5-fold the normal level, respectively, with already some abnormalities in a 3-month-old patient. Except in the latter patient, a prominent storage of glucosylceramide, lactosylceramide and gangliotriaosylceramide (asialo-GM2) was observed, with 10-50-fold increases from the normal concentration. The fatty acid composition of these glycolipids suggests that they have a neuronal origin. A slight increase of globotriaosyl- and globotetraosylceramide and of more complex neutral glycolipids also occurred. While ganglioside changes were essentially similar in gray and white matter, changes of the neutral glycolipids were only minimal in the latter. Our data are in good accordance with previous studies and provide additional information. They emphasize that, apart a varying demyelinating process (most pronounced in children with a severe infantile neurological form) brain lipids abnormalities are essentially located to the gray matter. They confirm and give more precise information on the glycolipid nature of the neuronal storage, and establish that a similar type of changes occurs in the different neurological forms of the disease. Yet, our study indicates that glycolipid changes in brain do not occur before a few months after birth, possibly at a period concomitant with the onset of neurological symptoms, in contrast to the very early glycolipid abnormalities observed in non-neural organs. Glycolipid changes rather similar to those seen in NPC brain, in particular for gangliosides, have been described for other lysosomal disorders such as Niemann-Pick type A and mucopolysaccharidoses. The glucosyl-and lactosylceramide accumulation, however, is more striking in NPC, especially taking into account that there is no other known storage in NPC brain. Some neuropathological changes, such as ectopic neurites, could be related to the glycolipid changes. Metabolic studies in cultured fibroblasts combined to the observation that no lipids other than glycolipids accumulate in brain suggest that the NPC gene products possibly participate in intracellular transport or regulate metabolism of glycolipids.

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Year:  1999        PMID: 10227680     DOI: 10.1023/a:1022575511354

Source DB:  PubMed          Journal:  Neurochem Res        ISSN: 0364-3190            Impact factor:   3.996


  51 in total

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Journal:  J Neurochem       Date:  1978-05       Impact factor: 5.372

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  72 in total

1.  Niemann-Pick C1 disease: correlations between NPC1 mutations, levels of NPC1 protein, and phenotypes emphasize the functional significance of the putative sterol-sensing domain and of the cysteine-rich luminal loop.

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Journal:  Am J Hum Genet       Date:  2001-05-01       Impact factor: 11.025

2.  Characterization of the Subventricular-Thalamo-Cortical Circuit in the NP-C Mouse Brain, and New Insights Regarding Treatment.

Authors:  Min Hee Park; Byung Jo Choi; Min Seock Jeong; Ju Youn Lee; In Kyung Jung; Kang Ho Park; Hye Won Lee; Tomoyuki Yamaguchi; Hugo H Marti; Beom Hee Lee; Edward H Schuchman; Hee Kyung Jin; Jae-Sung Bae
Journal:  Mol Ther       Date:  2019-05-16       Impact factor: 11.454

3.  Therapeutic potential of cyclodextrins in the treatment of Niemann-Pick type C disease.

Authors:  Benny Liu
Journal:  Clin Lipidol       Date:  2012-06

4.  [International Children's Day].

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Journal:  Pediatriia       Date:  1977-06

5.  Generation of a human neuronal stable cell model for niemann-pick C disease by RNA interference.

Authors:  Laura Rodríguez-Pascau; Maria Josep Coll; Josefina Casas; Lluïsa Vilageliu; Daniel Grinberg
Journal:  JIMD Rep       Date:  2011-11-01

6.  Sphingolipid signalling mediates mitochondrial dysfunctions and reduced chronological lifespan in the yeast model of Niemann-Pick type C1.

Authors:  Rita Vilaça; Elísio Silva; André Nadais; Vítor Teixeira; Nabil Matmati; Joana Gaifem; Yusuf A Hannun; Maria Clara Sá Miranda; Vítor Costa
Journal:  Mol Microbiol       Date:  2013-12-12       Impact factor: 3.501

7.  GM2/GD2 and GM3 gangliosides have no effect on cellular cholesterol pools or turnover in normal or NPC1 mice.

Authors:  Hao Li; Stephen D Turley; Benny Liu; Joyce J Repa; John M Dietschy
Journal:  J Lipid Res       Date:  2008-04-30       Impact factor: 5.922

8.  Genetic evidence for nonredundant functional cooperativity between NPC1 and NPC2 in lipid transport.

Authors:  David E Sleat; Jennifer A Wiseman; Mukarram El-Banna; Sandy M Price; Lucie Verot; Michael M Shen; G Stephen Tint; Marie T Vanier; Steven U Walkley; Peter Lobel
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Review 9.  Cholesterol synthesis inhibitor U18666A and the role of sterol metabolism and trafficking in numerous pathophysiological processes.

Authors:  Richard J Cenedella
Journal:  Lipids       Date:  2009-05-14       Impact factor: 1.880

10.  Regulation of sterol transport between membranes and NPC2.

Authors:  Zhi Xu; William Farver; Sarala Kodukula; Judith Storch
Journal:  Biochemistry       Date:  2008-09-30       Impact factor: 3.162

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