PubMed Health⌕ Search

PubMed · 988913

[Cavitating neutral fat leukodystrophy with recurrent course].

Abstract

A girl with non-contributory family history, at the age of 7 years developed a recurrent ataxic-spastic syndrome followed by disorders of consciousness and seizures. She died in a decerebrate state at the age of 10 9/12 years. Diffuse EEG abnormalities changed in accordance with the clinical course. CSF findings were always negative. Brain biopsy performed at the age of 9 5/12 years was non-diagnostic. No clinical signs of adrenal insufficiency were present. Neuropathological examination disclosed severe demyelination of the cerebral white matter with formation of large periventricular cavities, relative sparing of the subcortical arcuate fibers, and peripheral myelin breakdown of the orthochromatic (neutral fat) type. There was complete absence of inflammatory lesions, comparative preservation of axons and oligodendroglia with moderate astroglial reaction. The optic system and cerebellum were not involved. Additional postanoxic changes were seen in the thalamus and hippocampus. The sporadic case is suggested to represent a cavitating form of neutral fat (simple orthochromatic) leukodystrophy which is to be separated from Schilder's diffuse sclerosis and adrenoleukodystrophy. The etiology of the disorder is unknown.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

E Deisenhammer, K Jellinger. 1976. [Cavitating neutral fat leukodystrophy with recurrent course].. https://doi.org/10.1055/s-0028-1091614

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related citations

Frameshift mutation in GJA12 leading to nystagmus, spastic ataxia and CNS dys-/demyelination.

Mutations in GJA12 have been shown to cause Pelizaeus-Merzbacher-like disease (PMLD). We present two additional patients from one family carrying a homozygous frameshift mutation in GJA12. Both presented initially with nystagmus. The older girl developed ataxia first, then progressive spastic ataxia. The younger boy suffered from severe sensory neuropathy. Magnetic resonance imaging (MRI) of both children showed progressive demyelination in addition to dysmyelination, and also characteristic brainstem abnormalities. In children with nystagmus, ataxia and dysmyelination, mutation analysis of GJA12 should be considered early, especially if inheritance is autosomal recessive.

Ataxia↗

Biochemical consequences of heritable mutations in the alpha-tocopherol transfer protein.

Tocopherol transfer protein (TTP) regulates vitamin E status by facilitating the secretion of tocopherol from liver to circulating lipoproteins. Heritable mutations in the ttpA gene, encoding for TTP, result in ataxia with vitamin E deficiency (AVED) syndrome, typified by low vitamin E levels and a plethora of neurological disorders. The molecular mechanisms by which TTP facilitates tocopherol secretion are presently unknown. We recently showed that vitamin E is taken up by hepatocytes through an endocytic process and that, shortly following uptake, the vitamin is found primarily in lysosomes. We showed further that TTP is localized to late endocytic vesicles and that it facilitates the intracellular trafficking of tocopherol from lysosomes to the plasma membrane. To gain insight into the molecular mechanisms that underlie TTP actions, we studied the physiological impact of three naturally occurring heritable mutations in the ttpA gene (the R59W, R221W, and A120T substitutions). We found that these mutations impair the ability of TTP to facilitate the secretion of vitamin E from cells. Furthermore, the degree of impairment corresponded to the severity of the AVED pathology associated with each mutation. In cells that express mutated TTP proteins, vitamin E did not traffic to the plasma membrane and remained "trapped" in lysosomes. In addition, we observed that substitution mutations that cause the AVED syndrome impart a marked instability on the TTP protein. These observations suggest that the physiological role of TTP is anchored in its ability to direct vitamin E trafficking from the endocytic compartment to transport vesicles that deliver the vitamin to the site of secretion at the plasma membrane.

Ataxia↗