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A new unified theory: C-C-2W is the chemical cause of all so-called cholesterol and cholestanol lipidoses.

The water-insoluble cholesterol-cholestanol-water adduct C-C-2W, chemical and physical cause of atherosclerosis and gallstones, has now been found in tendinous xanthoma as well; C-C-2W, and not cholestanol, is the initial compound deposited in hereditary CTX (cerebrotendinous xanthomatosis). From these and other findings it is theorized that what have been termed cholesterol or cholestanol lipidoses should instead be characterized as C-C-2W lipidoses. More than 1 mg of cholestanol . H2O present in the body causes crystallizaion of C-C-2W . This happens when the steroid meets cholesterol . H2O in sufficient concentration to reach a solubility product of 10(-7) mg/ml. In this light the literature can be interpreted to indicate that C-C-2W exerts negative effects on liver, intima tissue, eyes, lungs, and other parts of the body. Those effects include inflammation, cell necrosis, destruction of cell membranes, abnormal growth and, perhaps, neoplastic activity. Up to 200 g of C-C-2W in the body may be tolerated if evenly spread but not if localized in one or two areas only; e.g., the brain or the cardiovascular system. It is estimated that about 1000 g of C-C-2W, even if spread, are beyond the limit of human tolerance.

Cholestanol

The lipidoses: morphologic changes in the nervous system in Gaucher's disease, GM2 gangliosidoses and Niemann-Pick disease.

The present paper presents, in tabular form, most of the inborn errors of lipid metabolism (exclusive of the hyperlipoproteinemias); some may, with further studies, be removed from this category. Three of the lipidoses and their subtypes which are associated with severe neurologic disorders are discussed, i.e., infantile Gaucher's disease, Niemann-Pick disease and the GM2 gangliosidoses. Particular emphasis is placed on the importance of careful biochemical and enzymatic studies of either surgical or autopsy material of any patient suspected of having one of the lipidoses. Only by such studies can an exact diagnosis of virtually all of these inborn errors of lipid metabolism be established. Such a diagnosis is important, since in many instances an antenatal diagnosis is possible by demonstration of the enzymatic defect in cell grown in tissue culture from the amniotic fluid.

Brain

[Lipid storage diseases (lipidoses): genetic, biochemical and clinico-chemical aspects].

Lipidoses are genetic diseases due to disease-specific defects in the enzymatic catabolism of lipids, with accumulation of the respective lipid substrate in the nervous system and/or peripheral tissues. The clinical chemical diagnosis of lipidoses can be accomplished by demonstration of the enzyme defect and/or substrate accumulation in body fluids (urine, blood serum), leukocytes, cultured fibroblasts, amniotic fluid cells, or amniotic fluid, respectively. These assays are important with regard to: 1. the specific detection or exclusion of diseases, which are difficult to diagnose by their clinical presentation, 2. prenatal diagnoses, 3. detection of (clinically inconspicuous) heterozygotes (essential for individual genetic counselling), and 4. the biochemical control of dietary treatment in Refsum's disease.

Brain Diseases, Metabolic

Biochemical, psychometric, and neuropsychological studies in heterozygotes for various lipidoses. Preliminary results.

A sample of 38 clinically unaffected carriers for various lipidoses and their noncarrier relatives was studied with biochemical, psychological, and neuropsychological tests under blind conditions. The largest group of carriers was that for metachromatic leucodystrophy (MLD). The mean activity of arylsulphatase A or cerebroside sulphatase in the obligate carriers was 25%-30% of the control values, some heterozygotes showing little more activity than MLD patients. It was found that compared with the controls all heterozygotes (both obligate and facultative) differ unfavourably in some personality traits and in WISA subtests, including capacity for spatial cognition. These differences are especially obvious in a group of seven MLD carriers from the same family. With respect to reaction times, performance was significantly slower in MLD carriers, and particularly in those with enzyme activity lower than 30% of the control values.

Adolescent

Lipidoses detected in Poland through 1993.

It is estimated that 70-100 children suffering from a lysosomal storage disease are born in Poland every year. From 1975 to 1993, the activity of various lysosomal enzymes was determined in the leukocytes, cultured skin fibroblasts, or hair roots from 5,594 patients, mainly children, in whom the diagnosis of a lipidosis was suspected. In that material 162 cases of a lipidosis were diagnosed. Metachromatic leukodystrophy seems to be the most frequent of the lipidoses; GM1 gangliosidosis is more frequent than GM2 gangliosidosis and Gaucher and Niemann-Pick diseases appear to be almost as frequent as the former.

Adolescent

Histochemical diagnosis of lipidoses.

Contemporary possibilities for the histochemical diagnosis of lipidoses are demonstrated in examples of phospholipidoses, Gaucher's disease, Fabry's disease, sulphatidosis, gangliosidosis and neuronal ceroid-lipofuscinoses.

Biopsy

Lymph node excision as a simple diagnostic aid in rare lipidoses.

Autopsy material from a case of Niemann-Pick disease was subjected to lipid analysis. Among the six tissues investigated, lymph nodes exhibited the greatest storage of several lipids. Since lymph nodes are relatively easy to obtain by biopsy, they may be utilized for chemical diagnosis of this type of lipidosis.

Child

The cerebral lipidoses.

The disorders presented consist of those clinical entities in which a reasonably well defined lipid storage material accumulated within nervous tissue. Many other progressive, degenerative disorders are suspected of being storage disorders, but their chemical pathology remains unclear. Collectively this group could be designated the sphingolipidoses. In each case, the disease is a genetic disturbance and transmitted as an autosomal recessive. Sphingolipid storage in each disorder is associated with deficient activity of a specific degradative enzyme or enzyme system, and these deficient enzymes are all lysosomal hydrolases. Lysosomal hydrolases catalyze the breakdown of complex molecules in digestive vacuoles (phagocytic or autophagic) within the cells. Lysosomes show structural latency (requiring osmotic shock or freeze thawing in vitro); their enzymes show maximal activity at acidic pH ranges, and on electron microscopic examination they appear as small, electron-dense intracellular bodies. These hydrolytic enzymes seem to have some form of biological vulnerability in terms of their genetic expression, and this vulnerability underlies the sphingolipidoses. Diagnosis in each case is primarily a clinical problem. The presentation of these disorders, especially in intermediate or advanced forms, is sufficiently distinctive to permit a reasonably accurate diagnosis on the basis of history, physical examination, and routine laboratory data. Patients seen in early stages may be more difficult to recognize but follow-up evaluations usually clarify the problem. Specific enzyme assays are now available for confirmation of the diagnosis in these disorders. A frequent finding in this connection is an increase in the activities of noninvolved lysosomal hydrolases in the storage disorders. Once a case is clinically diagnosed, the clinician has the responsibility of ensuring that proper genetic counseling is made available to the affected families. Considerable supportive care is needed in each case. These patients can survive for prolonged periods, and great stress is placed on their families by these prolonged, hopeless illnesses. Since the disorders affect infants or young children, their parents are usually young adults in their early reproductive years. It is essential that they receive information concerning the risk of subsequent pregnancies. Specific diagnosis of the fetus in early pregnancy can be made now by amniocentesis and enzyme assays on cultured fibroblasts. If the fetus is a homozygote on the basis of enzyme assays, the option of therapeutic abortion should be discussed with the family. For many parents there will be considerable sensitivity to the ethical implications of this course and, if any doubt arises, ethical or pastoral consultation should be sought. Although there are no specific therapeutic approaches, a considerable degree of supportive care can and should be given. In the gangliosidoses and late in the course of the leukodystrophies, seizures will present management problems...

Adult

Lipidoses.

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Amniocentesis

Skin punch biopsies and lymphocytes in the diagnosis of lipidoses.

Skin punch biopsies and buffy coats of white blood cells were examined electron microscopically in patients suffering from a variety of storage diseases. No specific abnormalities could be detected in Gaucher's disease and adreno-leucodystrophy. While characteristic deposits were found in cutaneous nerves in globoid and metachromatic leucodystrophy, this method was deemed inferior to sural nerve biopsy. In gangliosidoses, on the other hand, pathognomonic membranous cytoplasmic bodies were common in axons of cutaneous nerves, and in generalized gangliosidoses marked vacuolation of many other cells was prominent. Specific deposits were found in various cells in skin punch biopsies and in lymphocytes of children suffering from ceroid lipofuscinoses, and in lymphocytes of their parents. This constitutes the easiest diagnostic laboratory procedure in such cases.

Adolescent