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Biomedical subjects

S Goldfischer

Publications and source records attributed to S Goldfischer.

At least 19 recordsLinked to original sources

Cytoplasmic copper and its toxic effects. Studies in Indian childhood cirrhosis.

Morphological, histochemical, and chemical study of three necropsy specimens of liver in the terminal stage of Indian Childhood Cirrhosis revealed a strikingly high copper content. it is proposed that excess accumulation of copper in the cytoplasm of hepatocytes disturbs the microtubular system, causing hydropic swelling and the formation of Mallory's hyalin. Copper and copper-binding protein showed topographical association with Mallory's hyalin. Diffuse cytoplasmic staining and the lysosomal copper distribution also suggested that copper had a cytotoxic effect. The pattern of copper distribution in Indian Childhood Cirrhosis differs from that in Wilson's disease and in prolonged cholestasis with excessive hepatic copper deposition, indicating a different mechanism of the copper accumulation.

Child, Preschool

Hydrolase activities in the rat aorta. III. Effects of regular swimming activity and its cessation.

It is possible that one of the consequences of regular physical activity could be a change of vascular metabolism. We studied the effects of regular swimming activity on specific activities of aortic hydrolases of male rats. Enzymes included: neutral alpha-glucosidase and lysosomal beta-galactosidase, N-acetyl-beta-glucosaminidase, cathepsin C, acid alpha-glucosidase, and acid cholesteryl esterase. After 8 or 16 weeks of a 1-hour/day swimming protocol, specific activities of four of the six aortic enzymes studied were increased over control levels, increases ranging from 7 to more than 42%. Acid cholesteryl esterase was one of the enzymes most affected by the exercise, increasing 25-30% above control levels. An 8-week sedentary period, after 8 weeks of a swimming regimen, resulted in return of the activity of acid cholesteryl esterase, but not those of the other hydrolases, to control levels. Decreases in body weight, blood pressure, and serum lipid levels also occurred in the swimming rats. Weight reduction per se was excluded as an explanation for the increases in aortic enzymes or decrease in serum cholesterol found with swimming. These findings show that regular physical activity is yet another factor with discrete and significant effects on the catabolic activity of vascular tissue.

Acetylglucosaminidase

Peroxisomes in disease.

Cytochemical, biochemical and morphological changes in peroxisomes have been described in human metabolic disorders, in experimental models of disease and in response to drugs and toxins. These include the cerebrohepatorenal syndromes, in which peroxisomes can not be detected and mitochondrial respiration is inhibited, atherosclerosis, alcoholic cardiomyopathy, and tolerance to oxygen toxicity. Although information on the role of peroxisomes in disease is limited, increased awareness of their widespread distribution and the availability of an improved cytochemical procedure for staining peroxisomes in human specimens should provide new insights into their function.

Histocytochemistry

Cytochemistry of human catalase. The demonstration of hepatic and renal peroxisomes by a high temperature procedure.

The cytochemical demonstration of marker enzymes for subcellular organelles permits light microscopic analysis of their structure and function in normal and diseased tissues. Currently available staining procedures for the peroxidatic activity of catalase in peroxisomes of plant and animal cells yield weak and inconsistent light microscopic staining when applied to human tissues. We have developed a simple and sensitive high temperature procedure that clearly and reproducibly stains these abundant, but poorly understood, organelles in biopsy specimens of human liver and kidney. This method utilizes formaldehyde fixation, a modified diaminobenzidine (DAB) medium, incubation at 45 degrees C and postosmication for both light and electron microscopy.

Catalase

Immunocytochemical localization of hepatic legandin and Z protein utilizing frozen sections for light and electron microscopy.

Ligandin (glutathione-s-transferase) and Z protein are soluble hepatocellular proteins that are involved in the transfer of organic ions, including bilirubin and some hormones and carcinogens from the plasma to the liver. The intracellular distribution of ligandin and Z protein was studied by applying the peroxidase-antiperoxidase procedure of L. A. Sternberger (Immunocytochemistry, Prentice Hall Inc., 1974) to paraffin sections and free-floating 10-micrometers frozen sections that were processed for both light and electron microscopy. Ligandin and Z protein were localized to the cytosol of hepatocytes in association with smooth endoplasmic reticulum (SER), but no reaction product was present between cisternae of rough endoplasmic reticulum. Penetration of reagents was enhanced in 10-micrometers frozen sections and the preservation of subcellular structures was equivalent to thicker, unfrozen sections.

Animals

Coronary intimal sclerosis in Morquio's syndrome.

Mitral valve, coronary arteries, cartilage, and liver were studied by light and electron microscopy in a 15 year old boy with Morquio's syndrome, a genetic mucopolysaccharidosis, in which a deficiency of lysosomal hexosamine sulfatase is associated with accumulations of keratan sulfate in various organs. Coronary artery intimal sclerosis was a prominent feature of this disorder. Ultrastructural examination revealed numerous intimal smooth muscle cells containing storage vacuoles consistent with lysosomes. This was associated with marked interstitial deposition of collagen, elastin, and basement membrane material. Recent studies of human and experimental atherosclerosis have demonstrated the accumulation of cholesterol within vascular smooth muscle cell lysosomes. Intralysosomal accumulation of substrates other than cholesterol is also associated with vascular intimal sclerosis in genetic lysosomal disorders such as Fabry's disease and Hurler's syndrome. Lysosomal storage of undegraded substrate may be an important pathogenetic mechanism in the development of sclerotic vascular lesions.

Adolescent

The cherry-red spot--myoclonus syndrome.

Three young women, 2 of them sisters, were found to have cherry-red spots at the macula when they were children. In 1 patient the spots faded before she was 20 years old. In all 3, incapacitating myoclonus and insidious visual loss developed in adolescence. Their intellect is normal and they have no gargoyle-like features. A variety of lysosomal inclusions were noted in cortical neurons in a biopsy specimen taken from 1 patient in childhood. Liver biopsy fifteen years later revealed mucopolysaccharide-like inclusions in Kupffer cells and hepatocytes. Lipofuscin bodies were abundant in neurons and hepatocytes. The patients excrete sialic acid-containing oligosaccharides not present in normal urine, suggesting a defect in degradation of glycoproteins. The specific enzymatic defect in these patients appears to be a deficiency of lysosomal neuraminidase.

Adolescent

Hydrolase activities in the rat aorta. I. Effects of diabetes mellitus and insulin treatment.

Vascular disease in diabetics could arise in part from altered vessel wall catebolism. Specific activities of hydrolases in aortic smooth muscle cells from rats with streptozotocin-induced diabetes were measured. Enyzmes included: neutral alpha-glucosidase, alpha-mannosidase, and lysosomal N-acetyl beta-glucosaminidase, beta-galactosidase, cathepsin C, acid alpha-glucosidase, and acid cholesteryl esterase. After 4,8, and 11 weeks of diabetes, activities of all enzymes studied were decreased significantly in diabetic vessels, decreases ranging from 15% for cathepsin C to 62% for alpha-mannosidase. After 3 weeks of diabetes, insulin treatment for 1 week restored enzyme levels to normal. After 7 weeks of diabetes, 1 week of insulin treatment did not restore enzyme levels fully to normal (acid cholesteryl esterase was unchanged); 4 weeks of insulin did. Acid phosphatase and N-acetyl beta-glucosaminidase activities were reduced markedly in histochemical studies of diabetic aortas at all time periods and were restored by insulin treatment. Alloxan-induced diabetes gave results similar to those with streptozotocin. Significant decreases of aortic hydrolase activities, including those of lysosomes, occur in experimental diabetes mellitus and could contribute to accumulation of substrates in vascular smooth muscle cells.

Alloxan

Hydrolase activities in the rat aorta. II. Effects of hypertension alone and in combination with diabetes mellitus.

Hypertension is an important risk factor for atherosclerosis and often occurs in association with diabetes mellitus. Specific activities of hydrolases in homogenates of aortas from rats with renal-clip hypertension, normotension following a period of hypertension, and hypertension combined with streptozotocin-induced diabetes mellitus were measured. Enzymes included: neutral alpha-glucosidase, and lysosomal N-acetyl-beta-glucosaminidase, beta-galactosidase, cathepsin C, acid alpha-glucosidase, and acid cholesteryl esterase. After 6 or 12 weeks of hypertension, specific activities of all enzymes measured were significantly increased, levels ranging from 24% above normal for cathepsin C to 351% above normal for N-acetyl-beta-glucosaminidase. Six weeks of normotension following 6 weeks of hypertension resulted in restoration to normal of four of the six enzyme activities; the remaining two enzymes were significantly below normal levels. Combined hypertension and diabetes mellitus showed smooth muscle cell levels of four of the five hydrolases measured to be significantly lower than those present with hypertension alone. In every instance, histochemical studies of aortas showed acid phosphatase and N-acetyl-beta-glucosaminidase activities which corresponded to the biochemical findings. These findings indicate profound and discrete effects of two clinical risk factors on vascular smooth muscle cell lysosomes.

Animals

Intralysosomal lipid in long-term maintenance transplant atherosclerosis.

Intralysosomal accumulation of lipid has been implicated as an important mechanism in the pathogenesis of atherosclerosis. Although atherosclerosis develops frequently in organ transplants maintained on a long-term basis, to our knowledge no studies to date have demonstrated the intracellular localization of the lipid in this setting. Light and electron microscopic study of a renal artery branch from a transplanted kidney maintained for 3 1/2 years demonstrates that the lipid is sequestered within intimal smooth muscle cell lysosomes. The features of the atherosclerotic plaque in long-term transplantation appear to be identical to spontaneous lesions or those induced experimentally.

Arteriosclerosis

Lipid accumulation in human aortic smooth muscle cell lysosomes.

Lipid deposition is a central feature of the human atherosclerotic lesion. Deficient lysosomal lipolytic activity has been implicated as a pathogenetic factor in atheroma formation. Cytochemical and ultrastructural examination of the abdominal aortas of 2 normal young males, ages 11 and 23, demonstrates lipid accumulation with lysosomes of intact mural smooth muscle cells. This appears to be an early stage in the process which eventually results in an overloading of lysosomes and the formation of lipid-laden foam cells.

Adult

Endocytosis by vascular smooth muscle cells in vivo and in vitro. Roles or vesicles and lysosomes.

Overloading of lysosomes of smooth muscle cells with excess substrate may be a key event in the development of hypertensive and atherosclerotic vascular disease. Cellular uptake of materials and its relation to lysosomal function were studied by ultrastructural cytochemistry in aortic smooth muscle cells grown in vitro and in the intact animal. Injection of horseradish peroxidase (HRP) into hypertensive rats resulted in rapid insudation of the material into the environs of medial smooth muscle cells, entrance into surface pinocytic vesicles, and transport via vesicles into the cell interior where material was seen to accumulate within lysosomes. In vitro exposure of calf aortic cells to HRP in the medium resulted in a similar sequence of events. Pinocytic vesicles, seen both in vitro and in vivo, ranged in diameter from 650-1000 A. These dimensions are adequate to permit incorporation of intact lipoproteins of all classes, except the larger chylomicrons.

Animals

Hypophosphatasia: a cytochemical study of phosphatase activities.

Skeletal abnormalities with defective formation of mature calcified bone are the most prominent clinical features of hypophosphatasia. Low concentrations of serum and tissue alkaline phosphatase and elevated plasma and urinary levels of phosphorylethanolamine (PEA) are also present. Although PEA is hydrolyzed by serum alkaline phosphatase, the relationship between PEA and the deficiency is unclear. PEA has not previously been tested as a cytochemical substrate for the in situ demonstration of human alkaline phosphatase activity. We have studied alkaline phosphatase activity in hypophosphatasia in tissue sections, utilizing PEA and adenosinetriphosphate (ATP) as well as the usual beta-glycerophosphate and naphthol phosphate substrates. Neutral and acid phosphatase activities were also examined. Our results demonstrate that PEA is a substrate for the localization of alkaline phosphatase in normal human tissue, but is not hydrolyzed in hypophosphatasia in the liver, brain or costochondral junction under alkaline conditions. In the kidney in hypophosphatasia only the straight segments of proximal tubules that rim the medullary rays are reactive with PEA. Similar results in hypophosphatasia were obtained at an alkaline pH with ATP, beta-glycerophosphate, and naphthol phosphate. However, the defect in hypophosphatasia is not a generalized deficiency of membrane-associated phosphatases because membranes that were deficient in alkaline phosphatase activity demonstrated normal reactivity with ATP at neutral pH. In addition, thiamine pyrophosphate was also split by Golgi membranes within the cytoplasm. Acid hydrolysis of beta-glycerophosphate by lysosomes was normal.

Alkaline Phosphatase

Heavy metals and lysosomes.

Much can be gained by reassessing the processes which determine the ability of lysosomes to take up or exclude, sequester and mobilize heavy metals. To achieve a better understanding of these events, the chemical forms, intracellular pathways and modes of delivery of metals to lysosomes, as well as the specific physiologic ligands and molecular targets susceptible to metal toxicity have to be identified. None of these can be derived from measurements of metal contents of whole lysosomal fractions because the metal's "effective concentration" at a specific target site may be affected by the binding properties of the lysosomal ligand as well as by those of cation carrier proteins present in the cytosol (e.g., metallothionein), and by interactions with and competitions by other cellular organelles. Therefore, the possibility of such events diminishing or enhancing a metal's direct effect observable in in vitro systems has to be considered before extrapolating to the in vivo situation. Another pitfall to be wary of is the equation of an organelle's relative affinity for a metal in vitro with its susceptibility to the metal's toxic effects. This is evident, albeit at a tissue level rather than at that of organelles, from the discordance between the low affinity of nervous tissue for lead and this metal's pronounced encephalopathic effect. The answers to some of the questions raised in this review may possibly lead to pharmacologic applications, particularly to the development of effective agents for the removal from or the inactivation of toxic metals deposited in lysosomes. At present, considerable uncertainty exists regarding the possible interaction of therapeutic chelating agents with lysosomes in vivo. We do not know, for example, whether the contrasts between the remarkable effectiveness of penicillamine in mobilizing copper from tissues and the limited effectiveness of desferioxamine in removing excess iron stores can be accounted for by differences in accessibility of these two chelators to lysosomes. Or, alternatively, can these differences in effectiveness be related to different ligands or macromolecules interacting with each metal? At least part of the lysosomal iron is bound to ferritin molecules which may not be susceptible to the action of chelating agents after incorporation. Such speculation is not without foundation since ferritin molecules are heterogeneous. However, whether this heterogeneity, which is reflected in different organ-specific patterns of distribution (Powell et al. 1973), is the result of differing affinities of the isoferritins for specific subcellular organelles has not been established. It is conceivable that ferritin molecules present in the cytoplasm may be subtly different from those taken up by lysosomes, implying that the latter are endowed with capabilities for selection of specific macromolecules...

Animals

Lysosomes and the sclerotic arterial lesion in Hurler's disease.

A case of Hurler's disease in a mentally retarded, six year old boy is reported. In Hurler's disease a lysosomal hydrolase, l-iduronidase, is deficient, and consequently undegradable mucopolysaccharide accumulates within lysosomes in many tissues. Severe occlusive coronary artery disease and sclerotic aortic lesions are common in very young patients, although their serum lipid and blood pressure levels are normal. Vascular collagen and elastin is increased, but little or no stainable lipid is present. Electron microscopy shows that aortic smooth muscle cells are distended by vacuoles, appearing empty in formalin fixed tissues, that identify them as the "gargoyle" cells in the proliferative lesion. The presence of a basic lysosomal defect and the absence of other contributing metabolic factors suggest that accumulation of an excess of undegradable substrate within smooth muscle lysosomes may be an initiating event in the development of proliferative sclerotic vascular lesions.

Aorta