Search PubMed⌕ Search

Biomedical subjects

U Klein

Publications and source records attributed to U Klein.

At least 163 records · Page 9Linked to original sources

Visualization of pi- and pi+ stopping density distributions in one and two dimensions.

A technique suitable for mapping pi+/- stopping density distributions in patients or phantoms is described. As a position sensitive detector a multiwire proportional chamber with a slit or a hole collimator in front was applied. Results using a water and a Rando phantom are presented for various momenta and momentum band widths of the pi+/- beam. To our knowledge the two-dimensional visualization of a pi- stopping density distribution was realized for the first time.

Elementary Particles↗

Sanfilippo type C disease: clinical findings in four patients with a new variant of mucopolysaccharidosis III.

A new genetic variant of the Sanfilippo syndrome due to deficiency of acetyl CoA: alpha-glucosaminide N-acetyltransferase, was recently demonstrated in four patients. The clinical findings of these patients are reported here. Differential diagnosis from other types of the Sanfilippo syndrome on clinical and routine laboratory criteria is difficult and enzyme assay is necessary to reach the diagnosis. Since two of the patients reported are females and consanguinity was present in one case, autosomal recessive inheritance is most probable.

Adolescent↗

Isolation and characterization of phosphorylated oligosaccharides from alpha-N-acetylglucosaminidase that are recognized by cell-surface receptors.

Adsorptive endocytosis of lysosomal enzymes by fibroblasts and hepatocytes involves binding to cell surface receptors that recognize on lysosomal enzymes a phosphorylated carbohydrate, most likely a mannose 6-phosphate residue [Kaplan et al. (1977) Proc. Natl Acad. Sci. U.S.A. 74, 2026-2030; Ullrich et al. (1978) Hoppe-Seyler's Z. Physiol. Chem. 359, 1591-1598]. Loss of alpha-N-acetylglucosaminidase endocytosis after treatment with endoglucosaminidase H indicated that the recognition site of alpha-N-acetylglucosaminidase is located on N-glycosidically linked oligosaccharides of the high mannose type. Acidic oligosaccharides with an average molecular weight of 2200 were liberated from alpha-N-acetylglucosaminidase by endoglucosaminidase H. These oligosaccharides were susceptible to degradation by alkaline phosphatase, alpha-mannosidase and beta-N-acetylglucosaminidase. At the non-reducing terminal these oligosaccharides bear phosphorylated mannose and/or N-acetylglucosamine residues.

Acetylglucosaminidase↗

Multiple deficiency of mucopolysaccharide sulfatases in mucosulfatidosis.

Fibroblasts of four patients affected with mucosulfatidosis (multiple sulfatase deficiency, Austin variant of metachromatic leukodystrophy) were assayed for activities of the five sulfatases known to degrade mucopolysaccharides. These were iduronide 2-sulfate sulfatase, sulfamidase, N-acetyl-galactosamine 6-sulfate sulfatase, arylsulfatase B (N-acetylgalactosamine 4-sulfate sulfatase), and N-acetylglucosamine 6-sulfate sulfatase. The activities of these five sulfatases were severely depressed, thus confirming the known deficiency of arylsulfatase B and the absence of the Hunter and Sanfilippo III A corrective factors that have iduronide 2-sulfate sulfatase and sulfamidase activity, respectively. Together with earlier reports of the deficiencies of arylsulfatases A and C, cholesteryl sulfatase, and dehydroepiandrosterone sulfatae, mucosulfatidosis is now characterized by the deficiency of nine different sulfatases.

Acetylglucosamine↗

Degradation of even-numbered reduced and non-reduced hyaluronate oligosaccharides with D-glucuronic acid or N-acetyl-D-glucosamine as non-reducing terminal by chondroitin ABC and AC lyases.

Chondroitin ABC and AC lyases split hexosaminidic linkages in galactosaminoglycans and hyaluronic acid. Even-numbered oligosaccharides from hyaluronic acid with either D-glucuronic acid or N-acetylglucosamine in non-reducing position were used, prior to and after reduction with sodium borohydride, as substrates for chondroitin ABC and AC lyases. These substrates allowed elucidation of the effects of the nearest neighborhood of the bond to be split on the action of the enzymes. The results indicate that chondroitin ABC lyase acts strictly as an endolyase towards hyaluronate and requires the presence of a disaccharide in both reducing and non-reducing positions of the endohexosaminidic bond to be split. None of the hexosaminidic bonds of the tetrasaccharide GlcNAc-GlcUA-GlcNAc-GlcUA is split by chondroitin ABC lyase. In contrast chondroitin AC lyase acts also as an exoglycosidase towards hyaluronate and recognizes only the amino sugar and the uronic acid residue that are linked via the hexosaminidic bond which is split. Thus, the N-acetylglucosamine and glucuronic acid residues at both ends of a tetrasaccharide with the structure GlcNAc-GlcUA-GlcNAc-GlcUA are liberated.

Acetylglucosamine↗

Substrate specificity of a heparan sulfate-degrading endoglucuronidase from human placenta.

A heparan sulfate-degrading endoglucuronidase was isolated from human placenta and partially purified by affinity chromatography on heparan sulfate-Sepharose 4B. The endoglucuronidase has a molecular weight of approximately 100 000 estimated by gel chromatography and a broad pH optimum between pH4 and pH6. Carboxyl reduced heparan sulfate is not split by partially purified endoglucuronidase, but inhibits the action of that enzyme towards non-modified heparan sulfate. Low molecular weight heparan sulfate (Mr approximately 3 000) is not attacked by the endoglucuronidase. N-Desulfated heparan sulfate and heparin are only weak substrates. The amino sugar adjacent to the glucuronic acid residue appearing at the reducing terminal of heparan sulfate fragments liberated by the endoglucuronidase appears to be exclusively N-acetylated glucosamine.

Female↗

Sanfilippo syndrome type C: deficiency of acetyl-CoA:alpha-glucosaminide N-acetyltransferase in skin fibroblasts.

Removal of N-sulfated glucosamine residues during degradation of heparan sulfate is accomplished by the sequential action of three enzymes. Action of sulfamidase results in the formation of alpha-glucosaminide residues. Removal of these groups requires conversion to alpha-N-acetylglucosaminide by the action of an acetyltransferase in the presence of acetyl-CoA, followed by hydrolysis by alpha-N-acetylglucosaminidase. In fibroblast homogenates from three patients with Sanfilippo syndrome type C (mucopolysaccharidosis III C), a biochemical variant of the Sanfilippo syndrome, complete deficiency of the acetyl-CoA:alpha-glucosaminide N-acetyltransferase activity was detected. Activities of all lysosomal hydrolases known so far to degrade mucopolysaccharides, including those of sulfamidase and alpha-N-acetylglucosaminidase, were in the range of controls. Acetyl-CoA:alpha-glucosaminide N-acetyltransferase activity was normal in fibroblasts of patients with other genetic mucopolysaccharidoses, including Sanfilippo syndrome A and B.

Acetyltransferases↗

Fermentative Metabolism of Hydrogen-evolving Chlamydomonas moewusii.

The anaerobic metabolism of Chlamydomonas moewusii under both light (160 lux) and dark conditions has been examined using manometric and enzymic techniques. During anaerobiosis starch is broken down to glycerol, acetate, ethanol, CO(2), and H(2). The release of CO(2) and H(2) comes to an end when the starch pool is depleted.There are only slight differences in the ratio of the end products of fermentation between light and dark metabolism. In the light, glycerol production is diminished and H(2) evolution is enhanced, whereas the production rate of all other end products generally does not change.

Journal Article↗

A new biochemical subtype of the Sanfilippo syndrome: characterization of the storage material in cultured fibroblasts of Sanfilippo C patients.

Fibroblasts cultured from the skin of three unrelated patients with the clinical symptoms of the Sanfilippo syndrome (mucopolysaccharidosis III) accumulated intracellularly excessive amounts of heparan sulfate and showed a lengthened turnover time for this mucopolysaccharide. They exhibited, however, neither a deficiency of heparan sulfate sulfamidase or alpha-N-acetylglucosaminidase nor of any other known glycosaminoglycan-degrading hydrolase. This new mucopolysaccharidosis was therefore designated as type C of the Sanfilippo syndrome. The abnormal heparan sulfate metabolism of Sanfilippo C fibroblasts could not be normalized by addition of crude urinary proteins or concentrated secretions from normal fibroblasts to the culture medium or by cocultivation with normal fibroblasts. The accumulated heparan sulfate was characterized by a reduced negative net charge. A small proportion of it could be adsorbed onto a cation exchange resin. It was sensitive to nitrous acid degradation under conditions where glucosamine residues with free amino groups are attacked. It is therefore suggested that the primary defect in this new mucopolysaccharidosis concerns the step which follows the hydrolysis of N-sulfonate groups in heparan sulfate degradation.

Adolescent↗

The value of lymphography for the TNM classification of renal carcinoma.

Preoperative lymphography is a basic condition for uniform tumor classification of renal carcinoma, according to the T, N and M categories. The comparison of 148 lymphographic findings with 170 intraoperative and histopathological lymph node results showed a satisfactory correlation. The total frequency of lymph node metastasis was of 21.6%. Carcinomas with positive lymph nodes showed a significant increase of far distant metastasis up to 50%. Lymph node metastases have to be considered in 10% of all carcinomas of the T1 and T2 categories and in 15.5% of the cases with unclear preoperative lymphographic diagnosis. These results point out the necessity of a radical lymphadenectomy in all T categories.

Adult↗

Characterization of glycosaminoglycans stored in mucopolysaccharidosis III A: evidence for a generally occuring degradation of heparan sulfate by endoglycosidases.

The characterization of intracellularly stored glycosaminoglycans from organs of a patient suffering from mucopolysaccharidosis III A (Sanfilippo A disease) is described. Both heparan sulfate and galactosamine-containing glycosaminoglycans (chondroitin sulfate, dermatan sulfate) are accumulated in the liver, whereas in the other organs (spleen, kidney, heart, cerebrum, cerebellum) heparan sulfate is almost the only glycosaminoglycan stored. It is shown by [3H]NaBH4 reduction and subsequent identification of the 3H-labelled sugar alcohols that heparan sulfate is degraded in all organs by at least two endoglycosidases, an endoglucuronidase and an endoglucosaminidase, to fragments of low molecular weight (Mr approximately 2 000-6 600).

Carbohydrates↗