Search PubMed⌕ Search

Biomedical subjects

R Schauer

Publications and source records attributed to R Schauer.

At least 235 records · Page 13Linked to original sources

Identification of the sialic acids from the egg jelly coat of the sea urchin Pseudocentrotus depressus (Okayama).

The jelly coat substance of the sea urchin eggs of Pseudocentrotus depressus (Okayama) was found to contain 0.35% sialic acids. After isolation of the sialic acids from the purified sulfated sialoglycoprotein containing 11% of sialic acids, analysis by colorimetry, thin-layer chromatography and gas-liquid chromatography/mass spectrometry demonstrated the nature of the sialic acids to be N-glycolylneuraminic acid and 9-O-acetyl-N-glycoloylneuraminic acid. The molar ratio between both sialic acids was found to be 1 : 1. Since it is known that O-acyl groups are partially released during the hydrolysis and isolation procedure, it can be assumed that in the native glycoprotein the percentage of O-acetylation is much higher than 50%. The sugar and sulfate composition of the glycoprotein is also described.

Animals↗

The preparation of CMP-sialic acids by using CMP-acylneuraminate synthase from frog liver immobilized on sepharose 4B.

A preparation of frog liver CMP-acylneuraminate synthase (2-10-fold enriched over the homogenate) obtained from DEAE-Sephadex A-50 chromatography of a 105,000g liver supernatant was bound to Sepharose 4B by the CNBr method. The enzyme retained 80-100% activity on binding and showed similar properties to the purified soluble enzyme from the same source with respect to Km, pH optimum and inhibition. The bound enzyme was stable to temperatures above 40 degrees C, in contrast with the soluble enzyme, and could be stored for 4 months at 2 degrees C with loss of 20% activity. The bound enzyme was used preparatively for the synthesis of radioactive and non-radioactive CMP-N-acetylneuraminic acid and CMP-N-glycolloylneuraminic acid. With suitable substrate concentrations and ratios, yields of 80% and over can be achieved.

Animals↗

Improved synthesis of CMP-sialates using enzymes from frog liver and equine submandibular gland.

An efficient method for the preparation of CMP-N-acetylneuraminic acid using crude or partially purified CTP:N-acylneuraminate cytidylyltransferase from equine submandibular gland or frog liver is described. The yield of the sugar nucleotide after purification by ion-exchange chromatography and gel filtration was 95%. The compound was studied by 360 MHz 1H NMR spectroscopy in addition to the usual chemical and physical analyses. The preparation of radioactive or unlabelled CMP 4-O-methyl-N-acetylneuraminic acid, which is not known to occur in nature, was achieved in 17% yield with the aid of the equine enzyme.

Animals↗

The specificity of sialytransferases using glycosylated lysozyme derivatives as substrates.

Galactose, lactose, N-acetylgalactosamine, N-acetylglucosamine and fibrinoglycopeptides were bound to lysozyme by different linkages. These glycosylated lysozymes were tested as N-acetylneuraminic acid acceptors using particular sialytransferase preparations from frog and bovine liver and from bovine and porcine submandibular glands. Desialylated fetuin served as reference compound. Galactose residues of desialo-fetuin and lysozyme-lactose are sialylated by all four sialytransferases tested, galactose bound to lysozyme via a phenylazo group is inactive with the enzyme from bovine submandibular gland, and galactose bound directly to lysozyme serves as substrate only for the frog liver sialytransferase. Lysozyme-phenylazo-N-acetylgalactosamine is active only with the sialytransferase from bovine sumbandibular gland. N-Acetylglucosamine derivatives of lysozyme are inactive with all sialytransferases tested. These observations are discussed in the light of the natural substrates for the sialytransferases investigated.

Glycopeptides↗

Sequestration of neuraminidase-treated erythrocytes. Studies on its topographic, morphologic and immunologic aspects.

Scintigraphic experiments and radioactivity measurements of tissues have shown that the radioactivity of 51Cr-labelled and neuraminidase-treated rabbit erythrocytes is rapidly accumulated in liver and spleen. Sequestration of these erythrocytes by liver and spleen was demonstrated by light and electron microscopy of theses tissues after perfusion of the rabbits with solutions for tissue fixation. In liver the phagocytic activity of Kupffer cells was increased after injection of desialylated erythrocytes, while in spleen a significantly enhanced number of erythrocytes was found attached to the sinusoidal walls and in the reticulum of the red pulp. It was shown by scanning electron microscopy that neuraminidase-treatment did not influence the shape of erythrocytes. Desialylated and 51Cr-labelled erythrocytes from the cow are rapidly cleared from the blood-stream with a half-life time of about 3 h. It was shown in an in-vitro test that they adsorb to surviving slices from liver and spleen derived from the same animal. The amount of radioactivity adsorbed is appreciably enhanced in the presence of homologous serum when compared with buffer only. Human neuraminidase-treated erythrocytes are agglutinated in the direct and especially in the indirect Coombs-tests. The involvement of T-antigen in this phenomenon was largely excluded. The in vitro experiments and antibody consumption tests suggest that immunoglobulins (IgG) and complement from serum may be involved in recognition and sequestration of desialylated erythrocytes by macrophages in vivo.

Animals↗

Desialylation of glycoconjugates using immobilized vibrio cholerae neuraminidase. Preparation, properties and use of the bound enzyme.

Neuraminidase from Vibrio cholerae was immobilized on Sepharose 4B using the cyanogen bromide technique. The properties of the bound enzyme were found to be similar to those of the soluble form, except for an appreciably improved stability on storage at equivalent dilution and a reduction in recovered activity. Evidence was obtained that the binding of large molecular weight substrates to the bound enzyme is modified due to the immobilized state of the enzyme. The use of the enzyme gel for desialylation of glycoconjugates in a closed circuit system was investigated and optimal conditions delineated using fetuin as a model substrate. The bound enzyme could be used repeatedly with only low loss of activity. The value of the desialylation circuit in the preparation of partially and completely desialylated glycoconjugates is discussed. The use of immobilized neuraminidase for the desialylation of cells is described.

Drug Stability↗

Demonstration of 9-O-acetyl-N-acetylneuraminic acid in brain gangliosides from various vertebrates including man.

Ganglioside fractions were isolated from brains of man, cow, horse, pig, sheep, cat, rabbit, rat, chicken and codfish. The acylneuraminic acid residues, liberated from these gangliosides by treatment with dilute aqueous acid or neuraminidase, were analysed by the thin-layer chromatography and combined gas-liquid chromatography/mass spectrometry. Small amounts (up to 20%) of 9-O-acetyl-N-acetylneuraminic acid, and in bovine and porcine brain gangliosides also traces of N-glycoloylneuraminic acid, were found in addition to N-acetylneuraminic acid.

Animals↗

Immobilized Clostridium perfringens neuraminidase. Substrate cleavage and enzyme release during incubation.

Pure Clostridium perfringens neuraminidase was immobilized on Sepharose 4 B, azido-Sepharose 4 B and controlled pore glass (CPG)- glycophase using different coupling procedures. The immobilized enzyme showed increased stability under various conditions relative to the soluble enzyme. The low release of active enzyme from the supports under incubation conditions was quantitated using a highly sensitive radioactive assay. The activity of the immobilized enzyme was dependent on the nature of the support and the substrate. Activity decreased with increasing substrate molecular weight, but the enzyme showed improved cleavage with GD1a micelles and human erythrocytes, substrates having ordered surface properties. Uses of immobilized neuraminidase in biochemistry and cell biology are considered and evaluated relative to the measured release of enzyme from the supports reported and to the molecular size and organization of possible substrates.

Azides↗