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F Piller

Publications and source records attributed to F Piller.

32 records · Page 2Linked to original sources

Isolation and characterization of human lysosomal membrane glycoproteins, h-lamp-1 and h-lamp-2. Major sialoglycoproteins carrying polylactosaminoglycan.

Two major lysosomal membrane glycoproteins with apparent Mr approximately 120,000 were purified from chronic myelogenous leukemia cells. These glycoproteins are major sialoglycoproteins containing polylactosaminoglycan and represent approximately 0.1-0.2% of total cell proteins. A monoclonal antibody specific to one of the glycoproteins and polyclonal antibodies specific to the other glycoprotein were obtained. Immunoelectron microscopic examination of HeLa cells revealed that these two glycoproteins mainly reside in lysosomes and multivesicular bodies. Immunoprecipitation experiments showed that a number of different cell lines express these glycoproteins. However, the apparent molecular weights differed between cell lines; this probably represents differences in the amount of polylactosaminoglycan expressed by each cell line. As shown in the following paper (Fukuda, M., Viitala, J., Matteson, J., and Carlsson, S. R. (1988) J. Biol. Chem. 263, 18920-18928) one of the glycoproteins is very homologous to that of a mouse counterpart, m-lamp-1. The human form of this glycoprotein is therefore named human lamp-1 (h-lamp-1), while the other glycoprotein, to which the monoclonal antibody was made, is called human lamp-2 (h-lamp-2). Pulse-chase labeling experiments detected that h-lamp-1 and h-lamp-2 are produced first as precursor forms of 87.5 and 84 kDa, and treatment with endo-beta-N-acetylglucosaminidase H (endo-H) or endo-beta-N-acetylglucosaminidase F (endo-F) reduced their molecular masses to 39.5 and 41.5 kDa, respectively. It was estimated that h-lamp-1 has 18 N-linked saccharides and h-lamp-2 16, based on the results of partial digestions with endo-F. These results indicate that the two lysosomal membrane glycoproteins are extensively modified by N-glycans, and some of these were found to have polylactosaminyl repeats and sialic acid. Human lamp-1 and lamp-2, therefore, serve as good models for understanding polylactosaminoglycan formation and the biosynthesis and processing of polylactosaminoglycan-containing glycoprotein.

Amino Acids↗

Human T-lymphocyte activation is associated with changes in O-glycan biosynthesis.

The activation of human T-lymphocytes by anti-CD3 antibodies and interleukin-2 results in a marked increase in apparent molecular weight of the major cell-surface sialoglycoprotein. Both forms of the sialoglycoprotein were identified as leukosialin by a monospecific antiserum, and the differences in molecular weight were found to be due to changes in the carbohydrate structures. Our results suggest that resting T-lymphocytes express on leukosialin the disialotetrasaccharides NeuNAc alpha 2----3Gal beta 1----3(NeuNAc alpha 2----6)Gal-NAc-Ser/Thr, whereas activated human T-cells carry on leukosialin exclusively the more complex structures NeuNAc alpha 2----3Gal beta 1----3(NeuNAc alpha 2----3Gal beta 1----4GlcNAc beta 1----6)GalNAc-Ser/Thr. The radical shift in the biosynthetic pathway of O-glycans in activated T-lymphocytes compared to resting cells is apparently caused by a decrease of alpha 2----6 sialyltransferase activity and by the parallel dramatic stimulation of the beta 1----6GlcNAc-transferase. Since both enzymes compete for the same precursor substrate, the coordinate changes in their activities are most likely responsible for the complete change of the carbohydrate structures on leukosialin during the activation of human T-lymphocytes.

Antigens, CD↗

Structural variability of the neutral carbohydrate moiety of cow colostrum kappa-casein as a function of time after parturition. Identification of a tetrasaccharide with blood group I specificity.

New neutral oligosaccharides from cow colostrum kappa-casein were identified and characterized by 500-MHz 1H-NMR spectroscopy. Their structures are Gal beta(1----3)GalNAc-ol, Gal beta(1----3)[GlcNAc beta(1----6)]GalNAc-ol, Gal beta(1----3)[Gal beta(1----4)GlcNAc beta(1----6)]GalNAc-ol, Gal beta(1----3)[Fuc alpha(1----3)[Gal beta(1----4)]GlcNAc beta(1----6)]GalNAc-ol. The tetrasaccharide and the cow colostrum kappa-caseinoglycopeptide which contains this oligosaccharide inhibit the hemagglutination of blood group I human erythrocytes. In cow mature milk only the disaccharide is characterized. The variability of these neutral oligosaccharides in cow kappa-casein as a function of time after calving is studied.

Animals↗

Characterization and specific assay for a galactoside beta-3-galactosyltransferase of human kidney.

Two galactosyltransferases identified as UDP-galactose:lactose (lactosylceramide) alpha-4- and beta-3-galactosyltransferases [Bailly P. et al. (1986) Biochem. Biophys. Res. Commun. 141, 84-91] have been characterized in human kidney microsomes. Using methyl beta-D-galactoside as acceptor substrate, we have determined the experimental conditions (pH 5.0, 4 mM Cd2+) in which only the beta-3-galactosyltransferase activity is detectable. The reaction product has been characterized by chemical methods and glycosidase studies. Under these experimental conditions, some of the enzyme properties have been further investigated. Apparent Km values are for UDP-galactose, 0.170 mM; for lactose, 242 mM; and for lactosylceramide, 2.5 mM. Acceptor specificity studies suggest that the beta-3-galactosyltransferase is specific for terminal Gal beta 1-4Glc(NAc) residues and responsible for elongation of oligosaccharide chains in glycolipids. Competition studies with lactose and N-acetylgalactosamine as acceptor substrates indicate that the transferase described here can be distinguished from the UDP-galactose:2-acetamide-2-deoxy-D-galactose beta-3-galactosyltransferase and therefore represents a novel enzyme capable of synthesizing unusual carbohydrate structures similar to those which accumulate in certain neurological diseases.

Cadmium↗

Identification of UDP-galactose: lactose (lactosylceramide) alpha-4 and beta-3 galactosyltransferases in human kidney.

Two galactosyltransferases were identified in human kidney microsomes which both transfer galactose from UDP Gal to lactose as well as to lactosylceramide. Using a solubilized and a partially purified enzyme preparation sufficient product could be obtained for detailed structural analysis. The trisaccharide products were isolated by gel permeation chromatography and separated by preparative high performance thin layer chromatography. The anomeric configuration of the transferred galactose was determined by specific glycosidase digestion and the linkage was identified by methylation and gas-liquid-chromatography. The glycolipid products were not separated but analyzed directly, before and after alpha or beta galactosidase digestion, by methylation, hydrolysis and thin layer chromatography. Into both acceptor substrates galactose was incorporated in alpha 1-4 (30%) and beta 1-3 (70%) linkages. The alpha 1-4 galactosyltransferase is responsible for the synthesis of the Pk antigen Gal alpha 1-4 Gal beta 1-4 Glc-ceramide in human kidney. The beta 1-3 galactosyltransferase has not previously been identified.

Antigens, CD↗

Isolation and characterization of an N-acetylgalactosamine specific lectin from Salvia sclarea seeds.

Crude extracts from Salvia sclarea seeds were known to contain a lectin which specifically agglutinates Tn erythrocytes (Bird, G. W. G., and Wingham, G. (1974) Vox Sang. 26, 163-166). We have purified the lectin to homogeneity by ion-exchange chromatography and affinity chromatography. The agglutinin was found to be a glycoprotein of Mr = 50,000, composed of two identical subunits of Mr = 35,000 linked together by disulfide bonds. The purified lectin agglutinates specifically Tn erythrocytes and, at higher concentrations, also Cad erythrocytes. Native A, B, or O red blood cells are not agglutinated by the lectin and, even after treatment with sialidase or papain, these cells are not recognized. Tn red cells present 1.45 X 10(6) accessible sites to the lectin which binds to these erythrocytes with an association constant of 1.8 X 10(6) M-1. On Cad red cells, 1.73 X 10(6) sites are accessible to the lectin which binds with an association constant of 1.0 X 10(6) M-1. The carbohydrate specificity of the S. sclarea lectin has been determined in detail, using well defined monosaccharide, oligosaccharide, and glycopeptide structures. The lectin was found to be specific for terminal N-acetylgalactosamine (GalNAc) residues. It binds preferentially alpha GalNAc determinants either linked to Ser or Thr (as in Tn structures) or linked in 1-3 to a beta GalNAc or to an unsubstituted beta Gal. Although more weakly, the lectin binds beta GalNAc residues linked in 1-4 to a beta Gal (as in Cad structures). It does not recognize beta GalNAc determinants linked in 1-3 to a Gal (as in globoside) or the alpha GalNAc residues of blood group A structures.

Acetylgalactosamine↗

Identification of a alpha-NeuAc-(2----3)-beta-D-galactopyranosyl N-acetyl-beta-D-galactosaminyltransferase in human kidney.

Microsomal preparations from human kidney were found to contain enzymic activity capable to transfer N-acetylgalactosamine from UDP-N-acetylgalactosamine to native bovine fetuin. The acceptor structures on the fetuin molecules were identified as N- as well as O-linked glycans with a markedly higher incorporation into the N-linked carbohydrate chains. Analysis of the alkali-labile transferase products by thin-layer chromatography indicated that the enzyme is able to synthesize structures having mobilities identical with those found on glycophorin from Cad erythrocytes. Mild acid treatment and enzymic hydrolysis with N-acetylhexosaminidase from jack beans of the N-linked transferase products suggested that beta-D-GalpNAc-(1----4)-[alpha-NeuAc-(2----3)]-beta-D-Galp-(1----s tructures were formed by the enzymic reaction on both N- and O-linked acceptors. The enzyme might, therefore, be involved in the biosynthesis of Sda (and Cad) antigenic structures. By use of various oligosaccharides, glycopeptides, and glycolipids having well characterized carbohydrate sequences, the acceptor-substrate specificity of the N-acetylgalactosaminyltransferase was determined. The enzyme generally recognized alpha-NeuAc-(2----3)-beta-D-Gal groups as acceptors, but in a certain conformation. Thus, tri- and tetra-saccharide alditols, native human glycophorin A, and GM3 were not acceptor substrates although they carry the potential disaccharide acceptor unit. When these structures were presented as sialyl-(2----3)-lactose or as a tryptic peptide from glycophorin A, they were shown to be rather good acceptor substrates for the N-acetyl-beta-D-galactosaminyltransferase from human kidney.

Animals↗

Identification of a novel ganglioside on erythrocytes with blood group Cad specificity.

The blood group Cad antigen is a carbohydrate structure well characterized on the sialoglycoproteins of the red cell membrane from some rare individuals (Blanchard, D., Cartron, J. P., Fournet, B., Montreuil, J., Van Halbeck, H., and Vliegenthart, J.F.G. (1983) J. Biol. Chem. 258, 7691-7695). However, protease treatment of whole cells did not destroy their antigenic activity which indicated that glycolipid might also be involved in the antigenic reaction. A crude ganglioside fraction was prepared from Cad cells and found to inhibit the hemagglutination reaction, whereas neutral glycolipids were inactive. Further analysis of the ganglioside extract from Cad erythrocytes by thin layer chromatography revealed an unusual profile characterized by a lower content of sialosylparagloboside and the presence of a novel ganglioside of slower mobility. Immunochemical studies demonstrate that this ganglioside binds Helix pomatia lectin and inhibits human anti-Sda antibody. In addition, a ganglioside with identical chromatographic mobility can be obtained by the enzymatic transfer of GalNAc from UDP-GalNAc to sialosylparagloboside using a microsomal preparation from human kidney. These results together with cell surface labeling experiments suggest that the major ganglioside of Cad erythrocytes might be derived from sialosylparagloboside by substitution with an additional N-acetylgalactosamine residue.

Animals↗

Biosynthesis of blood group I antigens. Identification of a UDP-GlcNAc:GlcNAc beta 1-3Gal(-R) beta 1-6(GlcNAc to Gal) N-acetylglucosaminyltransferase in hog gastric mucosa.

A beta 1-6N-acetylglucosaminyltransferase has been identified in microsomal preparations from hog gastric mucosa which is able to synthesize branch points in branched lactosaminoglycans (blood group I antigenic structures). The enzyme can be assayed specifically using the synthetic trisaccharide GlcNAc beta 1-3Gal beta 1-4Glc beta-OMe as acceptor. The product of the transferase reaction was isolated and identified by methylation analysis as, (Formula: see text) Into this tetrasaccharide two galactose residues were incorporated by the specific beta-N-acetylglucosaminide beta 1-4-galactosyltransferase from bovine milk. Thus a hexasaccharide was formed which was shown to inhibit strongly a murine monoclonal and a human anti-I antibody. Using a variety of oligosaccharides and glycolipids, which correspond to structures found in linear lactosaminoglycan chains, the acceptor substrate specificity of the branching enzyme was determined. From these results it is concluded that branching occurs only during the elongation process at the nonreducing end and follows a well-defined order. N-Acetylglucosamine is first transferred to position 3 of a terminal galactose followed immediately by the addition of a second N-acetylglucosamine to position 6; only then the 1-3 and the 1-6 branches are further elongated by galactose residues.

Animals↗

UDP-GlcNAc:Gal beta 1-4Glc(NAc) beta 1-3N-acetylglucosaminyltransferase. Identification and characterization in human serum.

A beta 1-3-N-Acetylglucosaminyltransferase has been detected in human serum which transfers N-acetylglucosamine residues from UDP-GlcNAc to terminal Gal beta 1-4Glc(NAc) structures in oligosaccharides, glycoproteins, glycolipids, and proteoglycans. The product of the transferase reaction with lactose as acceptor was identified by methylation analysis and mass spectrometry as GlcNAc beta 1-3Gal beta 1-4Glc. The beta-linkage of the GlcNAc in the synthesized trisaccharide was confirmed by the action of the specific enzymes beta-hexosaminidase and beta-N-acetylglucosaminide beta 1-4-galactosyltransferase. Kinetic parameters were determined for UDP-GlcNAc, lactose, and N-acetyllactosamine. The enzyme requires Mn2+ ions for maximal activity and shows a pH optimum between 6 and 8. Using a wide variety of synthetic and natural oligosaccharides, the substrate specificity of the beta 1-3N-acetylglucosaminyltransferase was investigated. The enzyme was found to recognize specifically the free terminal structure Gal beta 1-4Glc(NAc). The substrate specificity was found to be equally stringent for glycoconjugates. Among the glycoproteins and glycolipids tested as acceptors, N-acetylglucosamine was incorporated only into those containing free terminal Gal beta 1-4Glc(NAc) structures. When the terminal galactose residues were partially removed, the transfer of N-acetylglucosamine was strongly reduced.

Carbohydrate Conformation↗

Co-purification and characterization of UDP-glucose 4-epimerase and UDP-N-acetylglucosamine 4-epimerase from porcine submaxillary glands.

UDP-glucose 4-epimerase and UDP-N-acetylglucosamine 4-epimerase have been co-purified about 9,000-fold from porcine submaxillary glands by affinity chromatography on UDP-hexanolamine-agarose. The homogeneous epimerase has apparent Mr = 88,000 and contains two subunit species with apparent Mr = 37,000 and 35,000, respectively. The two subunits, however, are indistinguishable as judged by peptide mapping. The purified enzyme catalyzes equally well the reversible reactions UDP-glucose in equilibrium UDP-galactose and UDP-N-acetylglucosamine in equilibrium UDP-N-acetylgalactosamine. At saturating substrate concentrations, the ratio of the rate of the former reaction to that of the latter is 1.13 in the forward direction and 0.44 in the backward direction. Both reactions have the same Keq = 0.38 and the same dependence on pH. Moreover, both activities are lost at about the same rate by heat denaturation of the epimerase or reaction with N-ethylmaleimide. Kinetic analysis reveals that the reactants for one reaction are competitive inhibitors of the other reaction, with the Ki values of the inhibitors essentially identical with their Km values as substrates. Taken together, these studies suggest that UDP-glucose 4-epimerase and UDP-N-acetylglucosamine 4-epimerase activities reside in a single enzyme.

Animals↗

Increase of blood group A and loss of blood group Sda activity in the mucus from human neoplastic colon.

Aqueous extracts of human neoplastic and adjacent normal colonic mucosa were investigated for hemagglutination inhibition of both the anti-A serum and the Dolichos biflorus lectin. The anti-A antiserum was inhibited by the extracts from neoplastic tissues to a much higher extent than by that from normal mucosa; the inhibition was strictly dependent on the blood group and the secretor status of the individual. The inhibition titers against the Dolichos lectin were much lower for the tumor than for the normal tissue and the inhibition of this lectin was not dependent on blood group and secretor status. In addition, studies on the specificity of both agglutinins showed that only the anti-A antiserum reacted with the blood group A antigen in the colonic mucus whereas the Dolichos lectin reacted with a different substance which was not related to the blood group ABO system. The Dolichos reactive mucin was isolated by gel chromatography and by affinity chromatography on Dolichos-Sepharose. The partially purified mucin did not show any blood group A or H activity but reacted with all GalNAc specific lectins tested. A very high specific activity was obtained against the Dolichos biflorus lectin whereas the agglutinins from Salvia sclarea, Glycine max. (soybean) and Helix pomatia were less strongly inhibited no matter whether blood group A1, Tn, or Cad erythrocytes were used. By far the highest inhibitory activity was found against the human anti-Sd(a) antiserum regardless of whether the red blood cells were Cad or Sd(a+). By gel chromatography an equally pure mucin fraction could be obtained from neoplastic tissues which did not bind to either the anti-A antiserum nor the GalNAc specific lectins but could inhibit the anti-Sda antiserum at a far lower specific activity than the normal preparation.

ABO Blood-Group System↗