Search PubMed⌕ Search

SEARCH · Search PubMed

Results for “Globosides”

Search indexed PubMed citations on genomics, clinical trials, systematic reviews and public health. Explore titles, authors and supplied subject terms, then open the PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 19 recordsLinked to original sources

Fucosyl-globoside and sialosyl-globoside are new glycolipids isolated from human teratocarcinoma cells.

Several novel glycosphingolipids have been isolated from the human teratocarcinoma cell line HT-E (833K). These cells contain two neutral glycolipids which metabolically incorporate radio-labelled fucose. In addition, there are three new gangliosides present, which are all members of the globoside series of glycolipids. One of the fucose containing glycolipids forms globoside when treated with alpha-fucosidase, and one of the gangliosides forms globoside when treated with neuraminidase. On the basis of chromatographic behavior, exoglycosidase treatment and antibody reactivity, the tentative structures of these new glycolipids are: Fuc (alpha 1-?) GalNAc (beta 1-3) Gal (alpha 1-4) Gal (beta 1-4) Glc (beta 1-Cer) and NeuAc (alpha 2-3) GalNAc (beta 1-3) Gal (alpha 1-4) Gal (beta 1-4) Glc (beta 1-Cer)

Antigens, Neoplasm↗

Plasma membrane and intracellular expression of globotetraosylceramide (globoside) in mouse bone marrow-derived mast cells.

The cellular localization of globotetraosylceramide (globoside), one of the predominant neutral glycosphingolipids of mouse interleukin 3-dependent, bone marrow culture-derived mast cells (BMMC), has been determined by immunologic and chemical methods. Although less than 10% of BMMC expressed globoside on their surface, as assessed by cytofluorographic analysis of the binding of a mouse monoclonal IgM anti-globoside antibody, treatment of BMMC with nonactivating doses of pronase, trypsin, or neuraminidase increased the percentage of BMMC binding anti-globoside antibody by an average of six, three, or sixfold respectively. That most BMMC had globoside on their plasma membrane was confirmed by the surface radiolabeling of globoside with galactose oxidase and sodium borotritide, as detected by autoradiography of thin layer chromatograms of the extracted neutral glycosphingolipids. Thus, BMMC expressed globoside on their plasma membrane, but accessibility of a large probe such as IgM antibody to the glycosphingolipid was impeded by surrounding surface molecules. All BMMC bound anti-globoside antibody intracellularly, as assessed by indirect immunofluorescence staining and fluorescence microscopy on acetone-permeabilized cells, and the pattern of staining suggested that globoside was associated with the secretory granules of BMMC. Immunologic activation of BMMC resulted in a fivefold increase in the surface expression of globoside, as detected by cytofluorographic analysis of the binding of monoclonal anti-globoside antibody. The findings suggest that activation of BMMC causes a reorganization of the plasma membrane such that globoside is more exposed or that activation is accompanied by movement of globoside from internal membranes to the plasma membrane. The increased expression of globoside is a novel marker of the activated mouse BMMC.

Animals↗

Globoside with spin-labelled fatty acid: bilayer lateral distribution and immune recognition.

We have critically addressed the question of lateral distribution of glycolipids in bilayer membranes, and the effect of glycolipid fatty acid chain length upon such distribution. For this purpose we synthesised the complex neutral glycosphingolipid, globoside, with spin-labelled fatty acid. Base hydrolysis to remove the natural fatty acid was found to deacetylate the GalNAc residue concomitantly, necessitating application of the synthetic route described for gangliosides by Neuenhofer et al. (Biochemistry 24, 525-532 (1985)). Globosides were produced with 18-carbon and 24-carbon fatty acids bearing a spin label at the C-16 position. Spin-labelled globosides were incorporated at 2 and 10 mol% into rigid, highly cooperative bilayer matrices of 1,2-dipalmitoylglycerophosphocholine (DPPC) and also into semi-fluid, non-cooperative membranes of DPPC/cholesterol. Recorded electron paramagnetic resonance (EPR) spectra were analysed by comparison with a library of standards representing samples of known composition. Spectra were manipulated using a computer program which permitted linear combination of standards to stimulate coexistence of laterally separated domains of different composition. The most important conclusions were as follows: (1) at least 80% of the globoside was definitely not confined to domains highly enriched in glycolipid, although there was evidence of binary-phase separation in the rigid DPPC/globoside matrix; (2) the presence of 33 mol% cholesterol reduced the evidence of globoside phase separation; (3) there was remarkably little difference in results whether the globoside fatty acid chain length was similar to that of the phospholipid host matrix or eight carbons longer. Temperature profiles derived over the phase-transition region of DPPC using spin-labelled globoside or an unattached amphiphilic spin label were consistent with these findings. The same systems lent themselves to consideration of the role of glycolipid fatty acid chan length and cholesterol in determining glycolipid crypticity in membranes: (1) polyclonal anti-globoside IgG bound to globoside in DPPC liposomes without inducing agglutination. (2) The same antibodies did agglutinate DPPC/cholesterol liposomes bearing globoside. (3) The effect of cholesterol probably was upon glycolipid dynamics or attitude in the membrane, rather than upon distribution. (4) These observations were basically unaffected by the choice of 18-carbon vs. 24-carbon glycolipid fatty acids.(ABSTRACT TRUNCATED AT 400 WORDS)

1,2-Dipalmitoylphosphatidylcholine↗

Perturbation of lecithin bilayer structure by globoside.

The ultrastructure of aggregates formed by mixtures of pig erythrocyte lecithin, cholesterol and globoside in aqueous systems was studied by electron microscopy and X-ray diffraction. Globoside and lecithin in up to equimolar amounts formed a lamellar mesophase, although the structure of the lamellae was perturbed. Mixtures containing excess globoside formed complex tubular or reticular aggregates. Cholesterol appeared to promote mixing of lecithin and globoside. The flexibility gradient of the hydrocarbon (hc) region of the lipid bilayers was studied using electron spin resonance (esr) spectroscopy of various nitroxide-labelled stearic acid probes. Globoside in equimolar amounts greatly perturbed the order parameters of lecithin bilayers, reducing the fluidity of the hc region and flattening the flexibility gradient near the polar (p) surface. The effect of globoside on lecithin-cholesterol bilayers was not so pronounced, since the latter was already more ordered than lecithin bilayers. A phase transition of pure globoside at 55 degrees C, involving 'melting' of the hc chains was also detected using X-ray and esr spectroscopic techniques. The interbilayer spacing, dw, of equimolar lecithin-globoside lamellar phase increased by 42% from that of lecithin bilayers, indicating that the glycolipid p group may increase the net repulsive force between bilayers, as was previously predicted theoretically.

Animals↗

Immunochemical relationship between Forssman and globoside glycolipid antigens.

The rabbit antibody response to the human blood group P glycolipid antigen, globoside, GalNAc(beta 1-3)Gal(alpha 1-4)Gal(beta 1-4)Glc-Cer, has been examined with respect to cross-reactions with the structurally related Forssman glycolipid GalNAc(alpha 1-3)GalNAc(beta 1-3)Gal(alpha 1-4)Gal(beta 1-4)Glc-Cer. Immunoadsorbent columns were used to isolate three purified antibody populations from the anti-globoside sera: (1) fraction A, antibodies that cross-react with both glycolipids; (2) fraction B, antibodies that react with Forssman antigen but not with globoside; and (3) fraction C, antibodies that are specific for globoside. The proportion of each fraction in the total antibody response to globoside appears to be related to preexisting immunity to these antigens. A rabbit with a high preimmune titer to Forssman antigen produced a large amount of Forssman-specific antibody, whereas a rabbit with a low or nonexistent preimmune titer of anti-Forssman antibody produced large amounts of globoside-specific antibody. The presence of Forssman-specific antibody in an immune response to globoside is an example of a heteroclitic type of immune response.

Animals↗

Localization of globoside and Forssman glycolipids on erythrocyte membranes.

Using the freeze-etch technique, the membrane localization of globoside, a principal glycolipid in human erythrocytes, and Forssman antigen, the chief glycolipid in sheep erythrocytes was evaluated using ferritin and colloidal gold as morphological markers for rabbit antibodies prepared against these glycolipids. Brief trypsinization of human red cell ghosts markedly aggregated intramembranous particles and permitted labeling of globoside, which appeared in a clustered arrangement. The aggregates of ferritin-anti-globoside differed from those of ferritin-wheat germ agglutinin, a label for glycophorin, which corresponded with the aggregates of intramembranous particles. Double-labeling of human trypsinized ghosts with anti-globoside/ Staphylococcal protein A-colloidal gold and ferritin-wheat germ agglutinin indicated that the patterns of labeling were different and that the aggregates of globoside did not bear a direct relationship to the intramembranous particles, which represent transmembrane proteins. Resealed sheep erythrocyte ghosts labeled with ferritin-conjugated rabbit anti-Forssman showed small clusters of Forssman glycolipid on the erythrocyte surface, which could be markedly aggregated with a second goat anti-rabbit antibody, indicating relative mobility of the small glycolipid domains. The distribution of ferritin-anti-Forssman label in sheep ghosts treated at pH 5.5 to aggregate intramembranous particles also did not show definite correspondence between intramembranous particles and the clusters of ferritin-anti-Forssman.

Antigens, Heterophile↗

Globoside expression within the human placenta.

This report demonstrates the presence of the neutral glycosphingolipid, globoside, on the villous trophoblast layer of human placenta. Immunoreactivity for globoside which is the receptor used by human parvovirus B19 was strongest in villous trophoblast cells of first trimester placentae, with diminished reactivity in second trimester placentae, and a near lack of staining for the antigen in those of third trimester. This relative reduction in globoside-specific immunoreactivity in placentae of increasing gestational ages was confirmed using thin-layer chromatographic analyses of extracted neutral glycolipids from the syncytiotrophoblast layer and cytotrophoblast cells of first and third trimester placental villi. The presence of globoside on the protective trophoblast layer of the villi provides a potential pathway whereby B19 may be transmitted from an infected mother to the fetus. The virus once across the placental barrier, may gain access to its erythroid precursor target cells within fetal villus capillaries. The observed change found in globoside immunoreactivity correlates well with the observation that fetal outcome is worse when maternal infection occurs during first or second trimester as compared to an infection occurring near term. The reason for this observed difference in fetal outcome may be due not only to the presence of more target cells potentially to infect during the first and second trimesters, but also to the greater number of viral receptors present on the villous trophoblast layer.

Chromatography, Thin Layer↗

A murine monoclonal IgM antibody specific for blood group P antigen (globoside)

A murine monoclonal IgM erythrocyte antibody appeared to have anti-P (anti-globoside) specificity. The antibody was a relatively weak cold agglutinin, but a strong haemolysin and its reactivity with red cells was markedly enhanced by enzyme treatment. This antibody was used to study the cell and tissue distribution of globoside. Globoside was not only detectable on red cells and erythroblasts, but also on endothelial cells and on subsets of platelets, megakaryocytes and fibroblasts. It was not detectable on granulocytes, monocytes and most peripheral blood lymphocytes. Neither was it present on erythroblast precursors (CFU-E, BFU-E), pro-erythroblasts or on the cells of the pro-erythroblastic cell lines K562 and HEL. However, K562 cells expressed globoside when induced to mature into erythroblasts by sodium butyrate. Cells of patients with various leukaemias were also tested. A significant number of positively reacting cells was frequently (six out of 18) seen in cases with a CML blast crisis (CML-BC) and rarely in AML (four out of 37 cases). In CML-BC the P-positive cells were probably erythroblasts and/or megakaryoblasts. Thus, globoside appeared to be an interesting marker in CML-BC of the erythroblastic or mixed erythroblastic-megakaryoblastic type.

Animals↗

Exposure of the major human red-cell glycolipid, globoside, to galactose oxidase.

Plasma membrane glycolipids are localized at the outer leaflet of the lipid bilayer, and their carbohydrate portions are exposed to the environment. The efficiency of exposure has, however, not been known. We have been able to determine the availability of the major red cell glycolipid, globoside, to externally added galactose oxidase. Red cells were extensively treated with the enzyme and the oxidized cells reduced with NaBD4. After isolation the extent of exposed globoside was estimated by mass spectrometry. The results show that the exposure of globoside varies in red cells of different individuals from 37-66%. The fatty acid composition of externally available globoside was the same as that of non-oxidized globoside. The exposure was not influenced by protease treatment of intact cells and no correlation was found with different ABO blood groups.

Borohydrides↗

Globoside-specific adhesins of uropathogenic Escherichia coli are encoded by similar trans-complementable gene clusters.

Uropathogenic Escherichia coli frequently express globoside-specific adhesins, shown to mediate binding to uroepithelial cells. For one gene cluster pap, it recently has been demonstrated that globoside binding is not dependent on expression of the pilus subunit gene papA. Instead, two other pap genes papF and papG are specifically required for globoside binding (F. P. Lindberg et al., EMBO J. 3:1167-1173, 1984). By restriction enzyme mapping, DNA hybridization, DNA sequencing, and protein expression in minicells, we show that three gene clusters encoding globoside binding have a very similar structure and gene organization, although they were cloned from different E. coli isolates. Major differences between the adhesin clones were restricted to the central part of the pilin gene (papA) and to one of the two adhesin gene (papG). The three functional units required for biogenesis of globoside-binding pili, i.e., pilin synthesis, pilin export, and pilin assembly, as well as expression of adhesion function, were all trans complementable among the gene clusters.

Adhesiveness↗

Induction of suppressor T cells by anti-globoside antibodies in cancer sera.

T cells treated with cancer sera frequently suppressed immunoglobulin production by autologous lymphocytes stimulated with pokeweed mitogen. Sera from healthy individuals did not induce suppressor activity. This suppression is not caused by TG cells (T cells bearing receptors for the Fc portion of immunoglobulin G [IgG]) interacting with immune complexes, because we used T cells depleted of TG cells. The suppressor-inducing factors were separated into an IgG-containing fraction and a fraction with a smaller molecular weight. IgG fractions from all sera that were positive for anti-globoside antibody induced suppressor T cells, and elimination of the anti-globoside antibody from these IgG fractions reduced the ability to induce suppressor T cells. T cells treated with rabbit anti-globoside antiserum also activated suppressor T cells. These observations indicate that the antibodies directed to the globoside antigen on suppressor T cells stimulate the suppressor T cells, and that anti-globoside antibody in cancer sera may play a role in causing immunodeficiency in cancer patients.

Antibodies↗

Studies on glycosphingolipids of fresh-water bivalves. III. Isolation and characterization of a novel globoside containing mannose from spermatozoa of the fresh-water bivalve, Hyriopsis schlegelii.

Three globosides were isolated from spermatozoa of the fresh-water bivalve, Hyriopsis schlegelii by mild alkaline hydrolysis, acetone precipitation, Unisil column chromatography and preparative thin-layer chromatography. These globosides are unique in their sugar chains, since they contain mannose instead of galactose found so far in all globosides of mammals and other animals examined. The main globoside in the spermatozoa was characterized as Glc-NAcbeta(1 leads to 2)Manbeta(1 leads to 3)Manbeta(1 leads to 4)Glcbeta(1 leads to 1)-ceramide by partial acid hydrolysis, analysis of its anomeric configuration with chromium trioxide, methylation analysis and enzymatic hydrolysis. The globoside contained normal saturated fatty acids ranging in length from C16 to C21, palmitic and stearic acids being predominant. Its main long-chain was octadeca-4-sphingenine.

Animals↗

Induction of protective immunity after escherichia coli bladder infection in primates. Dependence of the globoside-specific P-fimbrial tip adhesin and its cognate receptor.

Clinical observations suggest that immune mechanisms affect etiology and course of recurrent cystitis. A primate infection model was used to show that primary bladder infection with a uropathogenic P-fimbriated strain (binding to globoside present in the bladder wall) protects against rechallenge with homologous as well as heterologous Escherichia coli strains for up to 5-6 mo. In contrast, mutant derivatives producing P-fimbriae either lacking the tip adhesin protein or carrying an adhesin for which no bladder receptor was present, were unable to induce protection, even though they generated bladder infections of similar duration as the wild type. Therefore, the protective effect mediated by the adhesin seemed to depend upon the presence of its cognate receptor. Since the wild strain also mediated protection against mutants that lacked the adhesin, our data suggest that the globoside-binding PapG adhesin acts as an adjuvant during infection to enhance a specific response against other bacterial antigens. In fact, the globoside-binding strain DS17, but not the mutant DS17-1, unable to bind to membrane-bound globoside, elicited a secretory IgA response to LPS in urine. These in vivo findings suggest that bacterial adhesin-ligand interactions may have signaling functions of importance for the immune response.

Adhesins, Escherichia coli↗

Expression cloning of human globoside synthase cDNAs. Identification of beta 3Gal-T3 as UDP-N-acetylgalactosamine:globotriaosylceramide beta 1,3-N-acetylgalactosaminyltransferase.

By using a eukaryocytic cell expression cloning system, we have isolated cDNAs of the globoside synthase (beta1, 3-N-acetylgalactosaminyltransferase) gene. Mouse fibroblast L cells transfected with SV40 large T antigen and previously cloned Gb3/CD77 synthase cDNAs were co-transfected with a cDNA library prepared from mRNA from human kidney together with Forssman synthase cDNA, and Forssman antigen-positive cells were panned using an anti-Forssman monoclonal antibody. The isolated cDNAs contained a single open reading frame predicting a type II membrane protein with 351 amino acids. Surprisingly, the cDNA clones turned out to be identical with previously reported beta3Gal-T3, which had been cloned by sequence homology with other galactosyltransferases. Substrate specificity analysis with extracts from cDNA-transfected L cells confirmed that the gene product was actually beta1, 3-N-acetylgalactosaminyltransferase that specifically catalyzes the transfer of N-acetylgalactosamine onto globotriaosylceramide. Results of TLC immunostaining of neutral glycolipids from the cDNA-transfected cells also supported the identity of the newly synthesized component as globoside. The results show that glycosyltransferases apparently belonging to a single glycosyltransferase family do not necessarily catalyze reactions utilizing the same acceptor or even the same sugar donor. The globoside synthase gene was expressed in many tissues, such as heart, brain, testis, etc. We propose the designation beta3GalNAc-T1 for the cloned globoside synthase gene.

Amino Acid Sequence↗

Studies on glycosphingolipids of fresh-water bivalves. IV. Structure of a branched globoside containing mannose from spermatozoa of the fresh-water bivalve, Hyriopsis schlegelii.

1. A second novel globoside, provisionally named Lipid II in the previous study, was obtained from spermatozoa of the fresh-water bivalve, Hyriopsis schlegelii. The structure of this globoside was established by the results of partial acid hydrolysis, methylation studies, and oxidation with chromium trioxide. 2. The structure was shown to be GlcNAcbeta(1 leads to 2)Manbeta(1 leads to 3)[Xylbeta(1 leads to 2)]Manbeta(1 leads to 4)Glcbeta-(1 leads to 1)-ceramide. It is structurally related to the previously described globoside (Lipid I), except that a branched xylose is linked to the heterooligo saccharide chain of the latter lipid. 3. The predominant fatty acids were palmitic and stearic acids, and octadeca-4-sphingenine was the principal base, amounting to 70% of the total. The fatty acid and long-chain base compositions show nearly the same distribution in both of these globosides.

Animals↗

Immunochemical studies of lipids. IV. Chemical modification of Forssman globoside and immunological activities.

N-deacylated and N-deacetylated Forssman globoside obtained from Forssman globoside by partial alkaline hydrolysis had no Forssman activity. After re-N-acetylation of the N-deacylated and N-deacetylated Forssman globoside, the N-acetylsphingosyl Forssman oligosaccharide thus obtained recoverd its activity. Moreover, after ozonolysis and reduction of the N-acetylsphingosyl Forssman oligosaccharide, the 2-N-acetoamido-1,3,4-trihydroxybutanoyl Forssman oligosaccharide thus obtained still had a haptenic activity, but couldn't show a precipitin reaction with Forssman antibody. On the other hand, the Forssman globoside and the N-acetylsphingosyl Forssman oligosaccharide gave rise to precipitin line on agar gel double diffusion, it was thus concluded that the aqueous solution of these substances formed spherical micelles to behave like a fairly macromolecular multivalent antigen.

Acetylation↗

UDP-N-acetylgalactosamine:globoside alpha-3-N-acetylgalactosaminyltransferase. Purification, characterization, and some properties.

A UDP-N-acetylgalactosamine:globoside alpha-3-N-acetylgalactosaminyltransferase has been purified over 3500-fold in 4% yield from a Triton X-100 extract of canine spleen microsomes by affinity chromatography on globoside acid-agarose. Sodium dodecyl sulfate gel electrophoresis of the purified enzyme revealed two major bands with molecular weights of 66,000 and 56,000. Judging from the molecular weight of 120,000 estimated by Sephadex gel filtration in Triton X-100 and the above electrophoretic result, the enzyme presumably exists normally as a dimer. It required Mn2+ for its activity and had a pH optimum at 6.7-6.9. The enzyme catalyzes the transfer of N-acetylgalactosamine in alpha 1 leads to 3 linkage to globoside. Neither Fuc alpha 1 leads to 2Gal beta 1 leads to 4Glc nor H blood group substance nor deglycosylated mucin were acceptors. This indicates that the enzyme was distinct from both the N-acetylgalactosaminyltransferases converting the H to the A blood group substance and catalyzing synthesis of the Ser(Thr)-GalNAc linkage. Studies on substrate specificities indicate that the preferred substrates have the general structure GalNAc beta 1 leads to 3Gal-OR in which the nature of the R moiety has relatively little effect on activity. Kinetic analysis indicates UDP is a competitive inhibitor with respect to UDP-N-acetylgalactosamine and a noncompetitive inhibitor with respect to globoside. These studies demonstrate the first report of the properties of a purified enzyme catalyzing the transfer of sugar residues to glycolipids.

Animals↗

The glycosphingolipid composition of the placenta of a blood group P fetus delivered by a blood group Pk1 woman and analysis of the anti-globoside antibodies found in maternal serum.

To further define the molecules that may mediate spontaneous abortion due to maternal-fetal blood group incompatibility within the P blood group system, we have examined the fine specificities of maternal antibodies and the glycolipid antigens from the placenta of a P infant born to a Pk1 mother. Maternal antibodies obtained during therapeutic plasmapheresis were analyzed to determine their reactivities with placental glycolipid extracts on thin-layer plates. Second antibodies specific for IgM, IgG, and IgA revealed immunoglobulins of all of these classes strongly reactive with one major placental glycolipid that comigrates with globoside. GC/MS analysis confirmed that the major P-active pentaglycosylceramide of placenta has the same structure as that previously shown for the P antigen of red blood cells: GalNAc beta 1-3Gal alpha 1-4Gal beta 1-4Glc-Cer. Serum antibodies partially purified by affinity chromatography on globoside-octyl-Sepharose specifically recognize glycolipids that contain terminal GalNAc beta 1-3Gal . . . residues and also recognize the same sequence as an internal determinant in some, but not all, glycolipids with extended globoside core regions. Thus, in the blood group P incompatible fetus, the major P antigen present in placenta has the same carbohydrate structure as the P antigen present in fetal and adult erythrocytes and might be a target for the maternal immune system.

Adult↗