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F G Hanisch

Publications and source records attributed to F G Hanisch.

At least 37 records · Page 2Linked to original sources

Immunoreactivity of Thomsen-Friedenreich (TF) antigen in human neoplasms: the importance of carrier-specific glycotope expression on MUC1.

On the basis of their known fine specificities we evaluated the immunohistochemical marker qualities of two monoclonal antibodies (mabs) defining the tumor-associated TF disaccharide Gal beta 1-3 GalNAc. This antigen is expressed in certain tumors in correlation with prognosis and metastasis. The reactivity of one of these mabs (A78-G/A7) depends on clustered TF disaccharides (glycosylation at vicinal Ser/Thr positions) while the other--mab BW835--has been characterized to bind specifically to TF disaccharide linked to a motif within the MUC1 repeat. Therefore, mab BW835 represents an interesting tool for the identification of tumor-associated glycoforms of MUC1, which are involved in tumor progression and metastasis, but also in the recognition of tumor cells by cytotoxic T cells. As references the TF-binding lectins from peanut (PNA) and Artocarpus integrifolia (jacalin) were applied. The binding patterns of these immunoreagents were strikingly distinct. Mab BW835 showed a significantly stronger reactivity than mab A78-G/A7, especially in gastric, mammary, pancreatic, thyreoideal, renal and bladder carcinomas. PNA and jacalin receptors exhibited an expression in the majority of all cancer types, with the exception of seminoma and glioblastoma/sarcoma. These results can be explained by the broader fine specificities of the lectins. Furthermore, a strong expression of MUC1-bound TF antigen is indicated by the staining pattern of mab BW835. The marker qualities of both antigens, TF and MUC1, are combined in the binding specificity of BW835, and hence this antibody may have a high impact for the immunodetection of these tumor-associated antigens.

Epitopes, B-Lymphocyte↗

Enhanced binding of antibodies to the DTR motif of MUC1 tandem repeat peptide is mediated by site-specific glycosylation.

The epithelial mucin MUC1 is an important tumor marker of breast cancer and other carcinomas. Its immunodominant DTR motif, which is the principal target for immunotherapeutic approaches, has been assumed until recently not to be glycosylated in both normal and tumor MUC1 and to acquire its immunogenic conformation by virtue of a certain number of tandem repeats. We present evidence that the antigenicity of the single repeat toward a considerable number of antibodies to the DTR motif is greatly enhanced if it is glycosylated within this motif, and only in this position. Twenty-eight monoclonal anti-MUC1 antibodies with DTR specificity were tested for binding to synthetic 21-mer (AHG21) or 20-mer (HGV20) tandem repeat peptides O-glycosylated with galactose beta1-3N-acetylgalactosamine alpha or N-acetylgalactosamine alpha at defined Thr or Ser positions. Binding was measured in ELISA experiments using the glycopeptides as plate-immobilized antigens or as inhibitors in solution. At least 12 antibodies revealed significantly enhanced binding to the peptides glycosylated at the DTR motif (Thr-10) as compared to positional isomers glycosylated at Thr-5, Ser-6, Ser-16, or Thr-17 and to the nonglycosylated peptides. Six antibodies (VU-3-C6, A76-A/C7, Ma552, VU-11-D1, VU-12-E1, and VU-11-E2) that were unreactive with the monomeric repeat peptide did bind to the DTR-glycosylated peptide. Several lines of evidence suggest that glycosylation with N-acetylgalactosamine is sufficient for the observed enhancement effect. Our results are of special interest in conjunction with the recent observation that the DTR motif of lactation-associated MUC1 is O-glycosylated in vivo (Müller et al., J. Biol. Chem., 272: 24780-24793, 1997). They may have consequences for the design of efficient tumor vaccines.

Antibodies, Monoclonal↗

Correlation of the immunohistochemical reactivity of mucin peptide cores MUC1 and MUC2 with the histopathological subtype and prognosis of gastric carcinomas.

The expression of MUC1 and MUC2 mucin peptide core antigens in gastric carcinomas was studied by immunohistochemistry to determine correlations with TNM stage and histo-pathological classifications as well as a possible prognostic impact. Paraffin-embedded specimens from 128 gastric carcinomas with a minimal follow-up of 5 years were immunostained. In addition to a polyclonal antiserum generated against polymorphic epithelial mucin (MUC1) from human milk, 2 monoclonal antibodies (MAbs), HMFG2 (anti-MUC1) and 4FI (anti-MUC2), were applied. Reactivity of carcinomas was correlated with the classifications of the UICC (TNM), WHO and Laurén. Correlations with overall survival were analyzed using the Kaplan and Meier product limit method. MUC1 immunoreactivity was associated with an advanced pTNM stage. The demonstration of both mucin species (MUC1, MUC2) displayed a statistically significant correlation with tubular/papillary vs. signet-ring cell differentiation as well as with intestinal-type vs. diffuse-type of tumor growth according to Laurén. In particular, MUC2 was only rarely detectable in signet-ring cell and diffuse-type tumors. MUC1 correlated with poor prognosis in all cases and the subgroup of stage I tumors. According to the histopathological classifications, a similar result was observed in signet-ring cell and diffuse-type carcinomas. In contrast, MUC2 reactivity was associated with a favourable prognosis of intestinal-type carcinomas. In the non-neoplastic gastric mucosa, both peptide cores were recognized in the superficial epithelium, whereas parietal cells contained only MUC1, and intestinal metaplasia almost exclusively MUC2 antigens. We conclude that the mucin peptide core antigens are suitable markers for the tubule-rich gastric carcinomas, which may in part be derived from intestinal metaplasia. In addition, MUC1 may exert a prognostic relevance and appears to be involved in the progression of diffuse-type tumors.

Adult↗

Coexpression of MUC1 mucin peptide core and the Thomsen-Friedenreich antigen in colorectal neoplasms.

BACKGROUND: Controversial findings have been reported regarding the expression of the Thomsen-Friedenreich (TF) antigen in colorectal neoplasms when different monoclonal antibodies (MoAbs) have been used. Moreover, there is no information available regarding the carrier protein(s) of this antigen. METHODS: Forty-five colorectal adenomas and 48 carcinomas were studied by avidin-biotin complex-peroxidase immunohistochemistry. The immunohistochemistry employed the MoAb BW835, which was reactive to a carrier specific and site specific TF antigen on MUC1 mucin, as well as reference antibodies directed to MUC1 (HMFG2) or MUC2 core peptides (4F1) and directed to TF antigen irrespective of its carrier (A78-G/A7, peanut agglutinin). To evaluate the coexpression of different epitopes by the same antigen, sandwich enzyme-linked immunoadsorbent assays were performed. RESULTS: Although MUC1 peptide antigen and MUC1-bound TF antigen were not detectable in normal or transitional mucosa surrounding colorectal neoplasms, expression of these antigens in adenomas accompanied the development of high grade dysplasia. By contrast, MUC2 expression detected by the MoAb 4F1 was inversely correlated with the progression of the adenoma-carcinoma sequence. In well- and moderately differentiated colorectal carcinomas, the neo-expressed TF antigen is predominantly bound to MUC1. This feature could be demonstrated by antigen coexpression using peptide and the TF antigen specific MoAbs. However, in mucinous carcinomas exhibiting a weak MUC1 peptide expression in most specimens, the presence of TF antigen on the MUC2 peptide core cannot be ruled out. CONCLUSIONS: TF antigen is strongly coexpressed with MUC1 mucin peptide core in the colorectal adenoma-carcinoma sequence, resulting in well- and moderately differentiated carcinomas. Only in mucinous carcinomas may it be coexpressed with MUC2 antigen.

Adenocarcinoma↗

Localization of O-glycosylation sites of MUC1 tandem repeats by QTOF ESI mass spectrometry.

The potential of electrospray mass spectrometry (ESMS) for the sequencing of glycopeptides was evaluated using quadrupole time-of-flight (QTOF) technology in the MS/MS mode. The location of O-glycosylation sites was possible in the positive ion (+) mode by detection of prominent y- and b-fragment ions from the underivatized TAP25-2 [T1APPAHGVT9S10APDT14RPAPGS20T21APPA], an overlapping sequence of MUC1 tandem repeats which had been glycosylated in vitro by two GalNAc residues in the positions T9 and T21. The high mass resolution and accuracy of QTOF-(+)ESMS allowed reliable structural assignments. The reduced complexity of the fragment spectra and the higher signal-to-noise ratio render QTOF-(+)ESMS an alternative mass spectrometric approach to the identification of O-glycosylation sites when compared with sequencing by post-source decay matrix-assisted laser desorption/ionization MS. Diagnostic ions from the N-terminus in the b-series offered direct evidence, which was supported by indirect evidence from the C-terminus ions of the y-series. The higher glycosylated GalNAc2-substituted fragments were mainly observed as multiply ionized species.

Amino Acid Sequence↗

Fab-independent antiadhesion effects of secretory immunoglobulin A on S-fimbriated Escherichia coli are mediated by sialyloligosaccharides.

S-fimbriated Escherichia coli strains cause sepsis and meningitis in newborns and are known to recognize the carbohydrate sequence sialyl-(alpha2-3)-galactoside. We show that adhesion of cloned S-fimbriated E. coli to human epithelial cells is inhibited Fab independently by sialyloligosaccharides on secretory immunoglobulin A (s-IgA). This indicates an anti-infective function of s-IgA (Fc), particularly in early human milk.

Adult↗

Histopathological subtypes and prognosis of gastric cancer are correlated with the expression of mucin-associated sialylated antigens: Sialosyl-Lewis(a), Sialosyl-Lewis(x) and sialosyl-Tn.

The expression of three sialylated mucin-associated antigens - sialosyl-Lewisa (SLEA), sialosyl-Lewisx (SLEX) and sialosyl-Tn (STN) - and their correlation with the TNM stage, histopathological growth pattern and prognosis was investigated in a series of 127 gastric carcinomas. Various classification systems (pTNM, WHO and Laurén) did not display any correlation with an expression of the sialomucin antigens under study. SLEA reactivity was strongly associated with an unfavorable outcome of the total population, whereas SLEX and STN did not exert such an impact. However, in the subgroups of pTNM stage I as well as pN0 patients, SLEA and SLEX reactivity of the tumors was associated with a worse prognosis. In the subgroup of diffuse-type cancers as defined according to Laurén's classification, the expression of all three antigens indicated a worsening of the prognosis.

Adult↗

Specificity clusters of MUC1-reactive mouse monoclonal antibodies.

The ISOBM TD-4 Workshop antibodies 122-177 were grouped according to their reactivity with: (a) monomeric MUC1 peptide (TAP25); (b) the pentameric tandem repeat peptide (TR-5), both unglycosylated or as their GalNAc-substituted derivatives, and (c) the lactation or tumor-associated glycoforms of MUC1. The antibodies were grouped into nine clusters: Clusters 1-4 comprise those antibodies that bind to MUC1 tandem repeat peptide (monomeric) and define sequential epitopes differentially affected by glycosylation (GalNAc substitution) in the peptide motifs VTSA and GSTA. The ISOBM-163 antibody in cluster 5 defines Tn antigen as a site-specific glycotope within the tandem repeat peptide. The antibodies in clusters 6 and 7A recognize peptide epitopes within the tandem repeats, although these seem to be conformationally dependent on complex glycosylation or on oligomeric peptide repetition. Antibodies in clusters 7B bind to a conformational epitope not related to the tandem repeat peptide or to a carbohydrate epitope (cluster 7BC). Antibodies in cluster 8 showed a high selective binding to tumor-associated epitopes on MUC1 from mammary carcinoma cells. Cluster 9 antibodies were not reactive on any of the tested antigens and may be argued to lack MUC1 specificity. Alternatively, these antibodies could have a carbohydrate specificity not expressed by the MUC1 glycoforms tested in our studies.

Animals↗

Localization of O-glycosylation sites on glycopeptide fragments from lactation-associated MUC1. All putative sites within the tandem repeat are glycosylation targets in vivo.

Since there is no consensus sequence directing the initial GalNAc incorporation into mucin peptides, O-glycosylation sites are not reliably predictable. We have developed a mass spectrometric sequencing strategy that allows the identification of in vivo O-glycosylation sites on mucin-derived glycopeptides. Lactation-associated MUC1 was isolated from human milk and partially deglycosylated by trifluoromethanesulfonic acid to the level of core GalNAc residues. The product was fragmented by the Arg-C-specific endopeptidase clostripain to yield tandem repeat icosapeptides starting with the PAP motif. PAP20 glycopeptides were subjected to sequencing by post-source decay matrix-assisted laser desorption ionization mass spectrometry or by solid phase Edman degradation to localize the glycosylation sites. The masses of C- or N-terminal fragments registered for the mono- to pentasubstituted PAP20 indicated that GalNAc was linked to the peptide at Ser5,Thr6 (GSTA) and Thr14 (VTSA) but contrary to previous in vitro glycosylation studies also at Thr19 and Ser15 located within the PDTR or VTSA motifs, respectively. Quantitative data from solid phase Edman sequencing revealed no preferential glycosylation of the threonines. These discrepancies between in vivo and in vitro glycosylation patterns may be explained by assuming that O-glycosylation of adjacent peptide positions is a dynamically regulated process that depends on changes of the substrate qualities induced by glycosylation at vicinal sites.

Acetylgalactosamine↗

A sequencing strategy for the localization of O-glycosylation sites of MUC1 tandem repeats by PSD-MALDI mass spectrometry.

It is demonstrated with glycopeptides of the polymorphic epithelial mucin (MUC1) that post-source decay matrix-assisted laser desorption ionization (PSD-MALDI) is a fast, highly sensitive, and reproducible method for the localization of O-glycosylation sites by reflectron time-of-flight (TOF) mass spectrometry. We have analyzed GalNAc-carrying peptides of up to 25 amino acids, and could distinguish even neighboring glycosylation sites. This method was also able to localize and characterize disaccharides (e.g., the Thomsen-Friedenreich disaccharide) on MUC1 derived peptides. PSD-MALDI-MS fragment ion patterns were recorded in the positive ion mode from the synthetic peptide TAP25 [(T1aAPPAHGVT9S10APDT14RPAPGS20) T1bAPPA], an overlapping sequence of MUC1 tandem repeats, which was glycosylated with GaINAc in vitro. The glycosylation sites found were either Thr9 or Thr1b in the monoglycosylated, Thr9 and Thr1b in the diglycosylated, and Thr9, Thr1b, and Ser20 in the triglycosylated peptide. A single PSD-MALDI-MS spectrum of the underivatized and uncleaved di- or triglycosylated TAP25 peptide was sufficient to identify the glycosylation sites, thereby distinguishing six potential, partly adjacent, glycosylation sites. The monoglycosylated fraction was found to consist of a mixture of two glycosylated species with the same molecular weight. This was shown by the analysis of proteolytic digests. PSD-MALDI-MS of the resulting peptides right out of the digestion probe was sufficient to identify the Gal-NAc-glycosylation sites as either Thr9 or Thr1b, respectively. Beyond the methodical aspects the results revealed that in vitro glycosylation of the TAP25 peptide with a transferase system from human milk differs from that obtained with a breast cancer cell transferase system.

Amino Acid Sequence↗

Isolation and structural characterization of glycosphingolipids of in vitro propagated bovine aortic endothelial cells.

Neutral glycosphingolipids and gangliosides were isolated from 3.7 x 10(9) primary bovine aortic endothelial cells and structurally characterized by immunological and chemical methods. Glucosyl- and lactosylceramide were detected as the main neutral glycosphingolipids (28% and 40% of total orcinol stain, respectively); LcOse3Cer and nLcOse4Cer were expressed to somewhat minor amounts (16% and 10% of total orcinol stain, respectively), and nLcOse6Cer occurred only in trace quantities. No neutral glycosphingolipids of the ganglio-series (GgOse3Cer and GgOse4Cer) and the globo-series (GbOse4Cer and the Forssman antigen) have been detected; only traces of GbOse3Cer were identified by TLC immunostaining. Positive CD15 bands obtained by TLC overlay with anti-Gal beta1-4(Fuc alpha1-3)GlcNAc beta1-R antibody indicated the presence of lipid bound Lewisx antigen, whereas the isomeric Lewis(a) structure (Gal beta1-3(Fuc alpha1-4)GlcNAc beta1-R) was not detectable. G(M3) substituted with Neu5Gc and Neu5Ac in a 2:1 ratio was the major ganglioside comprising about 95% within the whole ganglioside fraction. G(M3)-structures were further characterized by FAB-MS and GC-MS of the native compounds and their permethylated derivatives. C18-sphingosine was the only long chain base, whereas variation occurred due to C(24:0,24:1) and C16 fatty acids. Terminally alpha2-3 sialylated neolacto-series gangliosides with nLcOse4- and nLcOse6Cer (<5% of total resorcinol stain) were found in almost equal quantities, whereas no alpha2-6 sialylated counterparts were detected. Fucosylated gangliosides with poly-N-acetyllactosaminyl chains (sialyl Lewis[x], sialyl Lewisa, and VIM-2 antigen) and sulfoglucuronylneolacto series structures with HNK-1 epitope were not detectable in the acidic glycosphingolipid fraction by TLC immunostaining. Gangliotetraose-type gangliosides G(M1) and G(D1a) (<1 % of total resorcinol stain) as well as traces of G(D1b) and G(T1b) have been distinctly identified by combined choleragenoid-TLC-immunostaining and previous neuraminidase treatment. The expression of dominant glycosphingolipids lactosylceramide and G(M3)(Neu5Gc) was proved by indirect immunofluorescence microscopy of cell layers grown in chamber slides, each showing different plasma membrane and subcellular distribution patterns. The results provide the basis for investigation of the role of glycosphingolipids as cell surface antigens of cellular interaction as well as receptors for blood components and macromolecules of the extracellular matrix.

Animals↗

Novel alphaGalNAc containing glycans on cytokeratins are recognized invitro by galectins with type II carbohydrate recognition domains.

We report on a novel posttranslational modification of cytoplasmic proteins. Presented evidences suggest that cytokeratins are bound in vitro by mammalian galectin-3 and the galectins from the sponge Geodia cydonium via their type II carbohydrate recognition domains, whose highest binding affinity is directed towards terminal alpha-N-acetylgalactosamine-bearing glycans with the general sequence GalNAcalpha1-3Gal(NAc)beta. Specificity analyses and the characterization of the critical sugar residue on cytokeratins for galectin binding were done with cytochemical and biochemical methods using various plant and animal lectins. Binding of GalNAc-specific lectins was saturable, sensitive to mild periodate oxidation, inhibitable by glycoconjugates carrying terminal GalNAc, and abolished after treatment of the cytokeratins with alpha-N-acetylgalactosaminidase. Binding to bacterially expressed recombinant cytokeratins did not exceed background binding. The presence of GalNAc residues on highly purified cytokeratins from MCF-7 and HeLa SS6 cells was confirmed by sugar composition analyses using gas chromatography/mass spectrometry. This novel posttranslational modification was not restricted to cytokeratins of MCF-7 cells, but did also occur in all of 9 other examined human carcinoma cell lines and in a normal human mammary epithelial cell line. From these cytochemical and biochemical in vitro studies we hypothesize that this glycan with its terminal alpha1-3 linked GalNAc determinant might represent the first natural cytoplasmic ligand for endogenous galectins-3 detected so far.

Acetylgalactosamine↗

The Thomsen-Friedenreich (TF) antigen: a critical review on the structural, biosynthetic and histochemical aspects of a pancarcinoma-associated antigen.

Within the family of blood-group related carbohydrate antigens the Thomsen-Friedenreich (TF) antigen (or T antigen) is an outstanding member by attracting scientific interest for more than 65 years and by having retained its significance as object of current biomedical research; in particular, as a pancarcinoma-associated antigen. In accordance with its constant or even growing attraction scientists have searched for specific reagents which would allow the unambiguous and sensitive detection of the Thomsen-Friedenreich antigen on cells or tissues. While at the beginning, immunohistochemical work on TF antigen expression was restricted by the limited specificity of plant lectins (peanut lectin) a significant progress has been possible since the introduction of the hybridoma technique. The respective monoclonal antibodies display distinct fine specificities and cellular staining patterns in immunohistochemistry and have contributed to controversial discussions on the organ-characteristic and tumor-associated expression of the TF antigen in some organs. It is the aim of this survey to summarize in the context of its structural and biosynthetic aspects the current knowledge on the tissue expression of the TF antigen as based on the use of peanut agglutinin and monoclonal antibodies and to discuss the findings with regard to their biomedical relevance, in particular, with emphasis on their value in tumor diagnosis.

Antigens, Tumor-Associated, Carbohydrate↗

Effect of glycosylation of a synthetic MUC1 mucin-core-related peptide on recognition by anti-mucin antibodies.

Human epithelial mucins are heterogeneously glycosylated proteins associated with breast and ovarian cancer. Several peptide-reactive anti-mucin MUC1 monoclonal antibodies are used in experimental and diagnostic assays but it is not known how glycosylation of the mucin influences antibody recognition. In this report we show that increasing glycosylation of a synthetic 25-amino acid fragment of the MUC1 core protein with N-acetylgalactosamine (GalNAc) elicits different responses in its recognition by two anti-MUC1 antibodies, C595 and HMFG1. We propose that increasing glycosylation of the synthetic mucin fragment produces an alteration in the structure of the epitope which enhances binding in C595, but not in HMFG1.

Acetylgalactosamine↗

MUC1 glycoforms in breast cancer--cell line T47D as a model for carcinoma-associated alterations of 0-glycosylation.

A highly immunogenic peptide motif within the tandem repeat domain of MUC1 mucin is assumed to be exposed during development of breast cancer due to altered O-glycosylation. To elucidate the structural aspects of these changes, we have isolated and analysed the integrated or secretory MUC1 glycoforms from carcinoma cell lines or solid tumors and from human milk. The buoyant densities measured in CsCl gradients for MUC1 glycoforms from cancer cells revealed heterogeneity of the physicochemical species and a significant reduction of their carbohydrate contents compared to MUC1 from skim milk. Immunoreactivity patterns of MUC1 glycoforms from tumor or T47D cells exhibited a lack of fucosylated Lewis blood-group-related antigens and the appearance of core-type antigen sialyl(NeuGl)-TF, Gal beta 1-3(NeuGl alpha 2-6)GalNAc. Structural chemistry of MUC1 oligosaccharides demonstrated that the cancer-associated glycoforms carry mainly sialylated trisaccharides NeuAc alpha 2-3Gal Beta 1-3GalNAc or NeuAc alpha 2-6(Gal beta l-3)GalNAc, exhibit a concomitant decrease in the ratio of GlcNAc/GalNAc, a reduction or disappearance of L-fucose, and a partial substitution of N-acetylneuraminic acid by the N-glycolylated variant. On comparison to the secretory MUC1 in human milk, the glycoforms on human milk fat globule membranes showed apparently identical patterns of O-linked oligosaccharides with a preponderance of neutral polylactosamino-glycans. During serum-free cultivation of T47D cells over 4 weeks, the expression of secretory MUC1 glycoforms was inconsistent based on the decreasing contents of sialic acid and on the concomitant increase of immunodetectable TF antigen.

Amino Acid Sequence↗

Characterization of the binding specificity of Anguilla anguilla agglutinin (AAA) in comparison to Ulex europaeus agglutinin I (UEA-I).

Using immunochemical and immunohistochemical methods, the binding site of Anguilla anguilla agglutinin (AAA) was characterized and compared with the related fucose-specific lectin from Ulex europaeus (UEA-I). In solid-phase enzyme-linked immunoassays, the two lectins recognized Fuc alpha 1-2Gal beta-HSA. AAA additionally cross-reacted with neoglycolipids bearing lacto-N-fucopentaose (LNFP) I [H type 1] and II [Le(a)] and lactodifucotetraose (LDFT) as glycan moieties. UEA-I, on the other hand, bound to a LDFT-derived neoglycolipid but not to the other neoglycolipids tested. Binding of AAA to gastric mucin was competitively neutralized by Le(a)-specific monoclonal antibodies. UEA-I binding, on the other hand, was reduced after co-incubation with H type 2- and Le(y)-specific monoclonal antibodies. According to our results, AAA reacts with fucosylated type 1 chain antigens, whereas UEA-I binds only to the alpha 1-2-fucosylated LDFT-derived neoglycolipid. In immunohistochemical studies, the reactivity of AAA and UEA-I in normal pyloric mucosa from individuals with known Lewis and secretor status was analysed. AAA showed a broad reaction in the superficial pyloric mucosa from secretors and non-secretors, but AAA reactivity was more pronounced in Le(a+b-) individuals. On the other hand, UEA-I stained the superficial pyloric mucosa only from secretor individuals. A staining of deep mucous glands by the lectins was found in all specimens. Both reacted with most human carcinomas of different origin. Slight differences in their binding pattern were observed and may be explained by the different fine-specificities of the lectins.

Agglutinins↗

Isolation and structural characterization of fucosylated gangliosides with linear poly-N-acetyllactosaminyl chains from human granulocytes.

The isolation and structural characterization of fucosylated neolacto-series gangliosides with linear poly-N-acetyllactosaminyl chains from normal human granulocytes is described. Gangliosides were purified by consecutive use of anion exchange HPLC on Fractogel TMAE-650(S), adsorption and reversed phase HPLC on Nucleosil 50-7 and Nucleosil 7C18 columns, respectively. TLC immunostaining with carbohydrate specific monoclonal antibodies, fast atom bombardment-mass spectrometry (FAB-MS) of the permethylated derivatives and gas chromatography-electron impact mass spectrometry (GC-EIMS) of partially methylated alditol acetates were used for structure elucidations. One ganglioside was identified as sialyl Lewis(x) antigen with nLcOse6Cer core, Neu5-Ac alpha 2-3Gal beta 1-4 (Fuc alpha 1-3)GlcNAc beta 1-3Gal beta 1-4Glc NAc beta 1-3 Gal beta 1-4Glc beta 1-1Cer. Furthermore, monosialylated ceramide deca-, undeca-, dodeca- and tridecasaccharides with three (nLcOse8Cer) and four (nLcOse10Cer) linear lactosaminyl repeats were identified, carring one to three fucoses. The ceramide portions were found to contain C18 sphingosine and predominantly C16:0 fatty acids. All monosialogangliosides were homogenous concerning their terminal alpha 2-3 Neu5Ac-sialylation, but different in their fucosylation status. Beside VI3Neu5Ac, V3Fuc-nLcOse6Cer, in two of the fucosylated polylactosaminyl ganglioside fractions the sialyl Lewis(x) epitope was found, whereas five species expressed the terminal VIM-2 motif. The role of protein linked sialy Lewis(x) epitope of human granulocytes as a ligand for endothelial leukocyte adhesion molecule-1 (ELAM-1; E-selectin) and platelet activation-dependent granule external membrane protein (PADGEM; P-selectin) is well documented. However, the involvement of endothelial cells E-and/or P-selectin mediated cell-cell adhesion via lipid bound sialyl Lewis(x) and/or VIM-2 epitopes on human granulocytes has to be proved in further investigations.

Carbohydrate Sequence↗

Forssman disaccharide is the specific ligand of a galectin from the sponge Geodia cydonium but does not mediate its binding to nuclear protein np56.

The galectin from Geodia cydonium (GCA) had previously been shown to be involved in regulatory mechanisms of cell sorting and adhesion during reaggregation of allogeneic sponge cells. In this contribution the binding specificity of GCA was established to be GalNAc alpha 1-3GalNAc beta as structural component of Forssman pentasaccharide. Crossreactivities of terminal structural elements were revealed in the order GalNAc alpha 1-3GalNAc beta > GalNAc alpha 1-3(Fuc alpha 1-2)Gal beta >> Gal beta 1-3GlcNAc beta > Gal beta 1-4Glc. Lectin binding to the Forssman antigen (Ki range 10(-7)) or to blood group A-trisaccharide exceeded that to lactose (Ki range 10(-3)/10(-2)) by three to four orders of magnitude. Cytochemical staining of eukaryotic cells on the light and electron microscopic level revealed lectin binding in the cytosol and in the nucleus (nucleoli), which was inhibitable with the soluble high affinity ligands. The nuclear binding of GCA could be ascribed to affinity-isolated 56 kDa protein (np56) in the nucleoplasm and was shown to be mediated by the peptide conformation of the ligand. Although GCA-np56 interaction was inhibitable with Forssman glycolipid or globopentaose, the carbohydrate binding site of the lectin is not involved due to the lack of competition by Forssman-specific lectins HPA or DBA. Since anti-CBP70 was immunologically cross-reactive to np56, it is concluded that the galectin GCA binds to np56 via similar mechanisms as reported previously for the interaction of CBP-35 (galectin-3) and CBP-70. Thus, GCA resembles galectin-3 in its binding characteristics but is likewise related to galectin-1 by sequence homology of its primary structure and by the molecular mass of its subunits.

Animals↗