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Kinetic measurement of the interaction between an oligosaccharide and lectins by a biosensor based on surface plasmon resonance.

Kinetic measurements of the interaction between an oligosaccharide and various lectins were performed using a biosensor based on surface plasmon resonance (SPR). A glycopeptide, prepared from asialofetuin and having a nearly homogeneous N-linked sugar chain, was immobilized on the surface of a sensor chip via the amino groups of its peptide moiety. The interactions of this bound glycopeptide with six lectins [Sambucus sieboldiana lectin, Maackia amurensis lectin, Aleuria aurantia lectin, Ricinus communis agglutinin-120 (RCA120), Datura stramonium lectin (DSA) and Phaseolus vulgaris leukoagglutinating lectin] were monitored in real-time with the change in the SPR response. Of these lectins, only RCA120 and DSA showed an increase in the SPR response, indicating that these two lectins bound specifically to the immobilized glycopeptide. The other lectins did not show any significant changes in the SPR response. These results are in good agreement with the binding specificity previously demonstrated with affinity chromatography. The association-rate constant (kass) and the dissociation-rate constant (kdiss) for the glycopeptide-RCA120 interaction were 3.4 x 10(5) M-1 s-1 and 2.1 x 10(-3) s-1, respectively. The kass and kdiss determined for DSA were 5.7 x 10(5) M-1 s-1 and 1.3 x 10(-3) s-1, respectively. Furthermore, the relative binding molar ratio to the glycopeptide was three times higher for RCA120 than for DSA, suggesting that this sugar chain possesses three binding sites for RCA120 and one for DSA. These parameters are expected to provide useful information for defining the interaction between oligosaccharides and lectins.

Asialoglycoproteins↗

Expression and characterization of a lactosaminoglycan-carrying glycoprotein of Zajdela hepatoma cell surface--structural analysis of the carbohydrate moiety.

In poorly differentiated hepatoma cells, a glycoprotein carrying lactosaminoglycans is identified, and the structure of its glycan moiety is proposed. After membrane solubilization, protein fractionation by gel filtration, and electroelution, this glycoprotein (GPIII) was identified by its affinity for Datura stramonium lectin and its content in large glycopeptides. As shown by PAGE, GPIII has an apparent molecular mass of 100 kDa and is highly glycosylated (36%). It appears as an integral membrane glycoprotein. It is absent from normal hepatocytes, in that no heavy glycopeptides could be detected that bound to Datura lectin or to specific antiserum. The glycan moiety of GPIII has been analyzed according to carbohydrate composition, glycosidase treatment, affinity chromatography on immobilized pokeweed, Datura and Griffonia lectins, and by NMR and methylation analyses. The glycan is a N-linked tetraantennary lactosaminoglycan of 6.6 kDa, containing Gal, GlcNAc, Man, and NeuNAc in a 16:14:3:4 molar ratio, with an average of three repeating units/branch. Its beta-Gal residues are in the penultimate position and are linked in beta1-4 at least in four structural elements (three peripheral and one internal). It contains a very branched structure with Gal alpha1-3Gal beta1-4GlcNAc side chains linked in the C6 position to an inner Gal residue in a main branch. Alpha-Gal and NeuNAc residues [mainly NeuNAc alpha(2-3) linkage] are expressed as the nonreducing terminal groups. A possible structural model is proposed for this heterogeneous lactosaminoglycan, although no definitive structure can be established. That this lactosaminoglycan-carrying glycoprotein GPIII is not expressed in hepatocytes suggests its expression to be linked to the undifferentiated and/or malignant state of this hepatoma.

Amino Sugars↗

Involvement of N-acetyl-lactosamine-containing sugar structures in the liver metastasis of mouse colon carcinoma (colon 26) cells.

Histochemical aspects of the process of experimentally induced metastasis were examined by light and electron microscopy with labelled lectins employed as a probe. Mouse colon carcinoma cells (colon 26) were injected into the spleen of Balb/c mice and liver metastasis was induced. Among the lectins tested, Erythrina cristagalli agglutinin (ECA) stained the metastasized colon 26 cells strongly compared with the heterogeneous and faint staining in non-metastasized tumour foci in the spleen or in the subcutaneous space. Other lectins, such as Phaseolus vulgaris leucoagglutinin (PHA-L), Phaseolus vulgaris erythroagglutinin (PHA-E) and Datura stramonium agglutinin (DSA), having specificity for branched complex type sugar chains, did not show any differences between metastasized cells and non-metastasized tumour foci. In addition, N-acetyl-lactosamine, a specific inhibitor of ECA binding, significantly inhibited the attachment of suspended colon 26 cells to sectioned unfixed normal liver tissue. These results indicate that the expression of galactose (Gal) beta 1-4 N-acetyl-glucosamine (GlcNAc) residues of branched complex type sugar chains having specificity for ECA are important for the interaction process of carcinoma cells with hepatic cells in the process of liver metastasis.

Amino Sugars↗

Glycoproteins with N-acetylglucosamine and mannose residues in Chinese hamster metaphase chromosomes.

Distribution of glycosylated proteins in Chinese hamster metaphase chromosomes was studied with fluorescein isothiocyanate conjugated lectins. Three substructural domains with distinct glycoprotein compositions were identified. In situ binding of the lectins Wheat germ agglutinin (WGA) and Datura stramonium agglutinin (DSA) showed that chromosomal proteins containing N-acetylglucosamine residues preferentially localize to the surface domain and the helically coiled substructure of chromatids. In Western blots, digoxigenin conjugated WGA and DSA bound to several chromosomal proteins with molecular weight ranges of 45-220 kD and 66-220 kD, respectively. Binding of Galanthus nivalis agglutinin revealed that mannosylated chromosomal proteins are enriched at the surface and G/Q band domains, and their molecular weights range from 97 to 200 kD. The carbohydrate side chain structure of these mannosylated proteins must be quite specific, as after binding of another mannose-specific lectin, Concanavalin A, only a faint fluorescence was observed in metaphase chromosomes and only one protein band of 185 kD was weakly stained in Western blots. These data suggest that chromosomal glycoproteins containing N-acetylglucosamine and mannose residues play a role in the higher order structural organization of metaphase chromosomes.

Acetylglucosamine↗

Role of neurotrophins and lectins in prevention of ototoxicity.

Degeneration of hair cells (HC) and/or spiral ganglion neurons (SGN) is a major cause of hearing loss. Postnatal rat cochlear explant cultures are used to study the toxic actions of different classes of ototoxins and to identify molecules that can protect SGN and HC from ototoxic damage. Various ototoxins induce differential damage to HC and/or SGN. While gentamicin preferentially causes HC death, sodium salicylate selectively induces degeneration of SGN. In contrast, cisplatin results in destruction of both SGN and HC. Specific neurotrophins, including NT-4/5, BDNF, and NT-3, greatly protect SGN from all three types of ototoxins. In contrast, NGF and other growth factors have no effect. Of the 51 compounds examined, only concanavalin A (Con A), a lectin molecule, significantly protects HC from gentamicin. A dose-dependent study of Con A shows that maximal protection occurred at 100 nM. Further experiments indicates that preincubation of Con A with gentamicin does not form a complex, and coaddition of Con A and gentamicin to bacterial cultures, such as E. Coli cultures, does not interfere with the antibiotic activity of gentamicin. When the other 21 lectins are examined, Erythrina cristagalli lectin and Detura stramonium lectin also show activity similar to Con A. These findings may help elucidate the mechanisms of ototoxins and suggest that specific neurotrophins and lectins may be of therapeutic value in the prevention of ototoxin-induced hearing loss.

Animals↗

Purification of a Trypanosoma cruzi trypomastigote 60-kilodalton surface glycoprotein that primes and activates murine lymphocytes.

We have purified a glycoprotein with a relative molecular mass of 60 kDa and present on the surface of Trypanosoma cruzi trypomastigotes and studied its ability to prime and stimulate the proliferation of murine spleen cells. T. cruzi trypomastigote membrane proteins were separated by preparative isoelectrofocusing. A trypomastigote 60-kDa surface protein with an isoelectric point of 4.2 was enriched by chromatofocusing and was readily purified in native form to homogeneity by gel filtration on a Superose column by use of a fast protein liquid chromatography system. Biotinylated wheat germ agglutinin, Ricinus communis agglutinin, and Datura stramonium agglutinin bound to blots containing the purified trypomastigote 60-kDa surface protein, indicating that this protein was glycosylated. The purified trypomastigote 60-kDa glycoprotein was recognized by antibodies produced during human infection, and immunoglobulin G against the purified glycoprotein immunoprecipitated a biotinylated 60-kDa molecule from the surface of trypomastigotes but not epimastigotes. Specific immunoglobulin G against the 60-kDa glycoprotein also increased the uptake of trypomastigotes and promoted parasite killing by macrophages. The purified 60-kDa glycoprotein was able to specifically activate primed lymphocytes, since there was a significant increase in [3H]thymidine incorporation by spleen cells obtained from CBA mice primed with this glycoprotein, with respect to control values. Furthermore, the 60-kDa glycoprotein did not stimulate unprimed spleen cells, indicating that the lymphoproliferation induced by this glycoprotein was specific and was not due to polyclonal activation. Our findings indicate that this T. cruzi trypomastigote 60-kDa surface glycoprotein primes and activates lymphocytes, which could lead to a beneficial immune response in the host.

Animals↗

N-glycosylated proteins are involved in efficient internalization of Klebsiella pneumoniae by cultured human epithelial cells.

Klebsiella pneumoniae obtained from patients with urinary tract infections is able to invade cultured human epithelial cells. The internalization process is dependent upon both microfilaments and microtubules. To better understand the interaction of these invasive bacteria with the host cell receptor(s), bladder, lung, and ileocecal epithelial cells were infected with K. pneumoniae in the presence of various lectins possessing multiple glycan specificities. It was found that the N-acetylglucosamine (GlcNAc)-specific lectins concanavalin A, Datura stramonium agglutinin, and wheat germ agglutinin significantly inhibited the invasion of K. pneumoniae into these cells but did not interfere with the internalization of an invasive strain of Salmonella typhimurium. Conversely, internalization of K. pneumoniae but not S. typhimurium was also significantly inhibited when the bacteria were pretreated with GlcNAc or chitin hydrolysate, a GlcNAc polymer, prior to the gentamicin invasion assay. Other carbohydrates such as glucose, galactose, mannose, fucose, and N-acetylneuraminic acid had no inhibitory effects on K. pneumoniae uptake. Furthermore, internalization of K. pneumoniae but not S. typhimurium by HCT8 cells was also significantly inhibited when eukaryotic protein glycosylation was interrupted by tunicamycin or when host N-linked surface glycans were removed by pretreatment with N-glycosidase F. These studies suggest that a N-glycosylated protein receptor is involved in the internalization of K. pneumoniae by human epithelial cells in vitro. The results also indicate that internal GlcNAc residues might be a carbohydrate component of the receptor.

Acetylglucosamine↗

Two chromosomal loci involved in production of exopolysaccharide in Agrobacterium tumefaciens.

The chromosomal locus pscA (exoC) of Agrobacterium tumefaciens LBA4301 has been cloned by complementation of the avirulent and exopolysaccharide (EPS)-deficient mutant LBA4301 pscA. We have also identified a new locus, termed psdA (polysaccharide depression) and located 16 kilobases from pscA in the A. tumefaciens chromosome, that negatively affects EPS production when it is present in more than one copy in A. tumefaciens LBA4301. Subcloning, transposon mutagenesis, and transcriptional analysis have been conducted for both loci and indicate that pscA and psdA are transcribed in the same orientation. Acidic-EPS assays showed that psdA depresses succinoglycan production and that its negative effect increases with the copy number of the gene. Virulence tests of psdA transconjugants on Datura stramonium showed no visible alteration in virulence, while LBA4301 pscA was totally avirulent.

Chromosome Mapping↗

Restoration of pathogenicity of avirulent Xanthomonas oryzae pv. oryzae and X. campestris pathovars by reciprocal complementation with the hrpXo and hrpXc genes and identification of HrpX function by sequence analyses.

The molecular basis of pathogenesis by Xanthomonas oryzae pv. oryzae has been partly elucidated by the identification of a gene, hrpXo, required for bacterial blight on rice. A mutation in hrpXo results in the loss of pathogenicity on rice and the loss of hypersensitivity on nonhosts such as Datura stramonium and radishes. Pathogenicity and its ability to cause the hypersensitive reaction is restored by complementing the mutant with the heterologous hrpXc gene derived from X. campestris pv. campestris. Conversely, hrpXo complements nonpathogenic mutants of X. campestris pv. campestris and X. campetstris pv, armoraciae. Mutants bearing the heterologous hrpX gene are restored in their abilities to cause diseases typical of their chromosomal background and not the hypersensitive reaction on their respective hosts. The hrpXo and hrpXc genes are therefore functionally equivalent, and this functional equivalence extends into X. campestris pv. armoraciae and possibly into other X. campestris pathovars, since this gene is highly conserved among eight other pathovars tested. Sequence analyses of hrpXo revealed an open reading frame of 1,452 bp with a coding capacity for a protein of 52.3 kDa. The protein contains a consensus domain for possible protein myristoylation whose consequence may result in a loss of recognition by host defense and surveillance systems.

Amino Acid Sequence↗

pSa causes oncogenic suppression of Agrobacterium by inhibiting VirE2 protein export.

When coresident with the Ti (tumor-inducing) plasmid, the 21-kDa product of the osa gene of the plasmid pSa can suppress crown gall tumorigenesis incited by Agrobacterium tumefaciens. Neither T-DNA processing nor vir (virulence) gene induction is affected by the presence of osa in the bacterium. We used Arabidopsis thaliana root segments and tobacco leaf discs to demonstrate that Osa inhibits A. tumefaciens from transforming these plants to the stable phenotypes of tumorigenesis, kanamycin resistance, and stable beta-glucuronidase (GUS) expression. When A. tumefaciens contained osa, the lack of expression of transient GUS activity in infected plant tissues, as well as the lack of systemic viral symptoms following agroinfection of Nicotiana benthamiana by tomato mottle virus, suggested that oncogenic suppression by Osa occurs before T-DNA enters the plant nucleus. The extracellular complementation of an A. tumefaciens virE2 mutant (the T-DNA donor strain) by an A. tumefaciens strain lacking T-DNA but containing a wild-type virE2 gene (the VirE2 donor strain) was blocked when osa was present in the VirE2 donor strain, but not when osa was present in the T-DNA donor strain. These data indicate that osa inhibits VirE2 protein, but not T-DNA export from A. tumefaciens. These data further suggest that VirE2 protein and T-DNA are separately exported from the bacterium. The successful infection of Datura stramonium plants and leaf discs of transgenic tobacco plants expressing VirE2 protein by an A. tumefaciens virE2 mutant carrying osa confirmed that oncogenic suppression by osa does not occur by blocking T-DNA transfer. Overexpression of virB9, virB10, and virB11 in A. tumefaciens did not overcome oncogenic suppression by osa. The finding that the expression of the osa gene by itself, rather than the formation of a conjugal intermediate with pSa, blocks transformation suggests that the mechanism of oncogenic suppression by osa may differ from that of the IncQ plasmid RSF1010.

Agrobacterium tumefaciens↗

Identification of group B streptococcal antigen with lectin-bound polystyrene particles.

The lectin of the tomato, Lycopersicon esculentum, or of the potato, Solanum tuberosum, can be passively coupled to amide-modified polystyrene spheres to be used as a detection reagent for the specific identification of group B streptococcal cultures grown in selective or nonselective Todd-Hewitt broth for 5 and 4 h, respectively. Agglutination occurred when the lectin reagents were allowed to react with either the cell suspension, clarified broth, or antigen extracts from group B streptococci grown in Todd-Hewitt broth. No agglutination occurred when these lectins were allowed to react with strains of serogroup A, C, D, F, or G streptococci. False-negative agglutination responses may occur with certain serotype of group B streptococci grown on Columbia sheep blood agar. A 20-min staining time permitted the specific labeling of fixed smears of group B streptococci with fluorescein-conjugated Lycopersicon lectin. The lectin from the solanaceous plant Datura stramonium did not agglutinate group B streptococci or other clinically significant streptococcal serogroups.

Antigens, Bacterial↗

Polylactosaminoglycan modification of a small integral membrane glycoprotein, influenza B virus NB.

The structure of the carbohydrate components of NB, the small integral membrane glycoprotein of influenza B virus, was investigated. The carbohydrate chains of NB are processed from the high-mannose form (NB18) to a heterogeneous form of much higher molecular weight, designated NBp. Selection of this carbohydrate-containing form of NB with Datura stramonium lectin, its susceptibility to digestion by endo-beta-galactosidase, and determination of the size of NBp glycopeptides by gel filtration chromatography suggested that the increase in molecular weight is due to processing to polylactosaminoglycan. Investigation of the polypeptides produced by influenza B/Lee/40 virus infection of several cell types and another strain of influenza B virus suggested that the signal for modification to polylactosaminoglycan is contained in NB. Expression of mutants of NB lacking either one or both of the normal N-terminal sites of asparagine-linked glycosylation indicated that both carbohydrate chains are modified to contain polylactosaminoglycan. NBp and a small amount of unprocessed NB18 are expressed at the infected-cell surface, as determined by digestion of the surfaces of intact cells with various endoglycosidases. Unglycosylated NB, expressed either in influenza B virus-infected cells treated with tunicamycin or in cells expressing the NB mutant lacking both N-linked glycosylation sites, was expressed at the cell surface, indicating that NB does not require carbohydrate addition for transport.

Amino Sugars↗

The use of lectins in monitoring degradation of oligosaccharide chains in mucin by oral streptococci.

The ability of utilize mucin oligosaccharides as sources of carbohydrate and energy is believed to be an important mechanism in the ecology of oral streptococci. In this study we have used digoxigenin-labelled lectins of various specificities to monitor changes in the nonreducing end groups of oligosaccharide chains following their degradation by Streptococcus oralis Ny 586 and Streptococcus sanguis Ny 584. The reaction of degraded mucin with peanut lectin, that recognizes the core disaccharide Gal (1,3)GalNAc in O-glycans, revealed a more extensive degradation of oligosaccharide by S. oralis than by S. sanguis. This corresponds to better growth of S. oralis on the mucin. Analyses with Datura stramonium lectin showed that terminal Gal (1,4)GlcNAc, or GlcNAc (1,4)GlcNAc moieties, in the oligosaccharides are attacked by both strains. Reaction patterns with alpha-L-fucose-specific lectins indicated that terminal fucose was released by S. oralis but not by S. sanguis. This was in accordance with sugar analyses which showed that approximately 40% of the fucose units were released. The results extend previously observed losses of sugars from oligosaccharide chains during growth of these organisms on mucin.

Animals↗

Production of a monoclonal antibody against cell-surface glycoprotein of guinea pig adrenocortical cells.

A monoclonal antibody (MAb) that reacted with the cell-surface antigens of adrenocortical cells was generated against cell suspensions from guinea pig adrenal glands. Cell-surface membranes of the adrenocortical cells in all zones, i.e., zona glomerulosa, zona fasciculata, and zona reticularis, were labeled with the antibody. Adrenal medulla remained unlabeled. Immunoelectron microscopy showed that entire plasma membranes, i.e., plasma membranes between adjacent cells and free cell-surface membranes, including sinusoidal microvilli, were immunoreactive to the antibody. Immunoblot analysis demonstrated that the antibody bound to two prominent bands at molecular weights of approximately 62,000 and 110,000. Two bands were stained with lectin-digoxigenin conjugates. The 110 KD band reacted with Datura stramonium (DSA) and Maackia amurensis (MAA) agglutinins, indicating the presence of N-acetyl-glucosamine and sialic acid-linked alpha (2-3) to galactose; the 62 KD band reacted with SNA, indicating the presence of sialic acid-linked alpha (2-6) to galactose. In adrenocortical cells, the reaction pattern of Sambucus nigra (SNA) agglutinin was similar to that of the (MAb), whereas reaction patterns of DSA and MAA were different. Both neuraminidase digestion and prior absorption of the antibody with N-acetyl-neuraminic acid completely prevented the immunolabeling of adrenocortical cells. These results indicate that the MAb mainly recognizes the 2-6 sialylated cell-surface antigen of adrenocortical cells.

Adrenal Cortex↗

Contractility of lungs and air-tubes: experiments performed in 1840 by Charles J.B. Williams.

In the 18th century, some medical practitioners considered the main pathological feature of asthma to be the production of mucus. Later, during the 19th century, airway smooth muscle contraction was recognized to be a possible cause of airflow obstruction. However, not until 1840 was the contractility of airway smooth muscle clearly established by Charles J.B. Williams, a famous London physician. In a number of innovative experiments in dogs, rabbits, livestock and even donkeys, he showed: 1) that airways contract in response to electrical stimulation; 2) that the observed contractions are almost totally abolished by belladonna and stramonium (anticholinergics); 3) that the responses faded over time; and 4) that morphine inhibited the observed responses. Application of irritant fluids into the tracheal lumen produced similar responses. These interesting observations made by Williams will be reviewed, and related to current theories concerning modulation of airway smooth muscle responsiveness.

Asthma↗

Different glycosylation of cadherins from human bladder non-malignant and cancer cell lines.

BACKGROUND: The aim of the present study was to determine whether stage of invasiveness of bladder cancer cell lines contributes to alterations in glycan pattern of their cadherins. RESULTS: Human non-malignant epithelial cell of ureter HCV29, v-raf transfected HCV29 line (BC3726) and transitional cell cancers of urine bladder Hu456 and T24 were grown in cell culture. Equal amounts of protein from each cell extracts were separated by SDS-PAGE electrophoresis and were blotted on an Immobilon P membrane. Cadherins were immunodetected using anti-pan cadherin mAb and lectin blotting assays were performed, in parallel. N-oligosaccharides were analysed by specific reaction with Galanthus nivalis agglutinin (GNA), Sambucus nigra agglutinin (SNA), Maackia amurensis agglutinin (MAA), Datura stramonium agglutinin (DSA), Aleuria aurantia agglutinin (AAA), Phaseolus vulgaris agglutinin (PHA-L) and wheat germ agglutinin (WGA). The cadherin from HCV29 cell line possessed bi- and/or 2,4-branched triantennary complex type glycans, some of which were alpha2,6-sialylated. The cadherin from BC3726 cell line exhibited exclusively high mannose type glycans. Cadherins from Hu456 and T24 cell lines expressed high mannose type glycans as well as beta1,6-branched oligosaccharides with poly-N-acetyllactosamine structures and alpha2,3-linked sialic acid residues. Additionally, the presence of fucose and alpha2,6-sialic acid residues on the cadherin from T24 cell line was detected. CONCLUSIONS: These results indicate that N-glycosylation pattern of cadherin from bladder cancer cell line undergoes modification during carcinogenesis.

Journal Article↗

Cellular heterogeneity in the membrana granulosa of developing rat follicles: assessment by flow cytometry and lectin binding.

The hormone-mediated maturation of ovarian follicles is apparently accompanied by position-specific differentiation of cells of the membrana granulosa. We have assessed the extent of this cellular heterogeneity by flow cytometry using a variety of fluorescein isothiocyanate-labeled lectins as probes. Follicular development was stimulated in immature rats by treatment with either diethylstilbestrol (DES) or equine CG (eCG). Lectin binding to monodispersed rat granulosa cells was then analyzed by flow cytometry. Our results demonstrate that there are two distinct populations of small (4-7 microM) and large (9-12 microM) granulosa cells in follicles from DES- and eCG-treated animals. Both populations appear to be mitotically active and show specific lectin-binding characteristics. Six lectins (canavalia ensiforms, triticum vulgaris, maclura pomifera, erythrina cristagalli, jacalin, and vicia villosa) bind equally to both small and large granulosa cells from the DES- and eCG-treated rats. In contrast, no binding to either cell population was detected with six other lectins (dolichos biflorus, griffonia simplicifolia-II, lycopersicon esculentum, datura stramonium, solanum tuberosum, and ulex europaeus). Furthermore, four galactose-binding lectins (bauhinia purpurea, glysine maximus, griffonia simplicifolia-I, and arachis hypogaea) were found to identify specific subsets of granulosa cells. Three of these lectins (bauhinia purpurea, glysine maximus, and griffonia simplicifolia-I) bind to only small granulosa cells from either DES- or eCG- treated immature rats. The fourth lectin (arachis hypogaea) identifies subpopulations of both small and large granulosa cells. Application of the four galactose-specific lectins to fixed sections of frozen ovaries demonstrated binding to the perioocyte and cumulus granulosa cells. We conclude that cellular heterogeneity exists within the follicular epithelium at various stages-specific lectin-binding sites.

Animals↗

Analysis of carbohydrate residues on recombinant human thyrotropin receptor.

An investigation of the sugar groups on recombinant human TSH receptors (TSHR) expressed in CHO-K1 cells and solubilized with detergents is described. Western blotting studies with TSHR monoclonal antibodies showed that the receptor was present principally as two bands with approximate molecular masses of 120 and 100 kDa. Further blotting studies using lectins and/or involving treatment with different glycosidases indicated that the 100-kDa band contained about 16 kDa of high mannose-type sugars, and the 120-kDa band contained about 33 kDa of complex-type sugars. It was possible to separate the 120- and 100-kDa components of the TSHRs by lectin affinity chromatography. In particular, Galanthus nivalis lectin, which binds high mannose-type sugars, bound the 100-kDa band, but not the 120-kDa band, whereas Datura stramonium lectin, which binds complex-type sugars, bound the 120-kDa band, but not the 100-kDa band. 125I-Labeled TSH binding studies with the various lectin column fractions showed that TSH-binding activity was principally associated with the complex-type sugar containing the 120-kDa form of the receptor rather than the high mannose-containing 100-kDa form. During peptide chain glycosylation, high mannose-type sugar residues are attached first and then modified by the formation of complex type structures to form the mature glycoprotein. Our data suggest that in the case of the TSH receptor, this type of posttranslational processing has an important role in forming the TSH-binding site.

Animals↗