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Histochemical differentiation of complex carbohydrates with variants of the concanavalin A-horseradish peroxidase method.

Various treatments carried out prior to the concanavalin A-horseradish perioxidase (HRP) method have been found to affect the staining and have permitted differentiation of three main classes of complex carbohydrates in the rat alimentary tract. Class I mucosubstances lose and class II and III paradoxically gain concanavalin A-horseradish peroxidase reactivity after periodate oxidation. Class II mucosubstances lose whereas class III retain or increase their reactivity with a reduction step interposed between oxidation and concanavalin A-horseradish peroxidase staining. Mucous neck cells, pyloric glands, Brunner's glands and mast cells exhibit strong class III staining, whereas other sites such as intestinal goblet and salivary gland acini differ widely in their type of staining. Liver glycogen stains like mucosubstances in an unstable subgroup of class III. The paradoxical increase in concanavalin A binding during oxidation correlates with the appearance of Schiff reactivity implicating oxidation of vicinal hydroxyls as the basis for the effect. The periodate-induced staining is therefore, thought to result from an oxidative disruption of linkages between vicinal hydroxyls of neighboring sugars and hydroxyls of mannose required for concanavalin A binding. Staining with the described concanavalin A-horseradish peroxidase variants appears to afford information concerning cytochemical distribution of mannose-rich glycoproteins as well as differences among these substances in the relation of mannose to neighboring sugars.

Animals

The effects of neuraminidase on concanavalin A agglutination of erythrocytes: evidence for adsorption of neuraminidase to erythrocyte membrane.

Neuraminidase-treated human erythrocytes, but not untreated erythrocytes, were agglutinated by concanavalin A. The degree of concanavalin A agglutinability was not directly related to sialic acid removal by neuraminidase. While maximal sialic acid release was obtained with 5 units neuraminidase/2 x10(9) erythrocytes, maximal concanavalin A agglutination was only obtained after exposure to 20 units neuramindase. Binding of 3H-concanavalin A by erythrocytes was 10-fold higher with rabbit compared to human red cells. Neuraminidase treatment of human erythrocytes caused a relative increase in 3H-concanavalin binding, but the absolute amount was still 10-fold less than that bound to rabbit erythrocytes. Specific adherence of neuraminidase to Con A-Agarose could not be demonstrated. There was no evidence for contamination of the neuraminidase preparation with proteases using a sensitive assay. These studies suggest that neuraminidase absorbs to erythrocytes by a mechanism other than removal of sialic acid.

Adsorption

Glycophorin and the concanavalin A receptor of human erythrocytes: their receptor function in lipid bilayers.

Two integral glycoproteins from the human erythrocyte have been studied after their incorporation into lipid bilayer systems. Glycophorin (which is the M/N blood group determinant) and the concanavalin A receptor were isolated and purified prior to incorporation into model membranes by dialytic removal of detergent from lipid/protein solutions. Under the conditions described, glycoprotein receptors maintain their function in that they bind external agents specific for them, such as concanavalin A and immunoglobulins. So-called intramembranous particles are a feature of freeze-fractured preparations of lipid bilayers containing either (or both) glycoprotein(s), and to some extent each has a characteristic particle appearance. Liposomes containing the concanavalin A receptor (with or without glycophorin) are agglutinable by concanavalin A, whereas human erythrocytes are normally considered to be nonagglutinable by this lectin. Liposomes containing glycophorin alone are readily agglutinable by the appropriate glycophorin-directed M/N antiserum, as are human erythrocytes. The added presence of concanavalin A receptor in the liposomes can markedly inhibit agglutination by M/N antiserum without preventing immunoglobulin binding.

Antigen-Antibody Reactions

Studies on the glycoprotein component of (Na+ +K+)-ATPase from dog fish salt gland. Binding to concanavalin A and removal of sialic acid by neuraminidase.

1. The presence of concanavalin A binding sugars in the glycoprotein component of a partially purified (Na++K+) ATPase preparation from dog fish salt gland was demonstrated by binding of a Triton X-100 extract of the enzyme and isolated glycoprotein to concanavalin A-Sepharose, and by binding of membrane-associated enzyme to free concanavalin A. 2. The binding of concanavalin A to the glycoprotein in both membrane-associated enzyme and a Lubrol extract of the enzyme had no effect on (Na++K+)-ATPase activity. Binding was completely inhibited by methyl-alpha-mannoside. Also, enzyme activity was not affected by removal of 50% of glycoprotein sialic acid by neuraminidase. These results suggest that the carbohydrate moiety of the glycoprotein does not play a catalytic role in the (Na++K+)-ATPase. 3. When a Triton X-100 extract of (Na++K+)-ATPase was chromatographed on concanavalin A-Sepharose, 37% of total protein was bound to the column and eluted by methyl-alpha-mannoside. The bound fraction was free of lipid, and contained not only the glycoprotein but also the large protein which is the catalytic subunit of the enzyme, and small amounts of other membrane derived proteins. The ratio of large protein to glycoprotein, as measured by the relative Coomassie blue absorbance of the two proteins separated by gel electrophoresis, was the same in the bound fraction as in the membrane. These results suggest that the glycoprotein and lareg protein are either associated together in the membrane or become associated during lipid replacement by Triton.

Adenosine Triphosphatases

Interactions of concanavalin A with chick embryo fibroblasts transformed by Rous sarcoma virus. Study with an RSV mutant thermosensitive for transformation.

The interactions between concanavalin A and chick embryo fibroblasts, normal and infected with Rous sarcoma virus (RSV-BH) or its thermosensitive mutant RSV-BH-Ta, have been studied. Normal chick embryo cells and RSV-BH transformed cells showed at 4 and 25 degrees C a similar number of concanavalin A receptors per cell. Analysis of the binding data by the Scatchard relation showed that apparent changes in binding as a function of temperature are due to the thermodynamic properties of the process and not to endocytosis. The lectin receptors on the cell surface of normal and RSV-BH infected cells showed homogeneity in their binding properties. Chick cells infected with RSV-BH-Ta showed a lectin binding behavior that was dependent on the temperature at which the cells were grown. At the permissive temperature for transformation (37 degrees C), the binding process was similar to that observed for normal and RSV-BH infected cells. At the nonpermissive temperature (41 degrees C), the cells showed at least two sets of concanavalin A receptors. The new set of receptors on the cell surface had a lower lectin affinity than those observed in the same cells at 37 degrees C. Chick cells infected with RSV-BH showed an enhanced agglutinability by concanavalin A, as compared with normal cells. Cells infected with RSV-BH-Ta showed a reversal of the correlation between increased concanavalin A agglutinability and the transformed state. At the permissive temperature for transformation, the cells were not agglutinable, whereas at the nonpermissive temperature they presented agglutinability indexes as high as those observed with RSV-BH infected cells. This enhanced agglutinability observed with cells maintained at the nonpermissive temperature for transformation may be related to the new set of low affinity receptors present at 41 degrees C.

Agglutination Tests

Ca2+ binding sites in plasma membranes of rat liver and hepatoma cells, and effect of concanavalin A on the Ca2+ binding sites and cellular uptake of Ca2+.

1. Plasma membranes isolated from rat livers and ascites hepatoma cells (AH-130, AH-7974) were assayed for specific Ca2+ binding sites using 45Ca2+ and a Millipore filtration technique. The presence of higher (Kd = 1.4--1.5 . 10(-5) M) and lower (Kd = 0.9--1.0 . 10(-4) M) affinity sites in both liver and hepatoma membranes was observed. The hepatoma plasma membranes however, showed 1.4--2.1-fold as many Ca2+ binding sites (higher and lower affinity sites) as the liver plasma membranes on the basis of protein. 2. Concanavalin A stimulated the specific Ca2+ binding to liver and hepatoma plasma membranes, showing a maximal stimulation (3--5-fold) at 100 microgram/ml. Succinyl concanavalin A was less effective, whereas wheat germ agglutinin and ricinus lectin were ineffective. 3. Concanavalin A stimulated the Ca2+ uptake by AH-7974 cells. The concanavalin A-mediated stimulation of Ca2+ uptake showed lectin-concentrations and Ca2+-concentration dependencies similar to those in the concanavalin A-mediated stimulation of Ca2+ binding.

Animals

Studies on pig serum lipoproteins. III. Affinity chromatography of native lipoproteins on concanavalin A-sepharose.

The comparison of the binding capacities of the three major classes of pig serum lipoproteins, very low-density, low-density and high-density lipoproteins, to concanavalin A, was demonstrated by affinity chromatography on concanavalin A-Sepharose. Very low-density lipoprotein was separated into two fractions (60 to 66% of total protein was adsorbed). Each fraction had different electrophoretic mobility in pore size gradient gel. The majority of the carbohydrate was found in the adsorbed fraction. The carbohydrate content of the unadsorbed fraction was 0.14% sialic acid. 0.47% hexosamine and 0.93% neutral sugars, and of the adsorbed fraction, 2.05, 3.21 and 4.20%, respectively. The adsorbed and unadsorbed fractions contained fucose, mannose and galactose in the molar ratio of 1.0 : 3.6 +/- 0.2 : 2.2 +/- 0.4 and 1.0 : 3.1 +/- 0.2 : 2.5 +/- 0.3, respectively. Based on these results, two different molecular species were proved to be present in very low-density lipoproteins. In high-density lipoproteins, 80 to 85% of the total protein was not adsorbed on concanavalin A-Sepharose in spite of the presence of mannose in the apoprotein. In contrast to these lipoproteins, low-density lipoprotein was completely adsorbed on concanavalin A-Sepharose. However, the separation of the subfractions of low-density lipoprotein as well as the subfractions of high-density lipoprotein could not be achieved by this affinity column. The carbohydrate content of eluted fractions of low-density and high-density lipoproteins was identical with the previously reported values obtained in native lipoproteins. This difference in affinities for concanavalin A was also evidenced by gel electrophoretic profiles in urea and in sodium dodecyl sulfate which showed different glycoprotein distribution in each class of lipoproteins.

Amino Acids

Interactions between chondroitin sulfate and concanavalin A.

Chondroitin sulfate, the major extracellular matrix glycosaminoglycan, formed an insoluble complex with concanavalin A at pH 5.4 or below. Concanavalin A (500 microgram/ml) reacted only within a relatively narrow concentration range of chondroitin sulfate (optimally between 5 and 50 microgram/ml) at pH 5.4 in 0.05 M buffer. Similar precipitin-like interactions were seen between concanavalin A and hyaluronic acid or heparin. No precipitating complexes formed between concanavalin A and the glycosaminoglycans at these concentrations in physiological salt solutions (approx. 0.15 M) unless the pH was below 4.5. Precipitating self-aggregates of concanavalin A appeared to be promoted by chondroitin sulfate at pH 7.3, but no significant precipitation occurred between the reactants at this pH even at very high concentrations, nor did soluble complexes form as determined by affinity chromatography on Sephadex G-200 or fractionation on Bio-Gel P-200. Thus, binding between the lectin and glycosaminoglycans appeared to depend upon reversible non-specific electrostatic interactions observed only at low Ph and low ionic strength. Stable interactions were not seen in experiments using physiologically balanced salts at near neutral pH.

Chondroitin

Distribution of membrane particles and gap junctions in normal and transformed 3T3 cells studied in situ, in suspension, and treated with concanavalin A.

Freeze-fracture techniques were used to study the ultrastructural distribution of plasma membrane particles in cultures of normal Balb/c and Swiss 3T3 and simian virus 40- or murine sarcoma virus-transformed fibroblasts. No apparent differences were observed. Cultures fixed in situ show a seemingly random distribution of membrane particles both in normal or in transformed cells. Treatment of cell cultures in situ with concanavalin A does not result in an altered pattern of particle distribution. EDTA-induced suspension of normal or transformed cells does not result, per se, in modification of the type of membrane particle distribution seen in cells fixed in situ. However, upon further incubation, a proportion of normal or transformed cells in suspension show a varying degree of particle aggregation following a network pattern. Concanavalin A treatment of normal and transformed cells in suspension does not result in a specific change of the pattern of particle distribution. Because it has been established that treatment with concanavalin A of simian virus 40-transformed Balb/c 3T3 fibroblasts causes pronounced clustering of the concanavalin A receptors at the outer-surface, our results probably imply independence of membrane particles and concanavalin A receptors of these transformed cells.

Animals

Concanavalin A-binding glycopeptides from rat brain glycoproteins.

The affinity of concanavalin A for neutral and acidic glycopeptides derived from rat brain glycoproteins was investigated by studying the inhibition of a concanavalin A-glycogen precipitation system. The neutral, mannose-rich glycopeptides obtained by column electrophoresis of the dialyzable glycopeptides that had been solubilized by proteolytic treatment of defatted brain tissue were powerful inhibitors, with an inhibitory activity 20 to 26 times that of the standard inhibitor, methyl-alpha-D-mannoside. The acidic sialoglycopeptides had activities one to nine times that of the mannoside. Therefore, both acid and neutral glycopeptides were capable of interacting with concanavalin A. The especially strong affinity of the neutral mannose-rich glycopeptides, however, enabled their retention on concanavalin A-Sepharose and subsequent elution with methyl-alpha-D-mannoside. This provided the means of separation of the acidic sialoglycopeptides from the neutral, mannose-rich glycopeptides by affinity chromatography. Glycopeptides that contain N-acetylgalactosamine are not retained by concanavalin A-Sepharose.

Acetylgalactosamine

In vivo responses to inhaled proteins. II. Induction of interstitial pneumonitis and enhancement of immune complex-mediated alveolitis by inhaled concanavalin A.

An animal model of environmental lung disease is described in which phytomitogen, antigen, or both, are administered in aerosol form to previously immunized or immunologically naive rabbits. Inhalation of concanavalin A alone induced an interstitial pneumonitis in nonimmunized rabbits. Inhalation of concanavalin A alone induced an interstitial pneumonitis in nonimmunized rabbits. Inhalation of bovine serum albumin (BSA) alone typically produced only focal eosinophilic granulomas in BSA-immunized animals, and no injury whatever in nonimmune animals. However, simultaneous administration of BSA-concanavalin A aerosol mixtures to BSA-immunized rabbits induced a severe interstitial pneumonitis and granulomatous vasculitis, together with areas of frank parenchymal necrosis. When repeated on a chronic basis over a 4- or 8-week interval, challenge with BSA-concanavalin A aerosols resulted in both acute necrotic lesions as well as areas of frank interstitial fibrosis. Necrotic foci in acutely injured lungs were associated with interstitial deposits of BSA, rabbit anti-BSA antibody, and complement. Electron microscopy revealed numerous neutrophils within the pulmonary interstitial spaces of these animals, often in association with collagen and elastin fibers. The pattern of injury in immune rabbits induced by antigen-concanavalin A aerosols, in its nonnecrotizing form, is consistent with that of an extrinsic allergic alveolitis. However, the severe, necrotizing form of acute injury closely resembles changes seen in Wegener's granulomatosis. Possible mechanisms of injury produced by antigen and phytomitogen inhalation are discussed.

Aerosols

Concanavalin A-binding by cells of the early chick embryo.

The surfaces of cells from the early embryo of the chick were examined using electron microscope techniques for the visualization of concanavalin A-binding sites. Horseradish peroxidase and Ferritin labelled concanavalin A were used to determine the distribution of the binding sites. All surfaces of the epiblast and hypoblast layers which were accessible to concanavalin A showed the presence of binding sites in stage 1 embryos. The ventral surface of the epiblast showed a high lectin affinity which may reflect the development of a basal lamina on this surface. The individual hypoblast cells at this stage showed a non-uniform distribution of binding sites, having a greater affinity on the dorsal surface than the ventral. By the time of primitive streak formation (stage 4-5) the dorsal surface of the epiblast displayed increased binding sites, while the frequency of sites on the ventral surface of the endoblast was reduced. The latter may reflect a change from one cell population to another, which occurs in the lower layer of the embryo at this time. No consistent correlation could be drawn between changes in motility of cells actually invaginating through the primitive streak and changes in affinity for concanavalin A. An overall increase in affinity of the dorsal surface of the epiblast was revealed by Ferritin and may reflect the changes in surface structure occurring in readiness for the morphogenetic migrations of gastrulation.

Animals

Distribution of surface coat material on nasal folds of mouse embryos as demonstrated by concanavalin A binding.

3H-concanavalin A and the concanavalin A-horseradish peroxidase staining technique were used to study the distribution of surface coat material on the epithelium of the nasal folds and nasal groove of mouse embryos. In stages shortly before and during epithelial fusion concanavalan A stained or labeled material was present at apical surfaces of epithelial cells of the nasal groove and nasal folds. Silver grains, representing bound 3H-concanavalin A, were counted in defined areas of the nasal groove and presumptive fusion area in both anterior and posterior regions of the nasal folds. For both stages examined there was a significant increase in the amount of 3H-concanavalin A bound by presumptive fusion areas in posterior regions of the nasal folds as compared with anterior regions; i.e., the atact between the nasal folds. This finding is consistent with results from investigations of palatal shelf and neural fold fusion which suggest that increased synthesis of surface coat material is associated with adhesion and fusion of epithelial folds and shelves.

Animals

Studies on the interaction of concanavalin A with glycoproteins.

Lectins (phytohaemagglutinin) are known to have the unique property of binding with certain specific sugars, polysaccharides and glycoproteins. Although the kinetics of interaction between lectins and sugar have been extensively studied, the binding characteristics of the lectins with various glycoproteins are not well understood. In this laboratory a systematic study has been initiated in relation to the interaction of lectins with glycoproteins. Concanavalin A is known to bind alpha-glucosides, mannosides and biopolymers having these sugar configurations. A galactose binding protein from caster bean has been purified to homogeneity and was found to contain mannose. This lectin was used as the source of glycoprotein for studying its interaction with concanavalin A. This study showed that the interaction is temperature dependent and the dissociation is time and alpha-methyl glucoside concentration dependent. This has led to speculate a model for cell-lectin interaction. Using concanavalin A it has been shown that all the lysosomal enzymes from brain studied were glycoprotein in nature. Moreover, using Sepharose-bound concanavalin A it has been possible to devise a method by which these lysosomal enzymes could be purified considerably. With the knowledge that the interaction between lectin and glycoprotein is not only dependent on the specific sugar present in the glycoprotein, but also on the nature of the glycoprotein it was possible to develop a novel method for immobilizing various glycoprotein enzymes, such as arylsulphatase A, hyaluronidase and glucose oxidase.

Animals

Studies on the iodinated surface membrane proteins and concanavalin A agglutination of transformed Syrian hamster cells.

Chemically transformed Syrian hamster cells exhibit marked agglutination in the presence of the plant lectin, concanavalin A. In this report, we describe conditions which can alter this concanavalin A agglutinability, and compare the surface proteins from transformed cells which express different degrees of agglutinability. Lactoperoxidase-catalyzed iodination of tertiary Syrian hamster cells reveals the major iodinatable protein to be approximately 220 000 daltons. The transformed Syrian hamster cells do not contain this protein in an iodinatable form. Analyses of the transformed cells grown under conditions which decrease the concanavalin A agglutinability do not demonstrate any iodination of the 220 000 mol. wt. protein. These results depict the effects of growth and dibutyryl cyclic AMP on the iodinatable cell surface proteins of transformed cells and indicate that the absence of the I-220 000 mol. wt. protein is probably not a major determinant of concanavalin A agglutination.

Animals

I-Cell disease: isoelectric focusing, concanavalin A-Sepharose 4B binding and kinetic properties of human liver acid beta-D-galactosidases.

Isoelectric focusing of the acid beta-D-galactosidases (beta-D-galactoside galactohydrolase, EC 3.2.1.23) in normal crude liver supernatant fluids demonstrated multiple isoelectric forms in the pH range 4.58-5.15, while corresponding I-cell disease samples showed an absence of isoelectric forms in the pH range 4.99-5.15. Concanavalin A-Sepharose 4B chromatography of the I-cell disease mutant C.A. demonstrated a 31% and 37% decrease in the binding of 4-methyl-umbelliferyl-beta-D-galactosidase and GM1 beta-D-galactosidase activities, respectively, when compared to normal samples. Isoelectric focusing profiles of the concanavalin A-Sepharose 4B alpha-methyl-D-mannoside effluents containing normal and I-cell disease acid beta-D-galactosidase were generally similar, but the unadsorbed I-cell disease enzyme from concanavalin A-Sepharose 4B demonstrated more activity in the pH range 4.21-4.49 than normals. Normal and I-cell disease acid beta-D-galactosidase "A" and "B", separated by gel column chromatography were found to have similar properties with respect to apparent molecular weights pH vs. activity profiles and apparent Km values for the 4 methylumbelliferyl-beta-D-galactopyranoside, GM1-ganglioside and asialofetuin (ASF) substrates. However, the apparent V values for the ICD samples were consistently reduced when compared to the results obtained with the corresponding normal fractions. The greatest decreases in apparent V were obtained for acid beta-D-galactosidase activities in I-cell disease crude supernatant fluids, and for the separated I-cell disease "B" enzyme. The differences in the isoelectric focusing profiles, the altered binding to concanavalin A-Sepharose 4B, and the reduced V values with natural and synthetic substrates may be related to changes in carbohydrate composition of I-cell disease acid beta-D-galactosidase.

Chromatography, Affinity

Fluorimetric studies of tryptophyl exposure in concanavalin A.

Studies of the iodide ion quenching of the intrinsic fluorescence of Concanavalin A indicate that 50% of the tryptophyl fluorescence originates from exposed residues. This agrees with the X-ray crystallographic determination that two of the four tryptophan residues in a Concanavalin A monomer are on the surface. Previous studies have indicated that conformational changes induced by sugar binding alter the environment of aromatic residues. The present investigation finds that neither the specific binding of alpha-methyl-D-mannoside nor alteration of the Concanavalin A quaternary structure changes the number or accessibility of the solvent-exposed tryptophan residues. It therefore appears that the major conformational transitions in Concanavalin A do not affect steric access to the surface tryptophans and the effects previously observed may be ascribed to structurally internal tryptophan residues.

Binding Sites

Binding of human serum ferritin to concanavalin A.

1. A high proportion of the ferritin in normal serum binds to concanavalin A. Binding is prevented by the addition of alpha-D-methylglucoside to the reaction mixture. 2. Ferritin in extracts of normal heart, liver and spleen or serum ferritin from patients with massive hepatic necrosis does not bind to concanavalin A. 3. Isoelectric focusing of preparations of serum ferritin from patients with primary haemochromatosis shows that the ferritin fraction binding to concanavalin A consists, predominantly, of the more acidic isoferritins. 4. These findings suggest that carbohydrate residues may be added to ferritin during its secretion into the plasma. Glycosylation may account for the heterogeneity of serum ferritin on isoelectric focusing. 5. Direct release of intracellular ferritin from damaged tissue may be indicated by an increase in the proportion of circulating ferritin which does not bind to concanavalin A. Such an increase has been found in sera from patients with iron overload.

Concanavalin A