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B Obrink

Publications and source records attributed to B Obrink.

At least 55 records · Page 3Linked to original sources

Immunohistochemical localization of cellCAM 105 in rat tissues: appearance in epithelia, platelets, and granulocytes.

CellCAM 105 is an integral membrane glycoprotein, with apparent Mr 105,000, which has been purified from rat liver plasma membranes. It consists of two structurally similar, highly glycosylated polypeptide chains and is involved in cell-cell adhesion of adult rat hepatocytes in vitro. In this communication we report on the distribution and cell surface location of cellCAM 105 in rat tissues, obtained by using highly sensitive immunodetection systems based on complex formation between biotinylated antibodies, biotinylated peroxidase and avidin, or on antibodies coupled to alkaline phosphatase. CellCAM was found in many organs and organ systems, including liver, kidney, blood, blood vessels, glands, respiratory system, and gastrointestinal tract. It was mainly localized to epithelial structures but showed a varying cell surface distribution. In some cell types it was predominantly localized to cell-cell contact areas. In other cell types the highest concentrations were seen in brush-border areas containing densely packed microvilli. In addition to epithelial structures, cellCAM 105 was found in rat platelets, where it became strongly expressed on the cell surfaces after activation with ADP or collagen, suggesting that it might be involved in platelet adhesion and/or aggregation mechanisms. Granulocytes also contained cellCAM 105. By SDS-PAGE/immunoblotting, significant differences were found in the apparent Mr values of cellCAM 105 in different tissues. The collected data suggest that cellCAM 105 participates in several different cell surface membrane interactions, of which the common denominator might be membrane-membrane binding.

Adenosine Triphosphatases↗

Quantitative determination of the organ distribution of the cell adhesion molecule cell-CAM 105 by radioimmunoassay.

We have previously identified a 105,000-Da plasma membrane glycoprotein, denoted cell-CAM 105, that is involved in intercellular adhesion of reaggregating rat hepatocytes. In this communication we report on the development of a radioimmunoassay for cell-CAM 105, employing purified cell-CAM 105, specific antisera against the molecule, and formalin-fixed protein A-containing staphylococci for precipitation of the immune complexes. The assay was shown to be sensitive, specific, precise, rapid, and easy to perform. We used this radioimmunoassay in investigations of the occurrence of cell-CAM 105 in different rat organs. Cell-CAM 105 was present in a wide spectrum of organs in varying amounts. The highest concentrations were found in the gastrointestinal tract, liver, some secretory glands, vagina, kidney, and lung. In addition, cell-CAM 105 was detected in blood, where it was shown to reside mainly in the platelets. Other tissues, particularly the central nervous system and muscle tissues, were cell-CAM-negative. The results were confirmed by immunoblotting, which revealed one distinct protein component, corresponding to cell-CAM 105, in each positive organ.

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Trophectoderm surface expression of the cell adhesion molecule cell-CAM 105 on rat blastocysts.

A variety of cellular interactions is involved in the process of implantation of the mammalian embryo into the uterine tissue. Recent discoveries have demonstrated that intercellular recognition and adhesive events are governed by a class of cell surface molecules known as cell adhesion molecules (CAMs). In the present report, we have investigated the occurrence of the well-characterized cell adhesion molecule cell-CAM 105 on the surface of rat pre- and peri-implantation embryos of various stages. This was carried out by indirect immunofluorescence microscopy employing affinity-purified rabbit antibodies against cell-CAM 105. The embryonal stages investigated comprised morulae, normal day-4 blastocysts, and delayed and adhesive blastocysts obtained by using the method of experimentally delayed implantation. Cell-CAM 105 was absent in the early-morula stage, but in normal day-4 blastocysts and delayed blastocysts a specific staining for cell-CAM 105 was seen on the entire surface. However, adhesive-stage blastocysts exhibited a marked polarity with staining of the polar trophoblast cells. Scanning electron microscopy of adhesive-stage blastocysts revealed that the stronger staining of the polar region was not due to a greater number of microvilli on the polar trophoblast cells. Thus, it seems as if cell-CAM 105 is lost or masked from the surface of the mural trophoblast cells of adhesive-stage rat blastocysts. Since the mural trophoblast cells are the first to adhere to the uterine luminal epithelium during the onset of implantation and subsequently invade the uterine stroma, we suggest that the apparent downregulation of cell-CAM 105 in the mural trophoblast cells might be linked to the acquisition of trophoblast invasiveness.

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Chemical characterization of cell-CAM 105, a cell-adhesion molecule isolated from rat liver membranes.

Cell-CAM 105, a glycoprotein that is involved in recognition and adhesion between isolated rat hepatocytes in vitro, was purified to homogeneity by a combination of immunoaffinity chromatography, gel-exclusion chromatography and ion-exchange chromatography. Electrophoretic, compositional and enzymic analyses were performed and the glycoprotein was shown to consist of two peptide chains, of apparent Mr 110,000 and 105,000 respectively, that are glycosylated to similar extents. Carbohydrate analyses demonstrated the presence of sialic acid, galactose, mannose, fucose and glucosamine, but no galactosamine, indicating that only N-linked oligosaccharides occurred. The total content of carbohydrate amounted to 33%. Peptide mapping indicated that the two peptide chains were structurally very similar. After incubation of cultured hepatocytes with [32P]Pi, phosphorylated cell-CAM 105 could be isolated. Both peptide chains were labelled and phospho-amino-acid analysis demonstrated that serine residues had become phosphorylated. A significant feature of cell-CAM 105 was a susceptibility to autolytic degradation that was difficult to inhibit. The major degradation products had apparent Mr 90,000 and 70,000, respectively. The effect of purified cell-CAM 105 on cell-cell adhesion of re-aggregating hepatocytes was studied. A significant inhibition was observed, indicating that the protein is directly involved in intercellular adhesion of these cells.

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Dynamic expression of the cell adhesion molecule cell-CAM 105 in fetal and regenerating rat liver.

Cell-CAM 105 is an integral cell surface glycoprotein that is involved in cell-cell adhesion of adult rat hepatocytes in vitro. In the present report we used a radio-immunoassay, a quantitative immunoblotting technique and immunofluorescence microscopy to investigate the expression of cell-CAM 105 in fetal and regenerating rat liver. In the fetal liver cell-CAM 105 did not appear until day 16 of the gestation, when it increased rapidly to reach the level found in adult liver, 3 weeks after birth. In liver regenerating after partial hepatectomy a transient decrease in the amount of cell-CAM 105 was observed in the plasma membranes of the hepatocytes. A significant decrease was observed as early as 12 h after partial hepatectomy, reaching a minimum by 3 days after the operation, corresponding to approx. 35% of the amount of cell-CAM 105 in normal liver. The amount then increased slowly and was back to the normal level by about 15 days after partial hepatectomy. The results indicate that cell-CAM 105 exerts its major function in terminally differentiated cells. An excellent correlation was seen between the kinetics of the expression of cell-CAM 105 and of reported changes of both enzymatic and organizational patterns of hepatocytes in regenerating and fetal liver. This suggests that cell-CAM 105 could be important for the development and maintenance of the cell-cell binding and organizational pattern characteristic of terminally differentiated hepatocytes.

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Hepatocyte adhesion to collagen. Isolation of membrane glycoproteins involved in adhesion to collagen.

Adhesion of hepatocytes to collagenous substrates and their spreading have been shown to involve a specific recognition event, possibly mediated by membrane proteins with affinity for collagen. In the present communication, we describe the isolation of membrane components that are involved in the adhesion of rat hepatocytes to collagen. These components could be solubilized from liver microsomal membranes by treatment with detergents or papain--but not by treatment with EDTA, urea or high salt. The purification of detergent-solubilized components was monitored by an assay determining the ability of membrane components to neutralize antibody-mediated inhibition of hepatocyte adhesion to collagen. By affinity chromatography on lentil lectin-Sepharose it was found that the neutralizing activity resided within the glycoprotein fraction. These glycoproteins were purified further by affinity-chromatography on collagen type I linked to Sepharose. Antibodies raised against the glycoproteins with affinity for immobilized collagen, effectively inhibited hepatocyte adhesion to collagen. The bulk of the neutralizing activity migrated with an apparent molecular weight of 120 000-140 000 in preparative SDS-PAGE.

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Epithelial cell adhesion molecules.

Recognition and binding between cells are of fundamental importance for a proper function of multicellular organisms, both during embryonic development and in the adult stage. Recently several cell surface proteins that are involved in these phenomena have been discovered. In the identification of these proteins, called cell adhesion molecules (CAMs), immunological methods have played a significant role. In a different approach to studies of cell-cell binding at the molecular level, the chemical composition of intercellular junctions is being studied. Intercellular junctions are specialized cell surface domains that have been identified by electron microscopy. They are particularly well developed in epithelia. Several proteins in the junctions have now been identified and characterized. This review deals with the biochemical properties of epithelial CAMs, and those proteins that are candidates for cell-to-cell binding in the junctions. In particular, the relationships between the various CAMs and junctional proteins are discussed. The tentative biological functions of these molecules are also considered.

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Comparison of two cell-adhesion molecules, uvomorulin and cell-CAM 105.

Two cell adhesion molecules, cell-CAM 105 and uvomorulin (UM), were compared by analysing their antigenic structures, their activity in cell aggregation assays and their expression in various tissues. Cell-CAM 105 is a membrane glycoprotein which mediates the intercellular adhesion of reaggregating rat hepatocytes, and UM was first described to be involved in the compaction of preimplantation mouse embryos and embryonal carcinoma cells. UM is not only expressed during embryonic development but also in various adult tissues including liver, epithelia of lung, gut, kidney and uterus. A similar distribution for UM was found in rat tissues on cell types where cell-CAM 105 is known to be present. Our studies show that (i) cell-CAM 105 and UM are distinct and different proteins; (ii) uvomorulin is involved in the compaction of rat preimplantation embryos but Fab anti-UM has no effect on reaggregating rat hepatocytes, where Fab anti-cell CAM is effective; (iii) distribution studies show that UM is expressed on a broader range of epithelial cells while cell-CAM 105 is more restricted to hepatocytes and simple epithelia. In cases where both cell adhesion molecules are expressed on the same cell types they can be localized to different parts of the cell surface.

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Alterations in the expression of a hepatocyte cell adhesion molecule by transplantable rat hepatocellular carcinomas.

Alterations in the expression of normal cell surface components on 13 transplantable hepatocellular carcinomas were examined using a heteroantiserum [anti-Mr 105,000 glycoprotein (gp 105)] reactive with a family of nine wheat germ agglutinin binding components from normal rat hepatocytes with an average molecular weight of 105,000. Analysis by two-dimensional polyacrylamide gel electrophoresis of components immunoprecipitated by anti-gp105 antiserum from detergent extracts of transplantable hepatocellular carcinoma cells surface labeled with 125I revealed qualitative and quantitative changes in the expression of anti-gp105-reactive components with the most consistent change being the apparent loss of a pair of acidic (pl 4.1 to 4.3) glycoproteins by all 13 transplantable hepatocellular carcinoma lines. One-dimensional peptide maps of fragments produced following digestion with V8 protease indicated that these acidic components were closely related in structure but differed significantly from other anti-gp105-reactive components. Immunodepletion analysis with monoclonal antibodies and heteroantisera reactive with individual components recognized by anti-gp105 antiserum showed that the two acidic glycoproteins were antigenically and structurally identical to cell-CAM 105, a Mr 105,000 glycoprotein involved in cell-cell adhesion of rat hepatocytes. Antibodies raised against purified cell-CAM 105 were specific in immunoprecipitation assays for the acidic components, strongly inhibited reaggregation of hepatocytes, and displayed no reactivity by indirect immunofluorescence or immunoprecipitation analysis with transplantable hepatocellular carcinoma cells. These results suggest that major alterations in the expression of cell-CAM 105 may be a consistent feature of the malignant phenotype.

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Interactions of mammalian cells with collagen.

Isolated stationary cells recognize and adhere to immobilized extracellular matrix (ECM) components. These processes are mediated by specific receptor-ligand types of interaction. The formation of cell-ECM contacts influences subsequent cellular behaviour, such as the promotion of cell survival, epithelial cell polarization, and cell differentiation. The binding reaction between cells and collagen is discussed in this paper in terms of findings from studies with two cell systems, adult rat hepatocytes and rat cardiac myocytes. Isolated adult rat hepatocytes adhere to or bind laminin, fibronectin, heparan sulphate and collagen. We have characterized the interaction of hepatocytes with collagen and have isolated a glycoprotein fraction from rat liver membranes that contains collagen-binding components. The ability of rat cardiac myocytes to recognize ECM components depends on the state of cell maturation. Myocytes isolated from neonatal rats adhere to the interstitial collagens (types I-III), to collagen types IV and V, to fibronectin and to laminin. In contrast, myocytes isolated from adult rats bind effectively only to collagen type IV and laminin and bind much less effectively to fibronectin. Furthermore, antibodies raised against neonatal myocyte membranes inhibit the adhesion of both neonatal myocytes and hepatocytes to interstitial collagens, but antibodies raised against adult myocyte membranes lack these effects. These observations indicate that similar collagen-binding molecules are present on such diverse cells as hepatocytes and neonatal myocytes and that these components might be lost during cell maturation.

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Recognition of extracellular matrix components by neonatal and adult cardiac myocytes.

Recognition of extracellular matrix (ECM) components by isolated cardiac myocytes from neonatal (4-5 days postpartum) and adult rats was determined by measuring cell attachment to substrates made of ECM components. The substrates were petri dishes coated with either fibronectin, laminin, native monomers of collagen types I, II, III, IV, and V, denatured collagen, or gels containing reconstituted collagen fibers. Adult myocytes attached efficiently to laminin and type IV collagen, weakly to fibronectin, but not at all to the other types of collagen. Neonatal myocytes attached well to all types of collagen and to fibronectin and laminin. Antibodies raised against surface membranes of neonatal myocytes, adult myocytes, or adult hepatocytes were assayed for their ability to inhibit cell attachment to the various ECM substrates. Antibodies against the surface of neonatal myocytes as well as antibodies against the hepatocyte cell surface inhibited the attachment of neonatal myocytes and hepatocytes to collagen but not to fibronectin. Antibodies against the adult myocyte cell surface did not inhibit the attachment of neonatal myocytes or hepatocytes to ECM components. These results indicate the presence of binding molecules on the surface of neonatal myocytes that are involved in the recognition of collagen at a time when collagen is being secreted and formed into a three-dimensional network that attaches to the cell surface of the myocytes. This recognition and adhesion to collagen occurs by a mechanism independent of fibronectin. The binding molecules for collagen could not be detected on normal adult myocytes isolated at a time when the formation of the collagen network has already been completed.

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Two different cell adhesion molecules--cell-CAM 105 and a calcium-dependent protein--occur on the surface of rat hepatocytes.

We have recently identified a 105000 D plasma membrane glycoprotein, denoted cell-CAM 105 (CAM, cell adhesion molecule), that is involved in intercellular adhesion of reaggregating rat hepatocytes (Ocklind & Obrink, J biol chem 257 (1982) 6788 [11]). In this communication we identify another cell surface protein that is also involved in hepatocyte cell-cell adhesion. This protein has an apparent molecular weight (MW) of 70000 and can be released from the surface membrane by chelation of calcium with EGTA. Results are presented indicating that it is identical with a previously discovered protein, CDP-1 (CDP, calcium-dependent protein) (Obrink, Lindström & Svennung, FEBS lett 70 (1976) 28 [28]). Antisera produced against either cell-CAM 105 or CDP-1 inhibit hepatocyte aggregation, but not attachment to collagen. Cell-CAM 105 and CDP-1 are present on the cell surface as separate components, as judged by the fact that both EGTA treatment and trypsin treatment of hepatocytes selectively make the cells insensitive to blocking of aggregation by antibodies against CDP-1 but not by antibodies against cell-CAM 105. However, although much less efficiently, the antibodies against CDP-1 can recognize a 105000 D protein which is also bound by the antibodies against cell-CAM 105, and under certain conditions the antibodies against cell-CAM 105 seem to recognize a 70000 D protein. CDP-1 may thus be derived from cell-CAM 105, or the two proteins might have a common precursor.

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Ligand-dependent regulation of intracellular protein transport: effect of vitamin a on the secretion of the retinol-binding protein.

As a model of ligand-dependent protein secretion the biosynthesis, intracellular transport, and release of the retinol-binding protein (RBP) were studied in primary cultures of rat hepatocytes pulse-labeled with [35S]methionine. After various periods of chase RBP was isolated by immunoprecipitation and identified by SDS PAGE. Both normal and vitamin A-deficient hepatocytes synthesized RBP. The normal cells secreted the pulse-labeled RBP within 2 h. RBP synthesized by deficient cells was not secreted, and intracellular degradation of the protein appeared to be slow. Deficient cells could be induced to secrete RBP on the addition of retinol to the culture medium. This occurred also after protein synthesis had been blocked by cycloheximide. Since retinol induces the secretion of RBP, accumulated in the endoplasmic reticulum (ER), it seems reasonable to conclude that the transport of RBP from the ER to the Golgi complex is regulated by retinol.

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Cell surface localization and tissue distribution of a hepatocyte cell-cell adhesion glycoprotein (cell-CAM 105).

We recently identified a 105,000-dalton plasma membrane glycoprotein, denoted cell-CAM 105 (CAM, cell adhesion molecule), that is involved in intercellular adhesion of reaggregating rat hepatocytes (Ocklind, C., and B. Obrink, 1982, J. Biol. Chem., 257:6788-6795). In this communication we used a monospecific rabbit antiserum against cell-CAM 105 to localize the antigen by indirect immunofluorescence on isolated rat cells and on frozen rat tissue sections. This antiserum stained the surface of freshly isolated hepatocytes. In liver sections, however, the fluorescence seemed to be located exclusively along the bile canaliculi. In addition, cell-CAM 105 showed a very specific tissue distribution. Thus a specific fluorescence was seen only in the epithelia of the stomach, the small intestine, the large intestine, the glandular epithelium of the parotid gland, and the tubules of the kidney. No specific fluorescence was found in variety of other tissues, including cartilage, interstitial connective tissue, smooth muscle, skeletal muscle, heart muscle, eye, brain, skin, the epithelia of oesophagus, bladder, uterin mucosa, thyroid follicles, prostate gland, or collecting ducts of the kidney. In the simple epithelia of the intestine and the kidney tubules the fluorescence was confined to the apical, luminal portion. Thus, both in these epithelia and in liver, cell-CAM 105 was confined to the apical, luminal portion. Thus, both in these epithelia and in liver, cell-CAM 105 was located where the typical junctional complexes between cells are found. These findings taken together with the fact that cell-CAM 105 is involved in intercellular adhesion between hepatocytes suggest with the fac that cell-CAM 105 is involved in intercellular adhesion between hepatocytes suggest that cell-CAM 105 is a member of the junctional complexes of hepatocytes and some simple epithelia.

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Cell-cell recognition: relation to cell adhesion with special reference to adhesion of hepatocytes.

Cell recognition is defined as an active process giving rise to a specific response. Cell adhesion is a good example of cell recognition when it can be demonstrated that the adhesion is mediated by molecules having specific binding properties. Such cell adhesion molecules have now been identified in several cellular systems. We have demonstrated that cell-cell adhesion between rat hepatocytes involves a 105,000 dalton cell surface glycoprotein (cell-CAM 105) and that other high molecular weight glycoproteins participate in the attachment of these cells to collagen. Using immunofluorescence we found cell-CAM 105 in the liver, the simple epithelia of the gastrointestinal tract, the kidney tubules and in the glandular epithelium of the parotid gland. In these tissues it was specifically located at the places of the junctional complexes. We have thus demonstrated that adhesion of adult rat hepatocytes is characterized by specificity both at the molecular and the cellular levels. However, the specificity at the cellular level was not complete, since the same cell-cell adhesion molecule was also present in some simple epithelia in addition to the liver.

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Intercellular adhesion of rat hepatocytes. Identification of a cell surface glycoprotein involved in the initial adhesion process.

A cell surface molecule involved in intercellular adhesion between rat hepatocytes in vitro has been identified. Papain-solubilized plasma membrane components were fractionated; the ability of the solubilized components to neutralize the inhibition of cell aggregation, caused by multispecific antibodies directed against the cell surface, was used to follow the purification. The purified components were used to immunize rabbits. The resulting antibodies effectively inhibited hepatocyte aggregation, and this inhibitory effect could be neutralized by detergent-solubilized plasma membrane components having an apparent molecular weight of 105,000 in polyacrylamide gel electrophoresis. Also by immunoprecipitation, immunoblotting, and immunosorbent techniques it was demonstrated that the antibodies specifically reacted with a plasma membrane component having an apparent molecular weight of 105,000. This component was susceptible to digestion with papain and showed specific binding to the carbohydrate-binding lectin Lens culinaris hemagglutinin. It was thus concluded that a glycoprotein with a mass of about 105,000 daltons is involved in rat hepatocyte intercellular adhesion.

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