Neural cell adhesion molecule is on embryonic muscle cells and mediates adhesion to nerve cells in vitro.
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Biomedical subjects
Publications and source records attributed to U Rutishauser.
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We have previously identified and purified a cell surface glycoprotein from retina and brain, called neural cell adhesion molecule or N-CAM, that appears to be involved in neural cell--cell adhesion, the fasciculation of neurites, and the formation of normal tissue patterns in the retina. The present studies reveal that artificial vesicles containing lipid and purified N-CAM bind to different cell types with a specificity similar to that of nerve cells. The same results were obtained with soluble N-CAM that had been briefly exposed to pH 3. In both cases the binding altered the rate of aggregation of neural cells and, like cell--cell adhesion, was inhibited by antibodies against N-CAM. The results support the proposal that N-CAM is a ligand in the formation of bonds between nerve cell membranes. Moreover, results of studies of vesicle--vesicle interactions and of N-CAM binding to cells coated with anti-(N-CAM) Fab' fragments were consistent with the idea that the N-CAM molecules on different cells may interact directly to form cell--cell bonds.
N-CAM, the neural cell adhesion molecule, has been found at a number of regions in the early (1-5 days) chicken embryo by fluorescent antibody techniques. These regions appear to be those concerned with induction of the primary developmental axis (neural plate, neural tube, notochord, somites) or those in which later inductive events occur (neural crest cells, optic, otic, and pharyngeal placodes, cardiac mesoderm, mesonephric primordium, limb buds). The staining patterns in the latter group of regions are highly dynamic and transient and are limited to the epithelial components of the placodes and to the precursors of mesonephric tubules. In neural crest cells, N-CAM appears early, disappears during migration of the cells on fibronectin, and reappears at sites where ganglia are formed. In other regions of the nervous system, particularly those related directly to the neural tube, the N-CAM molecule is stained at all stages. The results raise the possibility that adhesion mediated by N-CAM plays a primary role in early embryogenesis as well as in later histogenesis.
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Three criteria have been used to distinguish among different systems of embryonic cell adhesion: dependence on Ca2+, involvement of particular cell-surface molecules, and binding specificity. The characterization of the adhesion with respect to cell-surface molecules was carried out by using specific antibodies against the neural and liver cell adhesion molecules (N-CAM and L-CAM) and antibodies raised against retinal cells prepared by limited trypsinization in the presence of Ca2+ (called "T/Ca cells"). Aggregation of cells prepared from retina or brain without Ca2+ did not require Ca2+ and was inhibited by anti-(N-CAM) antibodies but not by anti-(L-CAM) or anti-T/Ca cell antibodies. In contrast, cells obtained from the same tissues in the presence of Ca2+ did require Ca2+ to aggregate. This aggregation was inhibited by anti-T/Ca cell antibodies but not by anti-(N-CAM) or anti-(L-CAM) antibodies. Hepatocyte aggregation also required Ca2+ and was inhibited only by anti-(L-CAM) antibodies. These results define three antigenically distinct cell adhesion systems in the embryo and raise the possibility that additional systems will be found. The neural Ca2+-independent system displayed a limited tissue specificity, mediating binding to neural but not liver cells. In contrast, the Ca2+-dependent systems of both neural and liver cells caused binding to all cell types tested. The Ca2+-dependent system was most active in retinal cells from 6-7 day embryos, whereas the Ca2+-independent system was most active at later times during development. In addition, treatments that inhibited the Ca2+-independent or Ca2+-dependent systems had very different effects on the fasciculation of neurites from dorsal root ganglia. All of the results suggest that Ca2+-independent and Ca2+-dependent adhesion systems play different functional roles during embryogenesis.
Cell-surface proteins are believed to have important roles in cell-cell interactions during brain development, particularly in such processes as cellular adhesion, neurite outgrowth and synapse formation. The chick neural cell adhesion molecule, CAM, is a cell-surface protein specific to the nervous system and has been implicated in cell adhesion among cells and neurites of the developing retina and brain. Previous studies have shown that F(ab') fragments of antibodies directed against CAM inhibit the in vitro aggregation of cells obtained from 9-day embryonic chick retina. The specific antibody fragments also reduce the diameter of neurite fascicles that grow out from cultured dorsal root ganglia, apparently by blocking side-to-side adhesion between the neurites. In addition, anti-CAM antibodies alter the appearance of histotypic patterns in retinal cell aggregates maintained in culture for several days. We now demonstrate that the antibodies can disrupt histogenesis of the developing retina in organ culture, strengthening the notion that the cell-cell adhesion properties mediated by CAM are involved in the normal development of histological layers in the chick retina.
Aggragation of chicken enbryo hepatocytes can be inhibited by Fab' fragments of antibodies prepared against the cells. An aqueous extract of liver cell membranes contained antigens that neutralized the adhesion-blocking properties of the Fab' fragments. This neutralization activity was associated with a polypeptide of Mr68,000 in NaDodSO4; the polypeptide was distinct from serum albumin. Specific antibodies prepared against the 80-fold purified active fraction inhibited liver cell adhesion and immunoprecipitated the 68,000 Mr polypeptide from active fractions as well as from a detergent extract of liver cell membranes. In hepatocyte cultures, Fab' fragments of antibodies against the liver molecule prevented both colony formation and appearance of histotypic patterns. Liver cell adhesion was compared at the cellular and molecular levels to that of embryonic neural retina cells. Antibodies against the cell adhesion molecule from neural tissue inhibited retinal but not liver cell aggregation; conversely, antibodies against the liver polypeptide inhibited liver but not retinal cell aggregation. By means of antibody absorption and immunoprecipitation, it was confirmed that the two cell adhesion molecules are antigenically unrelated.
This report describes the influence of neurite fasciculation on two aspects of nerve growth from chick spinal ganglia in vitro: the inhibition of outgrowth by high concentrations of nerve growth factor (NGF) and the preferential growth of neurites toward a capillary tube containing NGF. These studies involved a comparison of cultures of single cells, cell aggregates, and intact ganglia and the use of antibodies against the nerve cell adhesion molecule (CAM) to perturb fasciculation under a variety of conditions. The inhibition of outgrowth, which was observed with ganglia and aggregates but not with single cells, was correlated with a thickening of neurite fascicles. In accord with this observation, anti-CAM, which diminishes fasciculation by inhibiting side-to-side interactions between individual neurites, also partially reversed the inhibition of neurite outgrowth at high NGF concentrations. On the basis of these and other studies, we consider the possibility that neurite bundling causes an increase in the elastic tension of a fascicle without a compensatory increase in its adhesion to substratum. It is proposed that this imbalance could inhibit neurites from growing out from a ganglion and even result in retraction of preexisting outgrowth. In the analysis of NGF-directed growth, it was found that a capillary source of NGF produced a steep but transient NGF gradient that subsided before most neurites had emerged from the ganglion. Nevertheless, the presence of a single NGF capillary caused a dramatic and persistent asymmetry in the outgrowth of neurites from ganglia or cell aggregates. In contrast, processes of individual cells did not appear to orient themselves toward the capillary. The most revealing finding was that anti-CAM antibodies caused a decrease in the asymmetry of neurite outgrowth. These results suggest that side-to-side interactions among neurites can influence the guidance of nerve bundles by sustaining and amplifying an initial directional signal.
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We have previously identified a molecule (named cell adhesion molecule [CAM]) that is involved in the in vitro aggregation of neural cells from chick embryos. In the present report, specific anti-CAM antibodies have been used to demonstrated that CAM is localized in neural tissues, and is associated with the plasma membrane of retinal cells and neurites. Furthermore, it has been shown by antibody absorption techniques that the decreased adhesiveness of cultured retinal cells obtained originally from older embryos is correlated with a decrease in the density or accessibility of cell adhesion molecules on the surface of these cells. The central role of CAM in neural cell aggregation has been established by the observation that anti-CAM Fab' fragments inhibit adhesion between neural cells in a variety of assays. To investigate the function of CAM and cell adhesion in developing tissues, aggregates of retinal cells that are capable of forming histotypic patterns in vitro were cultured in the presence and absence of anti-CAM Fab'. The Fab' was found to inhibit sorting out of cell bodies and neurites and to decrease the number of membrane-membrane contacts, suggesting that CAM is associated with cell-cell, cell-neurite, and neurite-neurite interactions.
The cell adhesion molecule (CAM) is involved in adhesion among embryonic retinal and brain cells and has been detected in a variety of neural tissues. This paper describes the use of spinal ganglion cultures and specific anti-CAM antibodies to determine the distribution of CAM on plasma membranes of nerve processes, and to assess the results of perturbation of its function during the growth of neurites from ganglia. The results indicate that CAM is distributed over the entire surface of nerve processes, and that specific anti-CAM Fab' fragments alter the morphology of neurite outgrowth. In particular, it was observed that anti-CAM inhibits formation of nerve bundles, so that the ganglion becomes surrounded by a tangled net of fine processes. Growth cone functions, such as neurite elongation, motility, and attachment to the substratum, did not appear to be affected by the antibody. These studies suggest that one of the major functions of CAM is to mediate side-to-side adhesion between neurites to form fascicles, and raise the possibility that this molecule serves a key role in embryogenesis of nerve tissues.
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An immunologically based method for the quantitative assay of molecules involved in cell adhesion is described. Three observations served as a basis for this assay: (a) cells obtained by trypsinization of retinal tissue aggregated rapidly, provided they had been allowed to recover in culture from the dissociation process; (b) treatment of chick retinal cells with Fab' fragments from rabbit antibodies against these cells prevented their aggregation; and (c) incubation of these antibody fragments with antigens released by retinal cells in culture neutralized their ability to inhibit aggregation. The amount of neutralizing antigen was determined by measuring the rates of cell aggregation in the presence and absence of antibody and antigen using a particle counter. Although adhesion was inhibited by anti-retinal cell antibodies, it was not affected by lectins or anti-carbohydrate antibodies that also were bound to the cell surface. Together, the results suggest that the inhibition involved blockade or inactivation of particular cell surface molecules and that the retinal cell antigens capable of neutralizing the antibodies represented these molecules or their fragments. In the accompanying paper, we describe the use of this assay for the purification from culture supernatants of a cell surface molecule involved in cell to cell adhesion.
The aggregation of cells from dissociated neural retinas of chick embryos can be inhibited by antibodies prepared against whole retinal cells. In order to identify the antigens involved, substances released by retinal tissues in culture were tested for their ability to neutralize specifically the inhibition by antibody of cell adhesion. Using this assay, three active polypeptides from the culture supernatant were purified 500-fold by gel filtration and polyacrylamide gel electrophoresis. Rabbit antibodies prepared against these purified supernatant activities inhibited cell adhesion and reacted only with the three polypeptides. Immunoprecipitation by the specific antibodies of 3H-labeled proteins from a detergent extract of embryonic retinal cell membranes yielded a polypeptide having a Mr of 140,000 in sodium dodecyl sulfate. This precipitation was inhibited in the presence of the three culture supernatant polypeptides that had activity, suggesting that they contained antigenic determinants in common with the 140,000 Mr surface component. They therefore represent all or parts of this cell surface molecule that were released into solution during tissue culture. The data are consistent with the hypothesis that the 140,000 Mr polypeptide is intimately involved in initial adhesion among neural cells.
In order to test the anchorage modulation hypothesis, the fluorescence photobleaching recovery method was used to measure the global inhibition of cell surface receptor mobility induced in 3T3 mouse fibroblasts by local binding of platelets labeled with concanavalin A (Con A). By measuring the diffusion of antibody-labeled cell surface receptors at various points on the cell surface, two states, immobile and mobile, were distinguished in the receptor population. Bound Con A-platelets, occupying between 4% and 30% of the cell surface, decreased the diffusion coefficient of the mobile population by a factor of 6. The magnitude of this effect was independent of distance from the sites of the bound Con A-platelets, demonstrating the propagated and nonlocal properties of the modulation effect. The immobile fraction of the population was not changed by Con A-platelet binding. Modulation of the diffusion constant of mobile receptors was partially reversed by treatment with microtubule-disrupting agents such as Colcemid and Vinca alkaloids. High doses of soluble Con A induced even higher levels of modulation than Con A-platelets, but reversal by microtubule-disrupting drugs was observed. These experiments provide additional support for the anchorage modulation hypothesis and provide a measure of the nature and degree of mobility at the molecular level. They also put important constraints on the hypothesized interactions among submembranous components (microtubules and microfilaments) of surface modulating assemblies.
Cell-cell binding of both retinal and brain cells of the chick embryo varied as a function of developmental age, brain cells acquiring their binding properties at an earlier time than retinal cells. Brain and retinal cells of the appropriate age bound as well to each other as to themselves. Antibodies prepared against a molecule released by retinal cells in culture were able to inhibit cell-cell binding between homologous and heterologous pairs of retinal and brain cells. These results suggest that the molecular mechanism of cell-cell binding is the same in these 2 tissues. Analysis of cell surface proteins precipitated by these antibodies suggest that one of the molecules involved in adhesion has a molecular weight of 150,000, and may be derived from a larger precursor. The possible mechanisms of cell-cell binding are discussed in terms of the properties of this molecule.
In order to analyze the molecular mechanisms of cell adhesion during development, proteins on the surface of chick embryonic neural cells were compared with proteins released after placing these cells in culture. One of the components released into culture, F1 (molecular weight, Mr 140,000), was derived by proteolytic cleavage of a cell surface precursor with a molecular weight of at least 240,000. Another protein, F2, recovered from culture as a dimer (Mr 1110,000), appeared to be a product of limited proteolytic cleavage of F1. Cells in retinal tissue possessed a surface protein of Mr 150,000 that also appeared to be derived by limited proteolytic cleavage of the cell surface precursor. Antibodies to F2 interacted with determinants on the cell surface protein of Mr 150,000, and specifically prevented homologous and heterologous binding among dissociated retinal and brain cells. In contrast, antibodies to F1 failed to prevent cell-cell adhesion and did not crossreact with F2. These data suggest that the cell surface protein of Mr 150,000 generated by limited proteolysis is involved in adhesion of both retinal and brain cells. Cell-cell binding of both retinal and brain cells varied as a function of developmental age and brain cells acquired their binding properties at an earlier time than retinal cells. Similar results were obtained in experiments on the binding of retinal and brain cells of different ages to nylon fibres coated with antibodies to F2. The results of the molecular and cellular experiments are incorporated in a model for cell adhesion invoking both proteolytic activation and modulation of cell surface ligands.
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