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S Hoffman

Publications and source records attributed to S Hoffman.

At least 163 records · Page 9Linked to original sources

The mechanism of binding of neural cell adhesion molecules.

The experimental results reviewed in this paper strongly suggest that the molecular mechanism of N-CAM-mediated cell adhesion involves the direct interaction of N-CAM molecules on one cell with N-CAM molecules on a second cell. The rate of this aggregation has a high-order dependence on the local N-CAM concentration, and is inversely related to the sialic acid content of the N-CAM molecules involved. In accordance with their relative sialic acid concentrations, the relative rates of aggregation mediated by E and A forms of N-CAM are A-A greater than A-E greater than E-E. Further removal of sialic acid from N-CAM below the level found in the A form gives little further enhancement of aggregation. These results provide one basis upon which to interpret the modulation hypothesis (Edelman, 1983) for control of N-CAM function, i.e. the adhesive strength of N-CAM bonds in an in vitro system can be altered in a graded manner over a wide range by variations in the local surface density of N-CAM or by chemical modification of N-CAM (differential sialylation). It is important to stress that these results do not preclude the possibility of other forms of modulation of N-CAM function or the function of other molecules in cell-cell interactions. It will be much more difficult to assess the role of N-CAM and the modulation of its function on pattern formation in vivo. It is pertinent to mention, however, that recent experiments on transformed neural cells (Greenberg et al., 1984) show loss of N-CAM following transformation with accompanying loss of aggregation and increased motility of the transformed cells. Aside from the possible implications for metastasis (transformation has for the first time been shown to affect a defined CAM and alter cellular sociology), these findings are consonant with the notion that alteration of surface N-CAM affects expression of other cellular processes. Clearly additional experiments are required to define the mechanisms by which this occurs. In addition to mapping the prevalence and form of N-CAM during embryonic development, it will be necessary to pruturb both its functions and the modulation of its function using reagents that will discriminate among various forms of the molecule in the embryo itself. These problems will require elegant solutions but must be solved if completely satisfactory answers to questions about the role of N-CAM in vivo are to be obtained.

Animals↗

Malignant transformation in a plexiform neurofibroma of the median nerve.

A malignant schwannoma of the median nerve occurred in a 27-year-old woman with multiple neurofibromatosis (von Recklinghausen's disease). A growth had been present at the left wrist since birth and was partially excised at the age of 10 years. The patient refused an amputation and radical local excision did not control this highly malignant tumor.

Adult↗

Two antigenically related neuronal cell adhesion molecules of different specificities mediate neuron-neuron and neuron-glia adhesion.

Previous studies in this laboratory have led to the identification of the neural cell adhesion molecule, N-CAM, a homophilic ligand that mediates adhesion between neurons as well as between neurons and striated muscle precursors. By means of a similar immunological approach but with different assays, we have now identified a cell adhesion molecule on neurons (Ng-CAM) that mediates the heterotypic adhesion between neuronal membranes and glial cells. In this paper, we compare certain aspects of the structure and function of Ng-CAM and embryonic N-CAM from the chicken. Ng-CAM was localized by specific antibodies on neurons but not on glia, and double-staining methods showed that individual neurons contained both Ng-CAM and N-CAM. Embryonic Ng-CAM migrates primarily as a single component of Mr 135,000; its apparent Mr shifted to 127,000 after neuraminidase treatment. In contrast, the embryonic form of N-CAM migrates on NaDodSO4/polyacrylamide gels in the apparent Mr range of 200,000-250,000; after neuraminidase treatment, N-CAM migrates as two components of Mr 170,000 and Mr 140,000. Although both Ng-CAM and N-CAM have calcium-independent binding mechanisms, immunologically based cell adhesion assays suggested that they have different specificities in mediating cell adhesion. Whereas 0.25 micrograms of Ng-CAM partially neutralized the ability of 0.5 mg of polyspecific antineural Fab' fragments to inhibit the heterotypic binding of neuronal membrane vesicles to glial cells and larger amounts of Ng-CAM completely neutralized this inhibition, 20 micrograms of N-CAM had no neutralization activity in this assay. Reciprocally, 0.25 micrograms of N-CAM partially neutralized the ability of 0.5 mg of the same Fab' fragments to inhibit the direct homotypic aggregation of neuronal cells, but 20 micrograms of Ng-CAM had no detectable activity. Although peptide maps of the two cell adhesion molecules differed considerably and despite the differences in binding specificity of these molecules, two independently derived monoclonal antibodies were found to crossreact with both Ng-CAM and N-CAM. Therefore, these different neuronal cell adhesion molecules with distinct binding specificities share at least one antigenic determinant, raising the possibility that they arose from a common evolutionary precursor.

Animals↗

Evolutionary conservation of key structures and binding functions of neural cell adhesion molecules.

The neural cell adhesion molecule N-CAM is a sialic acid-rich, cell surface glycoprotein that mediates cell adhesion by a homophilic mechanism. Its binding function has been implicated in both morphogenesis and histogenesis; during development it changes in amount at the cell surface and perinatally it undergoes a decrease in sialic acid content (embryonic--adult conversion) with an increase in binding efficacy. In the present study, salient aspects of the structure and the mutual binding specificities of N-CAMs from a variety of vertebrate species were examined to determine whether (N-CAM)-mediated adhesion mechanisms have been conserved during evolution. N-CAM immunoreactivity was detected in a series of polypeptides of characteristic molecular weight extracted from brain tissues of all vertebrate species tested, including mammals, birds, reptiles, amphibia, and bony and cartilaginous fish. Adhesion mediated by N-CAM occurred across species lines as indicated by the co-aggregation of chicken and mouse neural cells. By using a quantitative membrane vesicle aggregation assay, the efficacy of cross-species brain membrane vesicle adhesion in various pairings (chicken-mouse, chicken-frog, mouse-frog) was found to be similar to the efficacy of intra-species adhesion. Effective cross-species aggregation of brain membrane vesicles also occurred in embryonic-embryonic, adult-adult, and embryonic-adult pairings. In a control experiment, embryonic chicken liver membrane vesicles (which do not contain N-CAM) did not co-aggregate with embryonic chicken brain membrane vesicles. Cross-species co-aggregation could be inhibited by Fab' fragments of antibodies of N-CAM and was most effectively inhibited in the presence of mixtures made from the Fab' fragments of specific antibodies prepared against the N-CAMs from each of the animal species constituting a co-aggregating pair. These results suggest that, in accord with the proposed role of N-CAM as a regulator of morphogenesis, both the specificity of the binding region of the molecule and its basic chemical structure have been highly conserved during evolution.

Animals↗

Polypeptide components and binding functions of neuron-glia cell adhesion molecules.

Neuron-glia cell adhesion molecule (Ng-CAM) has previously been shown to be present exclusively on neurons and to mediate adhesion between neuronal membranes and glial cells. In the present study, its chain structure, binding functions, and relation to N-CAM (the other known CAM on neurons) were investigated further. Three polypeptide components of chicken Ng-CAM (Mr 200,000, 135,000, and 80,000) have been isolated. By using specific antisera against each component, the Mr 135,000 and Mr 80,000 components were found to cross-react antigenically with the Mr 200,000 component but not with each other. The conclusion that the Mr 135,000 and 80,000 components are structurally related to different regions of the Mr 200,000 component was further supported by the finding that 32P could be incorporated in vitro into the Mr 200,000 and 80,000 components but not into the Mr 135,000 component. Ng-CAM appears to be involved in both neuron-glia adhesion and neuron-neuron adhesion by distinguishable mechanisms that appear to involve different sites or conformations of the molecule. Polyclonal antibodies and a monoclonal antibody against Ng-CAM both inhibited adhesion between glia and neurons derived from brain, cerebellum, and retina. In contrast, antibodies against N-CAM (which inhibit neuron-neuron adhesion) did not inhibit neuron-glia adhesion. These findings confirm the proposed function of Ng-CAM in neuron-glia adhesion. In addition, however, Ng-CAM was found to be involved directly or indirectly in neuron-neuron adhesion. Non-cross-reactive polyclonal anti-Ng-CAM and anti-N-CAM antibodies each inhibited the aggregation of neurons from whole brain and cerebellum and the inhibition was greater when both antibodies were present together. In contrast, monoclonal anti-Ng-CAM antibodies were found that inhibited neuron-glia adhesion but did not inhibit neuronal cell aggregation. The amount of Ng-CAM expressed on neurons was not directly predictive of the effect of anti-Ng-CAM antibodies on their homotypic aggregation. Although Ng-CAM and N-CAM can be expressed simultaneously on individual neurons, the ratio of N-CAM to Ng-CAM ranged from 1.5 for cerebellar cells to 10.0 for retinal cells. While, as expected, retinal cell aggregation was inhibitable only by anti-N-CAM, cerebellar cells, which expressed at least as much Ng-CAM as brain cells, showed significantly less inhibition by anti-Ng-CAM antibodies. These findings raise the possibility that Ng-CAM may actually interact with N-CAM to yield non-linear effects. That Ng-CAM and N-CAM may function differently in vivo was suggested by their distribution in sections of brain regions. Within the cerebellum, for example, immunofluorescent anti-N-CAM staining was relatively uniform in all layers; in contrast anti-Ng-CAM staining was absent on dividing external granule cells and was present in greatest abundance on processes of post-mitotic migratory cells in the molecular layer. These observations are consistent with the hypothesis that Ng-CAM mediates neuron-glia adhesion and is thereby also involved in neuronal migration along radial glial cells.

Animals↗

Symmastia.

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Breast↗

Effects of vitamin A deficiency on rat incisor formation.

Vitamin A deficiency (A-) is known to cause morphologic changes in tooth structures. However, its effects on glycosaminoglycan (GAG) distribution in dental pulp, and the role of retinoic acid (RA) in altering these effects are not clearly defined. Tissue changes induced by vitamin A deficiency and RA administration were evaluated histologically in incisors of rats fed on one of 3 different diets: a) vitamin A sufficient (A+); b) vitamin A deficient (A-); and c) vitamin A deficient supplemented with retinoic acid (A-/RA). Four weeks after the onset of vitamin A deficiency, all rats were killed and their 4 continuously erupting incisors evaluated histologically. A- rats had altered dentine and pulp with disrupted histodifferentiation of pulpal mesenchymal cells to normal odontoblasts. The frequency of these abnormalities in dentine and pulp was lower in A-/RA rats. The enamel organ was unremarkable in the 4-week deficient period. Using special stains, we noted that pulpal GAG accumulation in A- and A-/RA rats was limited to the lingual area, while in A+ rats, GAG were distributed throughout. These data suggest that vitamin A deficiency affects histodifferentiation of pulpal mesenchymal cells to odontoblasts, as well as GAG distribution in pulp. RA administration reduces the A- changes and therefore, appears to have some activity in dentinogenesis.

Animals↗

Molecular topography of the neural cell adhesion molecule N-CAM: surface orientation and location of sialic acid-rich and binding regions.

Chemical analyses and binding studies have been correlated to clarify the relationship of structure to function in the neural cell adhesion molecule (N-CAM) from embryonic chicken brain. N-CAM isolated from the cell surface appears to include two closely related polypeptide chains. Treatment with neuraminidase of such preparations of N-CAM bound by antibodies on solid supports yielded components of Mr 140,000 and 170,000. These components each had the same amino-terminal sequence as N-CAM and gave nearly identical profiles on peptide maps. Immunoprecipitation of N-CAM from 9-day brain cells treated with tunicamycin yielded corresponding components of Mr 130,000 and 160,000, suggesting that the differences between these two components of N-CAM are in the polypeptide rather than the carbohydrate portions of the molecules. N-CAM appears to be oriented with the amino terminus extending away from the cell surface and with the bulk of the sialic acid near the middle of the peptide chain. As shown previously, incubation of N-CAM at 37 degrees C generates a fragment (Fr1) of Mr 65,000 that lacks most of the sialic acid. Treatment of membranes with Staphylococcus aureus V-8 protease released a fragment (Fr2) of N-CAM that contained most of the sialic acid; this fragment had an Mr of 108,000 after neuraminidase treatment. Both of these fragments contain the amino-terminal portion of the polypeptide chain. At least a portion of the N-CAM binding site was found to be located in the amino-terminal region of the peptide chain. Most or all of the sialic acid was not directly involved in binding, although it can influence binding, as indicated by the finding that neuraminidase-treated N-CAM (desialylated-N-CAM) bound to cells to a greater extent than untreated N-CAM. The Fr1 and the Fr2 fragments in solution did not bind to cells but were as effective as N-CAM and desialylated-N-CAM as competitors for N-CAM binding to cells. When fixed covalently to beads, N-CAM, desialylated-N-CAM, and the Fr1 and Fr2 fragments bound specifically to cells. In contrast, the N-CAM autolysis products released along with Fr1 neither bound to cells nor competed for N-CAM binding. In addition to suggesting a location for the N-CAM binding region, the accumulated results raise the possibility that valence may play a key role in N-CAM binding.

Animals↗

Kinetics of homophilic binding by embryonic and adult forms of the neural cell adhesion molecule.

The neural cell adhesion molecule, N-CAM, is a cell surface glycoprotein found on embryonic and adult neurons and on a variety of ectodermal and mesodermal tissues in very early embryos. During development, it shows local variations in prevalence at the cell surface as well as conversion from an embryonic form (E form) with high sialic acid content to an adult form (A form) with lesser amounts of this sugar. This E leads to A conversion occurs on different schedules in different brain regions, and it has been hypothesized that both the conversion and the prevalence changes are related to early regulation of pattern formation and connectivity. In order to identify precisely the consequences of these mechanisms of local cell surface modulation of N-CAM, an assay was developed to measure the rate of aggregation either of vesicles reconstituted from lipid and purified N-CAM or of native brain membrane vesicles. In both preparations, aggregation was greater than 95% inhibitable by specific anti-(N-CAM) Fab' fragments. The rates of aggregation of reconstituted N-CAM vesicles and native brain vesicles were found to be inversely related to the sialic acid content of their N-CAM molecules, with full desialylation resulting in about a 4-fold increase in rate over E-form N-CAM. Intermediate rates were obtained both with A-form N-CAM (which contains only one-third of the sialic acid content of E-form N-CAM) and with partially desialylated E-form N-CAM. The rate of coaggregation of reconstituted vesicles containing E-form N-CAM with reconstituted vesicles containing A-form N-CAM was also intermediate, implying that desialylation did not change the nature of (N-CAM)-(N-CAM) binding but only its rate. Even larger alterations in vesicle aggregation rate were seen when the amount of N-CAM per vesicle was altered. A 2-fold increase in the N-CAM-to-lipid ratio of reconstituted vesicles resulted in a greater than 30-fold increase in their rate of aggregation. Moreover, desialylation did not cause a further increase in the rate of aggregation of these already rapidly aggregating vesicles. These results in a model system demonstrate the large range of binding rates that are obtainable by various forms of local surface modulation of N-CAM. They are consistent with the proposal that similar alterations affecting (N-CAM)-mediated cell adhesion in vivo may be major factors in pattern formation during development of the nervous system.

Age Factors↗

Successful management of severe paraquat poisoning.

A case of paraquat poisoning was successfully treated which would have been considered lethal according to a reported prognostic index. Main features in the treatment were removal of paraquat by gastric lavage, forced diuresis, hemodialysis, and charcoal hemoperfusion. Early ventilation with low FIo2 and with positive end-expiratory pressure (PEEP) were also utilized.

Charcoal↗

Fecal peritonitis. An approach to its management.

During the first 8 mo of 1978, 10 patients with fecal peritonitis were admitted to our Intensive Care Unit. An attempt was made to standardize the management of these patients, the emphasis being on intraoperative peritoneal lavage, anaerobic-sensitive antibiotics, and the early introduction of artificial ventilation (intermittent mandatory ventilation).

Aged↗