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Biomedical subjects

J Lilien

Publications and source records attributed to J Lilien.

14 recordsLinked to original sources

Decreased neutrophil respiratory burst on exposure to cobalt-chrome alloy and polystyrene in vitro.

The effect of biomaterials on the superoxide-producing ability of neutrophils was studied. Human peripheral blood neutrophils were incubated with cobalt-base alloy (F-75) or polystyrene beads of a nonphagocytosable size. Respiratory burst activity was studied by measuring superoxide dismutase inhibitable reduction of cytochrome C. Neutrophils were found to release no more superoxide anion on incubation for up to 3 h with either material in a protein-free medium than controls without foreign material. However, the ability of neutrophils incubated with either biomaterial to subsequently respond to phorbol myristate acetate challenge was decreased (p less than 0.05). Chemical analysis of supernatants for the F-75 samples showed a high concentration of cobalt in the medium within 1 h of incubation. Minimal chromium and nickel was detected. No correlation could be demonstrated between metal in solution and the respiratory burst defect in neutrophils. Instead it appears that interaction of cells with either surface was the critical event in altering the response to phorbol myristate acetate. This observed functional defect may play an important role in rendering tissue around implanted biomaterials susceptible to infections.

Adult

Human neutrophil response to short-term exposure to F-75 cobalt-based alloy.

The effect of biomaterials on the activation of human neutrophils was studied. Human neutrophils were incubated with F-75 cobalt-based alloy or polystyrene microspheres of a nonphagocytosable size with two times total neutrophil plane surface area. Scanning and transmission electron microscope (SEM, TEM), energy dispersive x-ray microanalysis (EDX), and graphite furnace atomic absorption spectroscopy (GFAAS) were used to analyze changes in cellular morphology and metal content. This report presents evidence that human PMNs display morphological changes related to foreign material challenge, including activation on F-75 bead surfaces, pinocytosis of corrosion products, formation of intracellular vacuoles, degranulation, etc. Moreover, when PMNs were present, the corrosion release rate of F-75 increased as much as three times over cell-free controls.

Adult

Cadherin-mediated adhesion in pancreatic islet cells is modulated by a cell surface N-acetylgalactosaminylphosphotransferase.

Rat pancreatic islet cells and RINm5F cells, an islet derived cell line, have at their cell surface an N-acetylgalactosaminylphosphotransferase (GalNAcPTase) similar to that found at the surface of chick neural retina cells and at the rat neuromuscular junction. On islet cells and RINm5F cells the GalNAcPTase is stably associated with cadherin cell-cell adhesion molecules. The effect of antibodies directed against the GalNAcPTase on homophilic, cadherin mediated adhesion was analyzed by measuring their effect on adhesion of islet and RINm5F cells to an immobilized anti-cadherin antibody. In this experimental paradigm anti-GalNAcPtase antibodies completely inhibit cadherin mediated adhesion. Furthermore, cadherin and GalNAcPTase co-distribute in islet and non-islet tissue. We conclude that pancreatic islet cell-cell adhesion is cadherin mediated and under the control of a tightly associated, cell surface GalNAcPTase.

Amino Acid Sequence

Antibodies to the retina N-acetylgalactosaminylphosphotransferase inhibit neurite outgrowth.

The neural retina N-acetylgalactosaminylphosphotransferase (GalNAcPTase) is a cell surface molecule (Balsamo and Lilien, 1980, 1983; Balsamo et al., 1986a) that is tightly associated with, and glycosylates, the calcium-dependent, cell-cell adhesion molecule, N-cadherin (Balsamo and Lilien, 1990). N-cadherin has been implicated in neuronal attachment and neurite outgrowth when at the surface of cells (Bixby et al., 1987, 1988; Matsunaga et al., 1988; Neugebauer et al., 1988; Tomaselli et al., 1988). The intimate association of the GalNAcPTase and N-cadherin prompted us to test the possibility that the GalNAcPTase is also involved in the process of neurite outgrowth. We tested the effect of one polyclonal and two monoclonal anti-GalNAcPTase antibodies in cultures of chick neural retina cells extending neurites on substrates requiring N-cadherin, beta integrin receptors, or the chicken homologue of L1, G4. The length and number of neurites produced were dramatically reduced on all of these substrates by the polyclonal and one of the monoclonal anti-GalNAcPTase antibodies. The second monoclonal antibody bound to the cell surface but was not inhibitory, indicating that it reacts with a different epitope. The mechanism through which the retina cell surface GalNAcPTase may modulate neurite outgrowth on many substrates is discussed.

Animals

Immunolocalization of N-acetylgalactosaminylphosphotransferase in the adult retina and subretinal space.

The cell surface N-acetylgalactosaminylphosphotransferase (GalNAcPTase) modulates N-cadherin-mediated adhesion among embryonic chick retinal cells (Balsamo et al., 1990). We are investigating the potential role of this transferase in modulating adhesive interactions in the adult retina. Using a previously characterized monoclonal anti-GalNAcPTase, we have used immunohistochemical and immunoblot techniques to localize and characterize the transferase in the retinas of the post metamorphic frog (Xenopus laevis), adult cow, and adult cynomolgus macaque. On frozen sections, anti-GalNAcPTase specifically labels the outer segments of photoreceptors in all species. Immunolabel appears at the surface of, or between rod outer segments in all species. The nerve fiber layer also shows high immunoreactivity in all species. Monkey cone outer segments are also highly immunoreactive. Photoreceptor inner segments are clearly immunoreactive in the cow retina. Immunoblots of purified cow rod outer segments show immunolabeled bands near 220 kDa, which is the molecular mass of the GalNAcPTase used as immunogen. Purified Xenopus rod outer segments are not immunoreactive on blots, while soluble interphotoreceptor matrix (IPM) shows immunoreactive bands principally at 113-130, and 166 kDa. Cow soluble IPM shows immunoreactivity at 180 kDa. Based on these findings, we propose that the GalNAcPTase, or a fragment thereof, is a component of the IPM, and perhaps of the photoreceptor outer segment as well.

Animals

Functional characterization of an adhesive component from the embryonic chick neural retina.

We have developed a quantitative assay for tissue-specific adhesive components which is based on the agglutination of glutaraldehyde-fixed cells. At least 2 components are required for fixed-cell agglutination: a cell-surface ligand which is obtained from tissue culture-conditioned medium, and a soluble 'agglutinin' which accumulates in conditioned medium from monolayer cultures. Our results suggest that the surface-binding ligand and the agglutinin interact directly, resulting in tissue-specific agglutination of cells. The agglutination reaction exhibits divalent cation, temperature, and pH dependence. Several models of cell adhesion are described; the simplest of these which can account for the data is a multicomponent model in which the 2 adhesive components have structural roles.

Agglutinins

The turnover of a tissue specific cell surface ligand which inhibits lectin induced capping.

Ten-day-old embryonic chick neural retina release into the environment glycoprotein ligands which bind to homologous cells, inhibiting the lectin-induced redistribution of cell surface receptors. Material with identical activity is released from trypsin-dissociated neural retina cells that are allowed to repair in culture for 2 h and are then transferred to fresh medium. Release of ligand is inhibited by cytosine arabinoside, hydroxyurea, UDP, and EDTA, and is potentiated by MnCl2. These data suggest that a glycosyltransferase reaction plays a critical role in the turnover of the cell surface ligand. Reactivation of enzymatically deglycosylated ligand solutions by intact cells provides further support for this hypothesis. Release of ligand is also accompanied by a loss of the agglutinability of the cells by a tissue-specific component which accumulates in monolayer conditioned medium. Conditions which inhibit release maintain maximal agglutinability suggesting similar mechanisms mediate both processes.

Agglutination Tests

The binding of tissue-specific adhesive molecules to the cell surface. A molecular basis for specificity.

Factors present in supernatants prepared from neural retina or cerebral lobe tissue cultures bind specifically to cells of the same type and promote cellular aggregation; the basis for the specificity of these factor-cell interactions has been investigated. Pronase digestion destroys binding of protein but not the carbohydrate portion of factors. Digestion with a mixture of protease-free glycosidases destroys both protein and carbohydrate binding. Purified beta-N-acetylhexosaminidase reduces binding of retina factor by 80%. The enzymatic activity which destroys binding of cerebral lobe factor to cerebral cells appears to be alpha-mannosidase activity. Further, paper chromatography of the enzymatic digestion products of the binding factors reveals that N-acetylgalactosamine residues are released from the retina factor while mannosamine residues are released from the cerebral lobe factor. Inhibition of binding of factors to cells by monosaccharides is consistent with the enzyme data. N-Acetylgalactosamine maximally inhibits binding of factor to retina cells while mannosamine inhibits factor binding to cerebral cells. These data suggest that the specificity of cellular adhesion is determined, at least in part, by the sequence of sugars in an oligosaccharide residue of a complex glycoprotein.

Animals

Spontaneous and lectin-induced redistribution of cell surface receptors on embryonic chick neural retina cells.

The mobility of plant lectin receptors in the plane of the membrane is examined for cells prepared from embryonic chick neural retinas by a variety of procedures. Cells liberated from the intact tissue by trypsin treatment followed by mechanical dissociation are able to redistribute their receptors into 'caps' both spontaneously and in the presence of a multivalent lectin. These cells, dispersed by trypsinization, upon repair in culture for a suitable period of time lose their ability to redistribute lectin receptors. Cells dispersed by mechanical means without prior trypsin treatment are unable to undergo 'cap' formation. In addition, cells within intact tissues are also unable to redistribute their lectin receptors into 'caps.' Based on these observations we propose that within solid tissues which have assumed their characteristic architecture, cell surfaces are immobilized, and that this phenomenon may be a critical parameter in determining the potential of a cell to undergo morphogenetic rearrangements.

Animals