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T E Phillips

Publications and source records attributed to T E Phillips.

33 records · Page 2Linked to original sources

Lectin binding patterns to plasmalemmal glycoconjugates of goblet cells undergoing differentiation in vitro.

The plasmalemmal glycoconjugates of the HT29-18N2 (N2) cell line were characterized on cells grown as 1) undifferentiated multilayers in glucose-containing culture media and 2) monolayers of columnar cells acquiring the goblet cell phenotype in glucose-free media. Lectins were unable to bind sheets of detached N2 cells in the absence of fixation. Following fixation with aldehydes, a dramatic unmasking of lectin binding sites was seen. When fixed monolayers were stained prior to embedding, biotinylated lectins, visualized by the avidin-biotin-complexed peroxidase technique, were more efficient than collodial gold-coupled lectins. Lectin binding sites could also be detected by using collodial gold-coupled lectins to stain monolayers embedded in LR White, Lowicryl K4M, and Lowicryl HM20. The binding of 5 lectins (wheat germ, Dolichos bifluros, peanut, soybean, and Ulex europeus) was found to be independent of the stage of differentiation; "pre-differentiated" columnar cells which had prominent microvilli and no or few mucous secretory granules had identical staining patterns as well-differentiated goblet cells with large numbers of secretory granules. Ricinus communis I was the only lectin whose binding was influenced by the stage of differentiation; it intensely labeled undifferentiated multilayers of N2 cells but only weakly labeled basolateral membranes of differentiated monolayers. Canavalia ensiformas (ConA) caused a moderate and even labeling of both apical and basolateral membranes of fixed monolayers stained prior to embedding, but post-embedding labeling revealed heavy labeling along the lateral margins of all columnar cells and weak to moderate binding along the apical and basal cell surface.

Acrylic Resins↗

Secretory glycoconjugates of a mucin-synthesizing human colonic adenocarcinoma cell line. Analysis using double labeling with lectins.

Lectins were used to characterize mucin glycoproteins and other secretory glycoconjugates synthesized by a human colon adenocarcinoma-derived cell line which expresses a goblet cell phenotype. Despite being clonally derived, HT29-18N2 (N2) cells, like normal goblet cells in situ were heterogeneous in their glycosylation of mucin. Only wheat-germ agglutinin, which recognizes N-acetylglucosamine and sialic acid residues, and succinylated wheatgerm agglutinin, which binds N-acetylglucosamine, stained the contents of all secretory granules in all N2 goblet cells. The N-acetylgalactosamine binding lectins Dolichos biflorus and Glycine max stained 20% and 21% of N2 goblet cells respectively. Ricinus communis I, a galactose-binding lectin, stained 67% of N2 goblet cells although staining by another galactose-binding lectin, Bandeiraea simplicifolia I, was limited to 19%. Peanut agglutinin, a lectin whose Gal(beta 1-3)GalNAc binding site is not present on mucins produced in the normal colon but which is found on most mucins of cancerous colonic epithelia, stained 68% of the cells. Ulex europeus I, a fucose-binding lectin, did not stain any N2 goblet cells. Four lectins (Lens culinaris, Pisum sativum, Phaseolus vulgaris E, Phaseolus vulgaris L) which recognize sugars normally present only in N-linked oligosaccharides stained up to 38% of N2 goblet cells. The binding of these lectins indicates either both O-linked and N-linked oligosaccharide chains are present on the mucin protein backbone or the co-existence of non-mucin N-linked glycoproteins and O-linked mucins within the goblet cell secretory granule.

Adenocarcinoma↗

Lipoxygenase metabolites of arachidonic acid do not induce mucus secretion from rabbit intestinal goblet cells in vitro.

Lipoxygenase metabolites of arachidonic acid are effective mucus secretagogues in the respiratory tract but their efficacy in the intestinal tract was unknown. Mucosal explants and sheets of epithelial cells isolated from rabbit small and large intestine were exposed to leukotrienes B4, C4, and D4 and monohydroxyeicosatetraenoic acids 5-HETE, 12-HETE, and 15-HETE. Light and electron microscopic inspection of goblet cells in treated tissues failed to detect evidence of recent compound exocytosis of mucin granules or other morphological evidence of secretory activity. These results indicate that lipoxygenase metabolites are not directly responsible for the increased mucus secretion observed in ulcerative colitis.

Animals↗

Cholinergic responsiveness of goblet cells during intestinal maturation.

In adult rat intestine, cholinergic stimulation accelerates discharge of mucus from crypt, but not villus, goblet cells. It was not known whether goblet cells in fetal or suckling rats are cholinergically sensitive. Rat pups (20 days of gestation to 30 postnatal days) were given subcutaneous injections of carbachol and the intestines were fixed 5 min later. Accelerated mucus secretion was assessed by light microscopy of semithin plastic sections. Goblet cells in ileal and colonic crypts did not show an adult-like response until 20-25 days after birth. Ileal and colonic mucosal explants in vitro showed age-dependent responses identical to those observed in vivo. The onset of cholinergic sensitivity occurred well after the formation of crypts and was always limited to crypt goblet cells.

Aging↗

Human intestinal goblet cells in monolayer culture: characterization of a mucus-secreting subclone derived from the HT29 colon adenocarcinoma cell line.

HT29-18N2 (N2) cells, a subclone of the HT29 human colon carcinoma cell line, are shown in this report to be a model system for the study of human goblet cell differentiation and mucin secretion. Grown in the absence of glucose, these cells formed homogeneous epithelial monolayers of columnar cells with typical goblet cell morphology. Differentiation occurred on uncoated glass; laminin, fibronectin, or collagen type I or IV did not enhance differentiation. HT29-18N2 cells grown on uncoated or matrix-coated permeable filters formed differentiated monolayers, but mucin granules within some of these cells polarized along intraepithelial lumens. Polyclonal antibodies raised against purified human colonic mucin, and also a monoclonal antibody against a protease-sensitive epitope of human colonic mucin, stained secretory granules of all differentiated goblet cells within N2 cell monolayers but did not stain predifferentiated goblet cells lacking large secretory granules. Monoclonal antibodies against specific carbohydrate sequences of human mucins also failed to stain N2 cells before differentiation, but recognized varying fractions of differentiated N2 goblet cells. Autoradiographic visualization of radiolabeled glycoproteins demonstrated transport and secretion of N2 cell mucin granules. Cholinergic stimulation of differentiated N2 cell monolayers resulted in depletion of intracellular mucin granules.

Adenocarcinoma↗

Macromolecules can pass through occluding junctions of rat ileal epithelium during cholinergic stimulation.

Crypt, but not villus, goblet cells in the ileum accelerate their secretion of mucus within 5 min following cholinergic stimulation. This study was done to determine whether the macromolecular permeability and structure of occluding junctions in the ileum are altered during accelerated secretion. Rats were injected intravenously with horseradish peroxidase followed by carbachol (250 micrograms/kg, subcutaneous) and the intestinal mucosa was fixed 3-12 min later. In control mucosa (saline-injected), peroxidase filled lateral intercellular spaces up to the occluding junctions of both crypt and villus epithelium, but did not enter occluding junctions or pass into the lumen. In 3 of 8 carbachol-stimulated rats, peroxidase was present within occluding junctions in crypt epithelium and in the crypt lumen, although all intermembrane junctional fusion sites appeared intact. Villus epithelial occluding junctions, in contrast, continued to exclude peroxidase. In freeze-fracture replicas of crypt cells prepared after carbachol stimulation, we detected no structural changes in strand networks of occluding junctions that could account for increased paracellular permeability.

Animals↗

Regulation of intestinal goblet cells in situ, in mucosal explants and in the isolated epithelium.

Cholinergic secretagogues were previously shown to accelerate mucin secretion from intestinal goblet cells of adult rats and rabbits, both in vitro and in mucosal explants. This rapid secretory response occurs only in crypt cells; surface goblet cells are not affected. Rapid secretion involves the sequential fusion of secretory granule membranes with the plasma membrane and with each other, but does not require granule movement. In unstimulated cells, slow transport of secretory granules towards the luminal cell surface depends on functional microtubules. Goblet cells appear in the rat fetal intestine three to four days before birth but they are insensitive to cholinergic agents in the fetus and neonate. The secretory response of crypt goblet cells to carbachol, both in vivo and in mucosal slices in vitro, is established throughout the intestines only after weaning (20-25 days after birth). To determine whether acetylcholine from nerve endings in the intact mucosa may mediate a mucus secretory response in the absence of exogenous secretagogues, mucosal sheets were mounted in modified Ussing chambers and goblet cell secretion was assessed after electrical field stimulation. Electrical field stimulation elicited mucus secretion from crypt (but not surface) goblet cells. Secretion was inhibited by prior treatment of the mucosa with 500 nM-tetrodotoxin or 100 microM-atropine, but not by 10 microM-atropine. Thus, endogenous nerves may regulate mucus secretion from crypt goblet cells in the intact mucosa. When intact sheets of epithelium were isolated from adult rat ileum and colon, then maintained in vitro and exposed to 20 microM-carbachol, crypt goblet cells released mucin in response to the secretagogue but goblet cells in in portions of the epithelium derived from villi or mucosal surfaces were unresponsive. This suggests that crypt epithelial cells respond directly to cholinergic agents and that they lose this sensitivity as they migrate out of the crypts.

Animals↗

Regulation of intestinal goblet cell secretion. III. Isolated intestinal epithelium.

Cholinergic secretagogues evoke mucus secretion from goblet cells in the crypts of small and large intestinal mucosa in vivo and in organ culture. It was not known whether this response reflected a direct action on epithelial cell receptors or an indirect effect involving intermediate neurons of the enteric nervous system. To resolve this, carbachol was applied to isolated intestinal epithelium maintained in vitro. Intact sheets of epithelium, measuring 10-200 mm2, were isolated from the ileum and colon of adult rats following short intravascular perfusion with 30 mM EDTA. The isolated epithelia lacked a basal lamina and cytoplasmic blebs formed on the basal cell surfaces, but cell ultrastructure was normal and intercellular junctions were intact. Autoradiography revealed that both goblet and columnar cells continued to incorporate [3H]glucosamine into nascent secretory macromolecules for at least 45 min after isolation. When exposed to 20 microM carbachol for 5 min, crypt goblet cells discharged their stored mucin granules by compound exocytosis, whereas goblet cells in portions of the epithelium derived from villi or mucosal surfaces were unresponsive. We conclude that cholinergic secretagogues act directly on crypt epithelial cells to elicit mucus secretion.

Animals↗

Regulation of intestinal goblet cell secretion. IV. Electrical field stimulation in vitro.

To determine whether transmitters released from enteric neurons can elicit secretion from goblet cells, full-thickness sheets of adult rat distal ileum or descending colon were mounted in modified Ussing chambers, and mucus secretion was assessed morphologically after electrical field stimulation (EFS). Square-wave pulses (56 V, 2 ms duration) were delivered at 10 Hz for 5 min. Goblet cells in colonic crypts, but not those on the mucosal surface, secreted mucus in response to EFS. This secretion was at least in part atropine insensitive, indicating a noncholinergic mechanism. In the ileum goblet cells located in the crypts, but not on villi, secreted mucus when tissue was mounted in the chamber, even in the absence of EFS. This "unelicited" secretion did not occur in unmounted control tissue in vitro, and it could be prevented by preincubating ileal tissue in 1 microM tetrodotoxin (TTX) or 10 microM atropine for 15 min before mounting. Furthermore, following preincubation with either TTX or atropine, EFS' failed to elicit secretion. Incubation of unmounted tissue with TTX, however, did not block the secretory response of crypt goblet cells to 20 microM carbachol. Thus, intrinsic cholinergic neurons may be stimulated during the mounting of the ileum in the chamber. Taken together, these data demonstrate that mucus secretion from crypt goblet cells may be regulated by cholinergic (in ileum and perhaps colon) and noncholinergic (in colon) elements of the enteric nervous system.

Animals↗

Exocytosis and nerve terminal pseudopodia.

When exocytosis of synaptic vesicles is accompanied by the accumulation of vesicle membrane in the nerve terminal membrane, the geometric shape of the terminal must alter. The details of these rearrangements vary with the anatomical site; this laboratory has reported on the responses of abutted nerve terminals in the electric ray electric organ. When they are stimulated so as to lose synaptic vesicles, they develop reciprocal pseudopodial indentations (PSIs) with each other. Assuming that direct abutment of the interacting nerve terminals was necessary for this to occur, we have examined various nuclei of the rat brain limbic system for similar configurations. PSIs are most abundant between abutted terminals synapsing with smooth dendrites in the globus pallidus and substantia nigra. In these locations, there is good reason to believe that they are forming between swellings of the gamma-aminobutyric acid (GABA) afferents from the caudate-putamen. Conservative calculations of the potential accumulation of extracellular K released by action potentials at the PSI tip suggest that 15 mM concentrations could occur at firing rates of 150 Hz. Inasmuch as the GABA projection system to these nuclei is a system of boutons en passant, in which the safety factor for action potential conduction is low, it is suggested that the formation of PSI and the frequency-dependent accumulation of K could lower the safety factor to the point of action potential block. This may affect the inhibitory tone in the substantia nigra. An understanding of how PSI generation is regulated depends in part on knowing what options are available for synaptic vesicle behavior at the moment of depolarization of a nerve terminal. In particular, we need to know whether vesicles can open and close in situ during slow firing under physiological conditions. Recent experimental results enable us to foresee how this could be tested, and the experimental design is described.

Amygdala↗

On the conductance pathway traversed by strontium in mediating the asynchronous release of acetylcholine by motor nerve impulses.

A study was made to determine whether the Sr2+ dependent asynchronous release of acetylcholine by nerve impulses is mediated by the conventional Ca2+ conductance channel or, as has been suggested recently, through an alternative ion pathway. Experiments were performed on the frog neuromuscular junction by the use of standard electrophysiological techniques. Repetitive nerve stimulation in Sr2+-Ringer solutions caused a marked increase in miniature end-plate potential (m.e.p.p.) frequency which was dependent on Sr2+ concentration and inhibited in a competitive fashion by the known Ca2+ antagonists, Co2+ and Mg2+. The equilibrium dissociation constants (KdS) determined for both Co2+ (0.09 +/- 0.01 mM, mean +/- s.e. mean, n = 5) and Mg2+ (3.7 +/- 0.3 mM, mean +/- s.e. mean, n = 4) were essentially the same as the reported values for these antagonists in blocking Ca2+ -mediated transmitter release by nerve impulses. These results suggest that Sr2+ mediates asynchronous evoked transmitter release through the conventional calcium conductance channel.

Acetylcholine↗