Cellular communication networks. Implications for our understanding of gastrointestinal physiology.
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Biomedical subjects
Publications and source records attributed to J Bienenstock.
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To investigate the basis of interactions between nerves and mast cells, we tested the actions of the neuropeptide substance P (SP) on whole cell current characteristics of RBL-2H3 cells (homologous to mucosal mast cells). Control RBL cells showed a K(+)-dependent inwardly rectified current. SP (10(-6) M) caused transient, frequently repetitive increases in current amplitude, which at a membrane potential (Vm) of -80 mV rose by -1,020.0 +/- 223.4 pA after SP application compared with -6.8 +/- 1.7 pA for control. This response was characterized by a lag phase of 102 +/- 16 s. Seventeen percent of cells showed spontaneous transients in the current amplitude from the beginning of the recording. After SP administration, the amplitude of these transients increased by 6.3 +/- 2.0-fold. Responses to SP were mimicked by the application of ionomycin. For both SP and ionomycin, there was a dose dependency of the lag phase. Removal of extracellular calcium abolished the response for 10(-6) M SP but not for 6.6 x 10(-6) M ionomycin. During current transients, the whole cell current had both inward and outward rectified components with the zero current Vm shifted from -87.3 +/- 3.2 mV at control to -10.8 +/- 1.7 mV. We compare the SP-evoked current responses in mucosal-type mast cells with those described in connective tissue type.
Indirect evidence links sensory nerves with mast cells (MC) in inflammatory reactions of airway, skin, and intestine. Isolated MC secrete histamine, serotonin, and other inflammatory mediators in response to neuropeptides such as substance P (SP) in vitro. To obtain direct evidence of nerve/MC interactions, we used a tissue culture model involving the co-culture of murine sympathetic neurons and rat basophilic leukemia (RBL) cells (homologous to mucosal MC). An electrophysiologic analysis of the consequences of neuron/RBL cell contacts showed that neurite contact with RBL cells reduced the control input resistance (Ro) of 61.8 +/- 3.2 (n = 110) M omega to 22.4 +/- 4.8 (n = 13) M omega (P less than 0.01) without change in the membrane potential. Time course studies showed that Ro of RBL cells with neurite contact was always lower by 30 to 54% than adjacent RBL cells lacking such contact. This effect was not seen in RBL cells cultured on rat fibroblasts. Direct application of SP, bradykinin, and somatostatin, but not acetylcholine, noradrenaline, or the putative neurotransmitter ATP, could partly mimic the effect of neurite contact. Therefore, neurotransmitter release from sympathetic neurons in contact with RBL cells may decrease RBL cell membrane resistance, possibly leading to activation.
Nerve growth factor (NGF) was originally considered as a trophic factor for peripheral sympathetic and sensory neurones; however, recent reports indicate that NGF may induce proliferation of immune and haematopoietic cells. Histochemical studies conducted in human spleen and lymph nodes have suggested the presence of NGF receptor (NGF-R) immunoreactive elements in secondary follicles; however the nature of the cells bearing the NGF-R in lymphoid tissue has not been determined. In this paper we report the results of an immunohistochemical study conducted on mucosa associated lymphoid tissue. Using a specific monoclonal antibody to human NGF-R (mAb 20.4) we observed an NGF-R-immunoreactive population in all secondary lymphoid follicles examined. Double immunostaining revealed that this population was composed of follicular dendritic cells (FDC); lymphoid cells within the germinal centres did not appear to be 20.4 immunoreactive. Cell suspensions from tonsillar follicles also contained NGF-R immunopositive dendritic cells which were enriched by a 20.4 labelled magnetic bead procedure, revealing cells with the morphological characteristics of FDC. Mononuclear cells from human peripheral blood did not contain any NGF-R-immunoreactive elements using our techniques.
We have recently shown that nerve growth factor (NGF) promotes human granulopoiesis, specifically augmenting basophilic cell differentiation observed in methylcellulose hematopoietic colony assays of human peripheral blood. Because the NGF effect was seen in the presence of conditioned medium derived from a human T-cell line (Mo-CM) containing granulocyte-macrophage colony-stimulating factor (GM-CSF), we examined interactions of purified NGF and recombinant human GM-CSF (rhGM-CSF) on granulocyte growth and differentiation. rhGM-CSF stimulated a dose-dependent increase in methylcellulose colony growth at concentrations between 0.1 U/mL and 10 U/mL, and in the presence of NGF at 500 ng/mL this effect was enhanced. The number of basophilic cell colony-forming units (CFU-Baso) and histamine-positive colonies increased synergistically when NGF was added to rhGM-CSF. Furthermore, because Mo-CM acts with sodium butyrate to promote basophilic differentiation of alkaline-passaged myeloid leukemia cells, HL-60, we also examined the interaction of NGF and Mo-CM or rhGM-CSF using this assay. In the presence of NGF, Mo-CM at concentrations of 0.5% to 20% vol/vol, and rhGM-CSF at concentrations of 0.1 U/mL to 100 U/mL synergistically increased histamine production by butyrate-induced, alkaline-passaged HL-60 cells; this was associated with the appearance of metachromatic, tryptase-negative, IgE receptor-positive cells. The effects of rhGM-CSF or Mo-CM were completely abrogated by a specific anti-rhGM-CSF neutralizing antibody in methylcellulose, with or without NGF; the NGF synergy with rhGM-CSF in the HL-60 assay was also inhibited by either anti-rhGM-CSF or anti-NGF antibody. These studies support the notion that differentiation in the basophilic lineage may be enhanced by NGF acting to increase the number of GM-CSF-responsive basophilic cell progenitors.
Functional interactions between mast cells and peripheral nerves may occur at sites of association seen in vivo. To study the interactions, we developed a tissue culture model of murine sympathetic neurons co-cultured with rat basophilic leukaemia (RBL-2H3) cells (homologues of mucosal mast cells) or rat peritoneal mast cells. In co-cultures of up to 3 days, light microscopy identified neurite contacts with peritoneal mast cells or RBL-2H3 cells, but not with glial cells or fibroblasts. Electron microscopy confirmed membrane-membrane contact between neurites and RBL-2H3 cells. Time-lapse analysis of interactions between neurons and RBL-2H3 cells showed that 60-100% of the cells in a given field acquired neurite contact within 17 h. In matching control studies, there was no increase in the frequency of neurite contact with cells of the rat plasmacytoma line (YB2/0): these were not selected as targets, and contacts were broken if formed. Time-lapse records of the derivation of neurites from their path suggested a neurotropic effect of mast cells, with neurite contact ensuing when the intervening distance was less than 36 +/- 4 microns. Once formed, contacts were invariably maintained throughout the period of examination (up to 72 h), in contrast to YB2/O or fibroblast contacts. We conclude that neurons selectively form and maintain connections with cells representative of rat connective tissue-type and mucosal mast cells in vitro. Similar interactions in vivo could promote nerve/mast cell contacts, which may allow bidirectional communication between the nervous and immune systems.
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The effects of corticosteroid treatment on mucosal mast cells in rat jejunal mucosa were examined. Rats previously infected with Nippostrongylus brasiliensis received a single IP injection of 1 mg dexamethasone. Three hours later, one third of mucosal mast cells demonstrated minor granular changes (fusion or peripheral clear zones) by electron microscopy. At 7 hours, by light microscopy, the majority of mucosal mast cells appeared abnormal with clustering of granules. By electron microscopy, 151 of 233 (65%) mucosal mast cells had been engulfed by enlarged macrophages and were in various stages of degeneration inside large phagosomes. By 24 hours, the number of mucosal mast cells had decreased to less than 10% of the initial number with parallel decreases in tissue rat mast cell protease II and histamine levels. Serum levels of rat mast cell protease II did not increase, and intestinal morphology was invariably normal with no evidence of inflammatory changes up to and including 24 hours. Observations were similar in uninfected animals. In contrast, in rats undergoing antigen-induced anaphylaxis, a significant elevation of serum rat mast cell protease II level was evident at 3 and 7 hours, and macrophage engulfment of mucosal mast cells was never seen, although tissue edema, enterocyte loss, and hemorrhage were observed. It is concluded that dexamethasone treatment results in macrophage engulfment and destruction of mucosal mast cells that occurs without granular mediator release and local inflammatory effects.
In this report, we review the evidence for mast cell/nerve interactions. We believe that the morphologic and functional evidence now strongly support a purposeful and biologically significant interaction between these two cell types. This interaction has physiologic consequences and appears to be able to regulate such local events as chloride ion secretion by epithelial cells of the intestinal and respiratory tracts in experimental models. In this way, the mast cell and nerve may be considered as a functional homeostatic regulatory unit. The extent to which this unit may be involved in maintenance of normal integrity of mucous membranes or other structures, in health and in disease, is not clear at the present and will require considerably more investigation and elucidation. However, the concept of such an interaction is an interesting one and may bring new approaches of a therapeutic and diagnostic nature to bear on some old problems. The observations reviewed in this report that psychologic conditioning may itself cause mucosal mast cell degranulation and mediator release in the rat is significant. We consider that this evidence of central nervous system control of mast cell degranulation is an extension of the idea that mast cells and nerves communicate.
In this travelogue through Immunology, an overview is presented on studies by the author and his colleagues. It starts with the exploration of immune complexes in the lung, leading to the establishment of bronchus-associated lymphoid tissue. This then developed into the concept of the so-called mucosa-associated lymphoid tissue involved in local immune defence to orally presented antigens. Oral infection with Nippostrongylus brasiliensis initiated studies on mast cells, and the effects of neuropeptides like substance P on mast cell function in vitro. The enteric nervous system shows a close association with mast cells, which can be investigated in in vitro cocultures between mast cells and nerves. This position of mast cells in the dialogue between the immune system and nervous system is illustrated by conditioning experiments showing the degranulation of mast cells by a conditioning stimulus.
Intestinal mucosal mast cells (IMMCs) are closely apposed to nerves, which is consistent with other evidence suggesting that mast cells are innervated. Recent studies have indicated that coordinated changes in mast cell and nerve densities occur in the gut mucosa, during progressive fibrosis, but there is a lack of experimental evidence to support remodeling of intestinal nerve fibers as part of a disease process. Infection of rats with the nematode Nippostrongylus brasiliensis (Nb) results in an initial loss of stainable IMMCs, during an acute inflammatory phase, with subsequent mast cell hyperplasia. Accordingly, we employed the Nb model to look for structural neuroplasticity of intestinal mucosal nerves during inflammation. Immunocytochemical labeling of neurofilament subunits was very low in the jejunal mucosa of all animals, whereas neuron-specific enolase (NSE)-immunoreactive nerves were relatively abundant in control animals. The number of NSE-immunoreactive profiles increased approximately 2.5-fold by day 10 (d10) postinfection (p less than 0.01) and returned to near control values by d14. Immunoreactivity for B-50/GAP-43 was more extensive, labeling more than four times the number of nerves per villus, compared with NSE (p less than 0.0001). B-50 immunoreactivity decreased minimally (ca. 20%) by d7 postinfection, and then increased through control values between d10 and d21, to 30% greater than controls at d49 (p less than 0.05). Subclassification of the B-50-immunoreactive nerves according to cross-sectional area revealed a greater than twofold increase in the proportions of large fibers at d7 and d10. Subsequently, the proportions of small nerves were increased compared with controls. The fiber size changes were found to correlate with mast cell densities (r = -0.72 for large and r = 0.76 for small nerves). At d10, dilated B-50- and NSE-immunoreactive nerves predominated, and extraneuronal NSE was noted. Electron microscopy revealed that this was due to axonal dilation and degeneration. These data provide evidence for plasticity of intestinal mucosal nerve fibers during inflammation. This includes early degenerative and later regenerative phases that appear to correlate with mast cell densities. The phenotype of mucosal nerves in control animals suggests ongoing modeling of these fibers.
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We examined the effects of corticosteroid treatment on eosinophils in the jejunal mucosa of rats previously infected with Nippostrongylus brasiliensis. Rats received a single intraperitoneal injection of 1 mg of dexamethasone. At a light microscopic level, the number of eosinophils with typical nuclei and granules was significantly decreased as early as 3 hours after injection, and had diminished to 17% of starting values at 24 hours. Pyknotic cells containing eosinophilic granules or fragments were observed scattered in the subepithelial interstitial space 3 and 7 hours after injection. By electron microscopy, more than 20% of eosinophils demonstrated nuclear abnormalities. Degenerating eosinophils without granular changes (27 of 127, 14.1%) or with or with granular changes (9 of 127, 7.1%) increased at 3 hours compared with untreated rats (8 of 233, 3.4%; 4 of 233, 1.7%). At 7 hours, 47 of 96 (49.0%) eosinophils were located inside phagocytic vacuoles of macrophages. Single macrophages occasionally engulfed two or more eosinophils. Only a few degeneration eosinophils (7 of 96) were observed outside macrophages. At 13 hours, the percentage of degenerating eosinophils and eosinophils inside macrophages was decreased; at 24 hours, few eosinophils were seen and eosinophil structures could not be identified inside macrophages. The epithelium and lamina propria did not show structural damage typical of an inflammatory reaction at any time. Eosinophil numbers in mesenteric lymph nodes, spleens, and peripheral blood were also reduced by dexamethasone. Similar observations were made in the jejunal mucosa of noninfected rats. We observed the slow restoration of eosinophil numbers in the intestinal wall, finally reaching preinjection numbers after 14 days. We conclude that dexamethasone has important effects on eosinophils causing (a) nuclear degeneration and (b) changes in the granular matrix. Subsequently, these damaged eosinophils are engulfed by macrophages and swiftly disappear from the intestinal mucosa. These effects appear to be due to the induction of apoptosis. Our findings offer an explanation for one of the significant antiinflammatory effects observed with the use of corticosteroids.
Association of mast cells (MCs) and nerves may represent communication between the immune and nervous systems. The morphological features of associations between sympathetic neurons and rat basophilic leukaemia cells (RBL), a model for the mucosal mast cell, were studied in a tissue culture model. Initially, neuronal growth cones contacted single RBL with large areas of membrane apposition. With time, these appeared as distinct zones of contact where intervening distances were less than or equal to 50 nm. Large dense-cored granules suggested localization of peptidergic neurotransmitters. Encircling of neurite profiles by RBL resembled intimate nerve-MC relationships in vivo. These modifications may serve to optimize the area of interaction.
A variety of mast cell degranulating agents have previously been shown to induce mast cell hyperplasia in adult rats. In neonates 2.5 S nerve growth factor (NGF) induces a hyperplasia of both mucosal and connective tissue mast cells (MMC and CTMC). We have examined the role of the potent mast cell degranulating properties of NGF on its ability to induce mast cell hyperplasia. Administration of NGF in combination with the mast cell stabilizing agent disodium cromoglycate was found to abrogate the CTMC hyperplasia induced by NGF alone. Treatment of neonatal rats with the alternate degranulating agent compound 48/80 was found to induce a limited CTMC but not a MMC hyperplasia. A supernatant obtained by degranulating purified adult rat peritoneal mast cells with anti-IgE was found to induce hyperplasia of the CTMC population similar to that observed with NGF administration. However, this degranulation product supernatant only induced a limited MMC hyperplasia as judged by RMCP II content of the tissues. These results suggest that NGF has dual action inducing mast cell hyperplasia; CTMC hyperplasia being dependent on the ability of NGF to degranulate mast cells. MMC hyperplasia induced by NGF is independent of CTMC degranulation. Degranulation products from peritoneal mast cells act to increase both MMC and CTMC populations in the neonate. These data suggest that the CTMC population may be regulated by an autocrine positive feedback mechanism in vivo.
The murine intestinal epithelium contains a heterogeneous population of intraepithelial leukocytes (IEL) most of which are granulated, Thy-1-CD5-CD8+. In order to assess the lineage relationship of this subgroup of IEL to peripheral T cells, we examined IEL in mice with the severe combined immunodeficiency (scid/scid) mutation, which lack T and B cells in peripheral lymphoid tissues. Electron and light microscopy showed that the intestine from scid/scid mice had granulated IEL similar to IEL in normal C.B-17 mice. Flow cytometry of isolated IEL stained with monoclonal antibodies against Thy-1, CD3, CD4, CD5 and CD8 showed that scid/scid mice IEL contained cells with the Thy-1-CD4-CD5-CD8+ phenotype. Immunohistochemical staining of IEL in tissue sections with antibodies to Thy-1 and CD8 confirmed that the Thy-1-CD8+ cells were in the intestinal epithelium. These scid/scid IEL also lacked CD3 expression and mRNA for the V gamma 7 V region gene of the gamma T cell receptor. We conclude that scid/scid mice contain precursors for IEL that can differentiate into a granulated Thy-1-CD5-CD8+ IEL in the intestine. The absence of CD8+ peripheral T cells in these mice suggests that these IEL differ from classical T cells in their ability to differentiate and express CD8 and do not require T cell receptor expression for their localization to the intestine.
Mast cells are closely associated with nerves in the mucosa of the appendix vermiformis, and obliteration of the appendiceal lumen by fibrous tissue is accompanied by neurogenous hyperplasia. However, changes in the density of mast cells in this process have not been reported. Accordingly, fibrosis was graded in haematoxylin and eosin sections from 46 samples of human appendix. This was compared with mast cell number in toluidine blue-stained slides and nerve density in PGP9.5-immunoreactive sections. In the mucosa, the mast cell number in the samples with minimal fibrosis was three times greater than in those classified as normal (P less than 0.0001), and this declined in the more fibrotic samples. The mucosal nerve scores paralleled the mucosal mast cell changes, and stereological analysis revealed a correlation of mast cell number and nerve density within the lamina propria of the same specimens (r = 0.49-0.90). In the submucosa, mast cell numbers and nerve scores were not significantly different in the different histological grades and obliterated samples resembled normal submucosa, except that a dense axial block of nerve staining was often present. The progressive fibrotic changes in appendices provide a human model for studying the relationships of nerves, mast cells, and fibrosis in the gastrointestinal tract.