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M H Perdue

Publications and source records attributed to M H Perdue.

At least 55 records · Page 3Linked to original sources

Class II MHC antigen (Ia)-bearing dendritic cells in the epithelium of the rat intestine.

Many tissues are found to contain populations of cells with an unusual dendritic shape, high levels of surface expression of MHC class II (Ia) gene products, and strong accessory function for the stimulation of specific clones of quiescent T lymphocytes. Dendritic cells (DC) represent major population of "professional" APC in various lymphoid and nonlymphoid tissues, distinct from cells of the monocyte/macrophage lineage. Among the best characterized nonlymphoid dendritic cells are epidermal Langerhans cells, but it has been shown that interstitium and epithelium of other organs also contain irregularly shaped, strongly MHC class II positive cells. In recent years, DC have been localized to alveolar septa in the lung, as well as within and just beneath airway epithelium, comprising a tightly meshed network that is reminiscent of epidermal Langerhans cells. In the gastrointestinal tract, conventional immunohistochemical analysis of mucosal class II MHC (Ia) staining reveals a morphologically heterogeneous pattern of staining in the lamina propria. DC that exhibit strong Ag-presenting activity in vitro have been extracted from enzymatic digests of colonic mucosa, but no previous reports of MHC class II-positive cells with pleiomorphic morphology have been recorded within the epithelium of the intestine. Employing a novel combination of nonconventional section planes, pre-embedding fixation, and immunohistochemical techniques, we now demonstrate Ia staining of cells with classical DC morphology within the epithelium of the intestine in normal specific pathogen-free rats. Our investigation suggests that cells with the morphologic and phenotypical characteristics of DC are present within the mucosal epithelium of the rat jejunum and colon, comprising a significant organized network. The number of DC within epithelium of the colon was 117 +/- 20 per 10-microns-thick cross-section. These findings have important theoretical implications for research on Ag processing and T cell activation in the context of allergic and infectious diseases in the gastrointestinal tract.

Animals↗

Nippostrongylus brasiliensis infection evokes neuronal abnormalities and alterations in neurally regulated electrolyte transport in rat jejunum.

Neuronal abnormalities have been described in the intestine of helminth-infected rats. However, the physiological ramifications of these changes have not been determined. Here, we examined epithelial ion secretion, indicated by increases in short-circuit current (Isc), evoked by electrical transmural stimulation (TS) of enteric nerves in Ussing-chambered jejunal tissues from Nippostrongylus brasiliensis-infected rats. Rats were examined at 10 and 35 days post-infection (p.i.); non-infected rats served as controls. TS resulted in significantly reduced ion secretion in jejunum from 10 day p.i. rats compared to controls or jejunum from 35 day p.i. rats. The TS response in tissue from infected rats had, unlike controls, no cholinergic component. Tissues from both non-infected and infected rats were equally responsive to the muscarinic agonist bethanechol, suggesting that the cholinergic defect was neuronal and not an inability of the epithelium to respond to cholinergic stimulation. However, increases in Isc evoked by exogenous substance P (SP) in tissue from rats 10 day p.i. were reduced in magnitude to approximately 25% of control values. Concomitant with these physiological changes, tissue from infected rats contained increased amounts of substance P immunoreactivity and intestinal sections displayed increased numbers of substance P-immunoreactive nerve fibre profiles at both 10 and 35 days p.i. Thus, following N. brasiliensis infection there is a shift in the enteric nervous system away from cholinergic to non-cholinergic regulation, associated with increased amounts of the pro-inflammatory neuropeptide, substance P. We speculate that changes in neuronal structure and function are intimately involved in the co-ordinated multicellular response to intestinal parasitic infection and subsequent gut recovery.

Animals↗

T cell-monocyte interactions regulate epithelial physiology in a coculture model of inflammation.

We have examined the effect of T cell activation, with or without monocytes, on epithelial electrolyte transport and barrier functions. Confluent monolayers of human T84 epithelial cells were cocultured (1-3 days) with peripheral blood mononuclear cells (PBM) or T cells activated by anti-CD3 antibody. Monolayers were then mounted in Ussing chambers, and changes in ion transport (indicated by short-circuit current, Isc) and barrier (indicated by resistance and radiolabeled probe fluxes) functions were assessed. Coculture with activated PBM or conditioned medium from these cells altered the transport (decreased Isc responses to carbachol and forskolin) and barrier (decreased resistance and increased fluxes of [3H]mannitol and 51Cr-EDTA) properties of T84 monolayers. In contrast, coculture with equal numbers of T cells activated in the absence of monocytes did not significantly affect epithelial physiology. Monocytes treated with conditioned media from activated T cells evoked epithelial abnormalities similar to those caused by culture with activated PBM. Total correction of epithelial abnormalities was achieved only by treating T cell-conditioned medium with anti-interferon-gamma (IFN-gamma) before addition to monocytes, as well as addition of anti-tumor necrosis factor-alpha (TNF-alpha) to the coculture. Exogenous recombinant IFN-gamma and TNF-alpha added to T84 monolayers did not mimic the physiological changes induced by immune cells; addition of these cytokines to monocytes did reproduce the effects. We conclude that T cell-derived IFN-gamma activates monocytes to release TNF-alpha and other soluble mediators, resulting in epithelial dysfunction.

Actins↗

Infection of T84 cells with enteropathogenic Escherichia coli alters barrier and transport functions.

The effect of enteropathogenic Escherichia coli (EPEC) infection on electrophysiology of T84 cell monolayers was examined. After 18 h of infection with EPEC (E2348), transepithelial electrical resistance was decreased (30 +/- 5% of uninfected values) compared with monolayers infected with a nonpathogenic E. coli strain (104 +/- 13%). Resistance of monolayers infected with EPEC mutant strain CVD206, deficient in attaching and effacing lesion formation, was partially reduced (66 +/- 10%). In addition, permeability of EPEC-infected T84 monolayers increased compared with uninfected cells. Associated with these changes was an altered distribution of the tight junction protein, ZO-1. Taken together, these findings suggest that the barrier defect induced by EPEC was at the level of the tight junction. Adenosine 3'5'-cyclic monophosphate-stimulated chloride secretion was also diminished in EPEC-infected cells, whereas Ca2+ -dependent chloride secretion was not different from uninfected cells. These findings indicate that EPEC infection alters intestinal epithelial barrier and transport functions. Furthermore, these results provide a possible mechanism for EPEC-induced diarrheal disease.

Actins↗

Effects of neuropeptide Y and substance P on antigen-induced ion secretion in rat jejunum.

We previously described a model of intestinal hypersensitivity in which isolated gut segments from sensitized rats demonstrated a rapid epithelial secretory response to luminal antigen that was mediated by mucosal mast cells and capsaicin-sensitive nerves. In this study, we examined the ability of the inhibitory neuropeptide, neuropeptide Y (NPY), to diminish the antigen-induced secretory response. Rats were sensitized to egg albumin (EA), and 12-14 days later, jejunal tissue was excised and mounted in Ussing chambers. NPY inhibited the short-circuit current (Isc) increase and Cl- secretion evoked by addition of EA to the luminal side of the tissue; neural blockade with tetrodotoxin (TTX) had a similar inhibitory effect. In contrast, NPY was much less effective, and TTX was completely ineffective, on the response to serosal antigen. Additional experiments examined the cell target for NPY action. NPY and TTX almost abolished the Isc response to electrical transmural stimulation of enteric nerves, suggesting a possible neural site of action. In addition, NPY significantly reduced baseline Isc; this inhibition involved both TTX-dependent and TTX-independent components. Because nerves were previously shown to facilitate antigen uptake and substance P was implicated in the response to only luminal antigen, we postulated that NPY was inhibiting nerves that facilitate antigen transport from the lumen to effector cells in the lamina propria. We therefore examined the effect of exogenous substance P added after NPY inhibition. Substance P restored the luminal antigen-induced secretory response to pretreatment values. We conclude that the neuropeptides play a significant role in immunophysiology by acting at neural and epithelial sites in the intestinal mucosa.

Albumins↗

Budesonide inhibits T cell-initiated epithelial pathophysiology in an in vitro model of inflammation.

Recognition of the therapeutic value of glucocorticosteroids in the treatment of inflammation has preceded awareness of the mechanism(s) of action of these drugs. We recently showed that coculture of human T84 epithelial monolayers for 2 days with anti-CD3 activated peripheral blood mononuclear cells (A-PBM) led to impaired ion transport responses and reduced barrier function. We tested the hypothesis that budesonide, as a member of the new generation of more topically selective steroids, could prevent these immune-mediated epithelial abnormalities. Budesonide added to the coculture system dose-dependently inhibited the following functional T84 abnormalities measured in Ussing chambers: reduced transport responses (decreased short-circuit current changes to carbachol (raises [Ca2+]i) and forskolin (raises cAMP, cyclic adenosine monophosphate(i)); and increased permeability (decreased resistance and increased fluxes of 3H-mannitol and 51CrEDTA). For the beneficial effects of budesonide to be observed, PBM pretreatment (> or = 3 hr) and daily addition (for 2 days) to the coculture system was necessary. Budesonide (10(-7) M) dramatically reduced A-PBM proliferation (measured by 3H-thymidine incorporation) and cytokine (IL-1beta, IL-2, IL-6, IFN-gamma, TNF-alpha) production, but was not cytotoxic to immune cells. Budesonide treatment of T84 epithelial cells alone did not directly affect epithelial physiology, nor did it prevent epithelial abnormalities evoked by subsequent exposure to A-PBM or conditioned media from immune cells. Our studies showed that budesonide prevents epithelial dysfunction in this model by inhibiting activation of both T cells and monocytes.

Adult↗

Naloxone exacerbates intestinal and systemic anaphylaxis in the rat.

Following sensitization to ovalbumin (OA), male Wistar rats were pretreated with naloxone (20 mg/kg i.p.) and subjected to antigen challenge (3 mg OA i.p.). Naloxone exacerbated both systemic and intestinal anaphylaxis when injected 10 and 90 min before the antigen challenge. This was evidenced by a more pronounced drop in rectal temperature, higher hematocrit values, and by an enhanced elevation of basal short-circuit current (an indication of the secretory tone of the small intestine studied in Ussing chambers). Pretreatment with an equipotent does of methylnaloxone (200 mg/kg i.p.), a peripherally acting opiate antagonist, exacerbated the indices of intestinal anaphylaxis but had no apparent effect on indices of systemic anaphylaxis. Thus, our data strongly suggest that in the rat, components of the systemic hypersensitivity reaction are mediated through central opioid receptors, whereas the changes in gut function characterizing intestinal anaphylaxis are mediated through peripheral opioid receptors.

Anaphylaxis↗

Immediate hypersensitivity in the Flinders rat: further evidence for a possible link between susceptibility to allergies and depression.

Rats of the Flinders sensitive line (FSL, selectively bred for their increased cholinergic activity and used as a genetic animal model of depression) were compared with their control counterparts, the Flinders resistant line, for their susceptibility to anaphylaxis and the response of small intestinal tissues to the muscarinic agonist, bethanechol. Following sensitization to ovalbumin (OA), rats of both lines were challenged in vivo either with 3 mg OA i.p. or with saline. In spite of the absence of line-related differences in IgE titers, FSL rats were more susceptible to the induction of anaphylactic shock as evidenced by (1) more pronounced mast cell degranulation; (2) a greater drop in rectal temperature; (3) higher hematocrit values; and (4) changes in gut function characterized by an elevation of basal short-circuit current and increased conductance (indicating increases in transport tone and permeability) of the tissues mounted in Ussing chambers. Thus, this study provides further evidence for a common cholinergic mechanisms in susceptibility to both allergies and depression.

Anaphylaxis↗

Role of T lymphocytes in secretory response to an enteric nematode parasite. Studies in athymic rats.

Athymic (nude) rats have been used to assess the role of thymus-dependent T cells in the control of the intestinal response following infection with the enteric parasite, Nippostrongylus brasiliensis. Tissues from infected rats were excised on days 4, 7, 10, and 21 postinfection (p-i) for physiological and morphological studies; uninfected (day 0) rats served as controls. In response to the worm burden, jejunal tissues displayed a secretory response, indicated by an elevated baseline short-circuit current (Isc) on days 7 and 10 p-i, and were more responsive to histamine than control tissues. Despite this enhanced secretory response, approximately 35% of the worm burden was still present on day 21 p-i (compared with expulsion of > 95% by day 14 p-i in normal rats). Mast cell activation and hyperplasia, increased goblet cell (implying increased mucus synthesis) and intraepithelial leukocyte numbers, and abnormalities in Isc responses after electrical stimulation of enteric nerves were identified following infection. These events in nude rats were attenuated or delayed in onset as compared with conventional immunocompetent rats. Our results support the postulate that thymus-dependent T cells regulate the timing and/or nature of the mucosal response to enteric parasitic infections. However, ion secretion was not altered in the absence of T cells and, therefore, is more likely to be a consequence of mast cell activation.

Analysis of Variance↗

Substance P induces ion secretion in mouse small intestine through effects on enteric nerves and mast cells.

We used genetically mast cell-deficient WBB6F1 W/Wv (W/Wv) mice and congenic WBB6F1 +/+ normal (+/+) mice to examine the role of mast cells in substance P-induced intestinal ion secretion. Isolated sheets prepared from segments of the midportion of the small intestine were studied in Ussing chambers. Substance P caused a dose-dependent increase in short-circuit current (Isc) that was approximately 50% less in intestine from W/Wv than from +/+ mice. Similar results were obtained for substance P-(4-11) (the COOH terminus) and substance P methyl ester [a selective neurokinin (NK)-1 agonist]. Histamine H1 or H2 antagonists reduced the Isc responses to substance P in intestine from +/+ mice but had no effect in intestine from W/Wv mice. In addition, reconstitution of intestinal mast cells in W/Wv mice by intravenous injection of +/+ bone marrow cells normalized the tissues' secretory responses to substance P or substance P methyl ester. However, in W/Wv and +/+ mice, the selective NK1 antagonist CP-96345 virtually abolished intestinal responses to substance P, and the responses were also markedly inhibited by neural blockade with tetrodotoxin. In contrast, in tetrodotoxin-pretreated intestine, histamine antagonism caused a further reduction in the responses to substance P only in +/+ mouse tissues. Taken together, our results suggest that the effects of substance P on intestinal Isc KN1 receptors but that the neuropeptide acts via effects on enteric nerves and mast cells. The data thus support the concept that mast cells and enteric nerves participate in the regulation of substance P-induced intestinal ion secretion.

Animals↗

Production of IgE antibody and allergic sensitization of intestinal and peripheral tissues after oral immunization with protein Ag and cholera toxin.

Cholera toxin (CTX) is a potent oral adjuvant for the induction of mucosal IgA Ab responses protein Ags. We examined the Ab responses and allergic sensitization of several strains of mice to protein Ags, administered orally with CTX. The mice made strong IgA and IgG1 serum Ab responses, but little IgG2a Ab to Ags such as hen egg lysozyme (HEL) and OVA. However, when given a subsequent i.p. challenge with Ag alone, the same mice had immediate hypersensitivity reactions that included respiratory distress and death. Within 10 min of i.p. challenge, immunized mice had high levels of plasma histamine and extensive degranulation of mast cells in target tissues. These mice had detectable serum IgE Ab. Ag administered orally with the B subunit (CTB) of CTX did not sensitize mice. Intestinal tissues taken from these mice had Ag-specific ion-secretory responses in vitro, typical of intestinal anaphylaxis. Ag given s.c. without adjuvant could also sensitize for systemic and intestinal anaphylaxis. Sensitization with HEL given s.c. was dose dependent and correlated with a critical amount of HEL in the circulation. HEL was detected in the circulation after oral immunization, but CTX did not increase the uptake of HEL. Thus, oral immunization with a protein Ag in the presence of CTX can sensitize an animal for systemic and intestinal anaphylaxis. These results suggest a cautious approach to the use of CTX as an adjuvant in oral vaccines, and provide a new model to study immediate hypersensitivity reactions to intestinal Ag.

Administration, Oral↗

Strain-related difference in susceptibility to anaphylactic shock correlates with measures of spontaneous activity.

The onset and severity of anaphylactic reactions in the rat have so far been related to Pavlovian conditioning, previous exposure to stress, and pretreatment with opioid agonists and antagonists. In this study, we compared two strains of rats derived from the same genetic pool (one outbred, Wistar, and one inbred, Wistar-Kyoto) for their susceptibility to anaphylactic shock (AS). In Experiment 1, baseline differences in the overt behavior of the two strains were established. In Experiment 2, following sensitization to ovalbumin, rats of both strains were challenged with antigen by either the intraperitoneal or the intragastric route. Wistar-Kyoto rats were more susceptible to the induction of AS as evidenced by a more pronounced drop in rectal temperature and greater intensity of clinical signs, although there was no evidence for strain-related differences in IgE titres. Experiment 3 replicated and extended the findings of Experiment 2. Again, Wistar-Kyoto rats were found to be more susceptible to the induction of AS. In addition to a greater drop in rectal temperature and intensity of clinical signs, more pronounced changes in gut function were found in the Wistar-Kyoto strain. This was indicated by an elevation of basal short-circuit current (an indication of the transport tone of the tissue mounted in the Ussing chambers). Most importantly, there was a strong linear relationship between measures of overt behaviour and various physiological indices of AS. This finding indicates that the same genetic basis may be responsible for the observed strain-related differences in behavior and susceptibility to AS, and that variations in nonimmunological factors of mast cell activation may also contribute to the observed differences in the susceptibility to anaphylactic reactions.

Anaphylaxis↗

Effect of region, temperature and neuronal blockade on sodium and 51Cr-EDTA transport across canine gastrointestinal mucosae in vitro.

Muscle-stripped segments of canine stomach, ileum and colon have been used to identify regional differences in the movement of sodium and 51Cr-EDTA, and the effect that temperature has on the flux of these probes. Flux measurements revealed that the rate of movement of both probes followed the pattern ileum > colon > stomach. Analysis of flux ratios at 25 degrees C and 37 degrees C revealed that sodium moves actively and 51Cr-EDTA moves passively across gastrointestinal epithelia. Blockade of tonic neuronal activity did not affect the in vitro movement of either probe across the ileum.

Animals↗

Integrative immunophysiology in the intestinal mucosa.

Over the past ten years, it has become evident that intestinal epithelial functions such as ion secretion are a host defense response to the presence of antigens, microbes, and other noxious substances in the gut lumen. Such responses are mediated by the activation of immune cells in the mucosa causing release of chemical mediators that act directly or indirectly on the epithelium. Frequently, immune cell products stimulate enteric nerves resulting in amplification. Thus immune cells and nerves form interactive units that can recognize various stimuli both specifically and nonspecifically and initiate mechanisms to eliminate offending material. Here, we review the current state of knowledge regarding immune regulation of epithelial physiology with particular emphasis on the ability of immune cells and their products (biogenic amines, cytokines, arachidonic acid metabolites, oxidants) to alter electrolyte transport. The mast cell will be highlighted in this scheme as this cell has been, and continues to be, the focus of extensive research efforts. However, recently it has become apparent that cells such as lymphocytes, macrophages, and polymorphonuclear leukocytes also play important roles in immunophysiology. The effect of immune cell activation on epithelial functions other than transport, such as permeability, proliferation, and antigen presentation, will be described where appropriate. Finally, we will present evidence that the enterocyte can express an "activated" phenotype and thus participate directly in mucosal immune responses.

Animals↗

Pertussis toxin stimulates hypersensitivity and enhances nerve-mediated antigen uptake in rat intestine.

We previously reported that intestine from rats sensitized to ovalbumin (Ova), using Bordetella pertussis vaccine as adjuvant, demonstrated a rapid secretory response [increase in short-circuit current (Isc)] to Ova upon secondary challenge. Here, we examined the role of pertussis toxin, the active component of the vaccine, in the response. Sensitization of Sprague-Dawley rats by intraperitoneal injection of recombinant wild-type pertussis toxin (wPT) plus Ova enhanced intestinal responses (at day 14: approximately 20-fold for luminal antigen, approximately 2.5-fold for serosal antigen) compared with rats sensitized by injection of Ova alone. In contrast, sensitization with an enzymatically inactive mutant pertussis toxin (mPT, different in two amino acids) produced no significant effect. Ova-specific immunoglobulin (Ig) E and IgG2a antibodies and greater numbers of mucosal mast cells were documented in wPT-sensitized rats. In addition, the Isc response to electrical transmural stimulation of nerves in intestinal preparations was significantly augmented. Neurotoxin inhibited the secretory response to luminal but not serosal antigen. Immunophysiological stimulation by wPT was still evident 8 mo postsensitization. Our studies indicate that pertussis toxin causes long-lasting hypersensitivity to coadministered antigens, involving increased production of reaginic antibodies, hyperplasia of mucosal mast cells, and enhanced neurally mediated uptake of antigen across the intestinal epithelium. These findings suggest a potential role for bacterial products in the development of immunophysiological reactions to ingested antigens.

Animals↗

Acute stressors stimulate ion secretion and increase epithelial permeability in rat intestine.

Wistar-Kyoto rats were subjected to 4 h restraint stress (RS) or cold restraint stress (CRS), and jejunal tissues were examined in Ussing chambers for alterations in transport functions compared with tissues from unstressed control rats. The baseline short-circuit current (Isc) was significantly elevated in tissues from RS (approximately 50%) and CRS (100%). Substitution of Cl- eliminated the abnormality, suggesting that stress stimulates Cl- secretion. Electrical transmural stimulation of enteric nerves caused a transient increase in Isc in all tissues. The magnitude of this response was significantly less in tissues from CRS than from control rats; however, the ability of the epithelium to secrete in response to exogenous stimulation with bethanechol or vasoactive intestinal polypeptide was unimpaired, implicating a neural change. Tissue conductance was higher in jejunum from RS and CRS rats than from controls. Increased intestinal epithelial permeability in stressed rats was confirmed by significantly greater fluxes of the inert radiolabeled probes, [3H]mannitol and 51Cr-labeled EDTA. No structural changes were observed. We conclude that acute stressors have profound effects on intestinal epithelial physiology, stimulating ion secretion and reducing barrier function.

Acute Disease↗

Intestinal epithelial function: the case for immunophysiological regulation. Implications for disease (2).

Substantial amounts of data have been reported showing a role for immunomodulation of epithelial function (particularly ion secretion and permeability) using animal models of anaphylactic reactions. In part one of this review we outlined the main immune cell types and mediators/cytokines that are currently known to influence epithelial physiology either directly, or indirectly via an intermediate cell type. Here we will expand on the significance of these studies and show how antigenic activation of the mucosal immune system can evoke changes in epithelial function that may be beneficial to the host by mediating loss/inactivation of the antigen. However, a continued and inappropriate immune stimulation can lead to pathophysiological reactions and disease. Thus, we will present data on immune regulation of epithelial function with direct applicability to understanding the mechanism underlying human intestinal inflammatory and secretory disease. Finally, we highlight key strategic points in the cascade of immune events that can control epithelial function and thus may be of relevance in the formulation of new therapeutic approaches to intestinal inflammation.

Animals↗