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A porous defense: the leaky epithelial barrier in intestinal disease.

A critical function of the intestinal mucosa is to form a barrier that separates luminal contents from the interstitium. This intestinal barrier is compromised in a number of intestinal diseases, most notably inflammatory bowel disease. In vitro studies have demonstrated that cytokines elaborated by immune cells can cause the mucosal barrier to become leaky; these cytokines are known to be increased in intestinal mucosa involved in inflammatory bowel disease. Detailed information describing the mechanisms by which altered cytokine signaling occurs is not available, but recent data implicate the cytoskeleton within epithelial cells as a critical regulator of the mucosal barrier under physiological and pathophysiological conditions. Using available data, we describe a model of intestinal disease where an initial insult to the epithelial barrier may trigger a self-amplifying cycle of immune activation, cytokine release, and further barrier dysfunction. This model is supported by the observation that pharmacological abrogation of cytokine signaling corrects both barrier defects and clinical disease in animal models and human patients, although such therapy clearly has multiple mechanisms. Other therapeutic targets that represent strategies to prevent or reverse disease processes are also considered. The overarching hypothesis is that modulation of the mucosal epithelial barrier plays a critical role in the initiation and propogation of inflammatory intestinal diseases.

Animals↗

[Fucose and other neutral hexoses in the feces of patients with nonspecific ulcerative colitis].

Secretion of glycoproteins with protective mucus of large intestine was studied by means of estimation of the carbohydrate components in feces of patients with unspecific ulcerous colitis. A decrease in daily excretion with feces of glycoproteins and glycopeptides was detected in these patients as well as in the patients with chronic pancreatitis. Under conditions of unspecific ulcerous colitis distinct from chronic pancreatitis content of fucoglycoproteins, main chemical protectors of gastrointestinal tract, was primarily decreased. The defect of large intestine mucus might be responsible for impairment of barrier function of the intestinal mucose and to contribute to ulcer development.

Adolescent↗

Sulfasalazine transport in in-vitro, ex-vivo and in-vivo absorption models: contribution of efflux carriers and their modulation by co-administration of synthetic nature-identical fruit extracts.

Sulfasalazine is characterised by low oral bioavailability. In this study, its intestinal transport characteristics were studied in an in-vitro, ex-vivo and in-situ system. The absorptive transport of sulfasalazine across Caco-2 monolayers appeared to be lower than the secretory transport (P(app-abs) = 0.21 +/- 0.02 x 10(-6) cm s(-1) and P(app-secr) = 2.97 +/- 0.30 x 10(-6) cm s(-1), respectively). This polarity in transport of sulfasalazine was not mediated by P-glycoprotein (P-gp), as inclusion of verapamil (100 microM) did not have any effect on the transport polarity of sulfasalazine. However, inclusion of the multidrug resistance-associated protein (MRP) inhibitors benzbromarone (50 microM) and sulfinpyrazone (1 mM), and the glutathione-depleting agent chlorodinitrobenzene (100 microM), resulted in an increased absorptive transport of sulfasalazine in the Caco-2 system (P(app-abs) = 0.64 +/- 0.02, 0.51 +/- 0.04 and 0.60 +/- 0.03 x 10(-6) cm s(-1), respectively). The interference of carriers implies that, during absorption, interactions with food components may occur at the level of this carrier. Therefore, the effect of food extracts was studied in a parallel set of experiments. For two standardized nature-identical fruit extracts (pineapple and apricot extract) a concentration-dependent absorption-enhancing effect could be observed in the Caco-2 system. The functional expression of similar carriers was also demonstrated in rat ileum in the Ussing chamber system. Interaction studies with fruit extracts in the Ussing chamber system, as well as in the in-situ intestinal perfusion study, revealed a 2- to 4-fold increase in the absorptive transport of sulfasalazine. These results indicate that food components in the intestinal lumen can have a significant impact on the intestinal absorption characteristics of sulfasalazine by modulating the biochemical barrier function of the intestinal mucosa.

Animals↗

Effects of alanyl-glutamine on gut barrier function.

Traditional parenteral nutrition (PN) and chemotherapy may lead to changes of mucosal morphology and gut barrier function. This study investigated the effect of alanyl-glutamine (Ala-Gln) on intestinal morphology and gut barrier function in PN-fed rats challenged with 5-fluorouracil (5-FU). Male Wistar rats were centrally catheterized and then randomized to receive PN devoid of glutamine (control group; n = 10) or 3% Ala-Gln-supplemented PN (study group; n = 10) for 7 d. Intestinal permeability to lactulose and mannitol was measured before and 72 h post 5-FU administration on day 4. Serum glutamine concentration and jejunal mucosal structure were maintained in the study group compared with the control group (P < 0.05). The bacterial translocation rates of mesenteric lymph nodes in the study group were significantly lower than the control (30% versus 90%; P < 0.05). No significant differences was found between the control and study groups with respect to ratio of lactulose and mannitol excreted in urine (L/M) (0.026 +/- 0.005575 versus 0.022 +/- 0.03079; P > 0.05) on day 3. On day 7, L/M was unaltered in the study group, whereas it increased in the control (0.042 +/- 0.004634 versus 0.029 +/- 0.002020; P < 0.05). We concluded that glutamine dipeptide maintained intestinal mucosal morphology and barrier function in PN-fed rats challenged with 5-FU.

Animals↗

Effects of alanyl-glutamine on intestinal adaptation and bacterial translocation in rats after 60% intestinal resection.

The effects of alanyl-glutamine dipeptide (Ala-Gln)-enriched parenteral nutrition on intestinal mucosa and gut barrier function were investigated. Wistar rats were studied. After moderate surgical stress was induced by 60% resection of the small intestine, the rats were randomized to three groups: the chow group was given standard rat chow; the PN group received standard parenteral nutrition (PN); and the Ala-Gln group received glutamine dipeptide-enriched parenteral nutrition (3% Ala-Gln). Rats were maintained on their respective diets for 8 days. The chow and Ala-Gln groups maintained serum glutamine concentrations, intestinal mucosal thickness and villus height. Bacterial translocation rates in the chow and Ala-Gln groups were 20%, which was significantly less than that in the PN group (70%, P < 0.05). The results indicated that Ala-Gln-enriched parenteral nutrition maintains intestinal adaptation and gut barrier function after massive intestinal resection and parenteral nutrition.

Journal Article↗

Dietary fructo-oligosaccharides dose-dependently increase translocation of salmonella in rats.

Prebiotics, such as fructo-oligosaccharides (FOS), stimulate the protective gut microflora, resulting in an increased production of organic acids. This may result in increased luminal killing of acid-sensitive pathogens. However, host defense against invasive pathogens, like salmonella, also depends on the barrier function of the intestinal mucosa. Rapid fermentation of prebiotics leading to high concentrations of organic acids may impair the barrier function. Therefore, we determined the dose-dependent effect of dietary FOS on the resistance of rats to Salmonella enteritidis. Male Wistar rats were fed restricted quantities of a "humanized" purified diet supplemented with 0, 3 or 6 g/100 g of FOS (n = 7 in the 6% FOS group and n = 8 in the other diet groups). After an adaptation period of 2 wk, rats were orally infected with 1.7 x 10(10) colony-forming units of S. enteritidis. Supplement-induced changes in the intestinal microflora and fecal cation excretion were determined before and after infection. Cytotoxicity of fecal water was determined with an in vitro bioassay, and fecal mucins were quantified fluorimetrically. Colonization of S. enteritidis was determined by quantification of salmonella in cecal contents and mucosa. Translocation of S. enteritidis was quantified by analysis of urinary nitric oxide metabolites in time. Before infection, FOS decreased cecal and fecal pH, increased fecal lactic acid concentration and increased bifidobacteria and enterobacteria. FOS also increased cytotoxicity of fecal water and fecal mucin excretion, indicating mucosal irritation. Remarkably, FOS dose-dependently increased salmonella numbers in cecal contents and mucosa and caused a major increase in infection-induced diarrhea. In addition, FOS enhanced translocation of salmonella. Thus, in contrast to most expectations, FOS dose-dependently impairs the resistance to salmonella infection in rats. These results await verification by other controlled animal and human studies.

Animals↗

The effect of short-term starvation on mucosal barrier function in the newborn rabbit.

The compromised human newborn frequently presents with overwhelming feeding problems which lead to inadequate intake. These problems may affect the development of the small intestine, especially mucosal barrier function, leading to increased infections and susceptibility to allergens. To study this, an animal model was established using neonatal rabbits deprived of nutrients from birth until 72 h. Mucosal barrier function was compared in deprived and control (naturally fed 72-h-old animals) rabbits by measuring immunoreactive bovine serum albumin in serum 4 h after intragastric infusion of crystalline bovine serum albumin (200 mg/100 g body weight). Trypsin activity was measured in rinse fluid obtained from the small intestine. Representative sections of jejunum from control and experimental animals were formalin fixed and stained with hematoxylin and eosin for morphologic comparison. Following the bovine serum albumin feeding, a significantly increased serum immunoreactive bovine serum albumin and significantly decreased trypsin-like activity of the small intestinal rinse fluid was noted in starved animals compared to controls. In addition, the enterocytes of malnourished animals were more cuboidal and contained fewer and smaller supranuclear granules on microscopic examination than the enterocytes of controls. This study suggests that short-term starvation in newborns affects mucosal barrier function. Acute starvation may place newborns at increased risk for infections and allergic disease.

Acute Disease↗

Claudins regulate the intestinal barrier in response to immune mediators.

BACKGROUND & AIMS: To determine the functional role of immune mediators in the formation of the intestinal barrier, we have examined the regulation of claudin expression by interleukin (IL)-17 in human intestinal epithelial cells. METHODS: Expression of claudins, extracellular signal-related (ERK) mitogen-activated protein kinases (MAPKs), and activated ERK MAPKs was determined by immunoblotting. Claudin membrane association was assessed by immunohistochemistry and claudin messenger RNA expression by Northern blot analysis. Intestinal epithelial barrier function was characterized through transepithelial electrical resistance and mannitol tracer flux. RESULTS: IL-17 induced the development of a paracellular barrier of T84 cell monolayers. Inhibition of ERK activation with the MEK inhibitor PD98059 blocked IL-17 as well as basal development of tight junctions in T84 cells. IL-17 induced formation of tight junctions correlated with up-regulation of claudin-1 and claudin-2 gene transcription. Inhibition of MEK reduced the activated and basal expression of claudin-2 messenger RNA and protein expression. Functional MEK was required for the expression and membrane association of claudin-2 but not claudin-1 in T84 cells. CONCLUSIONS: MEK activity is required for claudin-mediated formation of tight junctions. IL-17 is able to regulate the intestinal barrier through the ERK MAPK pathway.

Blotting, Northern↗

[Glutamine dipeptide attenuate mucosal atrophic changes and preservation of gut barrier function following 5-FU intervention].

Traditional parenteral nutrition (PN) and chemotherapy may lead to changes mucosal morphology and gut barrier function. To investigate the effects of alanyl-glutamine on intestinal mucosal morphology and gut barrier function in PN-fed rats challenged with 5-FU male Wistar rats were central catheterized and randomily divided into two groups: PN group (n = 10) that received traditional parenteral nutrition solution only, and Ala-Gln group (n = 10) that received glutamine dipeptide enriched nutritional solution (3% Ala-Gln). The rats were maintained on their respective diets for 7 days. 5-FU (75 mg/kg) was injected intraperitoneally at 8 am on day 4. All rats were gavaged with lactulose (100 mg) and mannitol (50 mg) in 2ml before and three days after administration of 5-FU. Ala-Gln group maintained serum glutamine concentration, intestinal mucosal morphology. While bacterial translocation rates in ala-Gln group was 30%, in PN group was 90% (P < 0.05). Similar intestinal permeability was observed on day 3 in both groups. The control group had a significantly increased intestinal permeability on day 7 (P < 0.05), while Ala-Gln group maintained the intestinal permeability. It was suggested that alanyl-glutamine maintained intestinal morphology and gut barrier function in PN-fed rats challenged with 5-FU.

Animals↗

Transforming growth factor beta1 ameliorates intestinal epithelial barrier disruption by Cryptosporidium parvum in vitro in the absence of mucosal T lymphocytes.

Exposure to oocysts of the protozoan Cryptosporidium parvum causes intestinal epithelial cell dysfunction in vivo and in vitro, but effective means by which mucosal injury might be prevented remain unclear. We examined the ability of transforming growth factor beta1 (TGF-beta1)-a cytokine synthesized and released by cells in the intestine-to preserve the barrier function of human colonic epithelia when challenged with C. parvum oocysts and then studied the mechanisms involved. Epithelial barrier function was monitored electrophysiologically, receptors for TGF-beta1 were localized by confocal microscopy, and TGF-beta1-induced protein kinase C activation was detected intracellularly by translocation of its alpha isozyme. TGF-beta1 alone enhanced intestinal epithelial barrier function, while exposure to C. parvum oocysts (> or =10(5)/monolayer) markedly reduced barrier function to < or =40% of that of the control. When epithelial monolayers were pretreated with TGF-beta1 at 5.0 ng/ml, the barrier-disrupting effect of C. parvum oocysts was almost completely abrogated for 96 h. Further investigation showed that (i) the RI and RII receptors for TGF-beta1 were present on 55 and 65% of human epithelial cell line cells, respectively, over a 1-log-unit range of receptor protein expression, as shown by flow cytometry and confirmed by confocal microscopy; (ii) only basolateral and not apical TGF-beta1 exposure of the polarized epithelial monolayer resulted in a protective effect; and (iii) TGF-beta1 had no direct effect on the organism in reducing its tissue-disruptive effects. In exploring mechanisms to account for the barrier-preserving effects of TGF-beta1 on epithelium, we found that the protein kinase C pathway was activated, as shown by translocation of its 80-kDa alpha isozyme within 30 s of epithelial exposure to TGF-beta1; the permeability of epithelial monolayers to passage of macromolecules was reduced by 42% with TGF-beta1, even in the face of active protozoal infection; and epithelial cell necrosis monitored by lactate dehydrogenase release was decreased by 50% 70 h after oocyst exposure. Changes in epithelial function, initiated through an established set of surface receptors, likely accounts for the remarkable barrier-sparing effect of nanogram-per-milliliter concentrations of TGF-beta1 when human colonic epithelium is exposed to an important human pathogen, C. parvum.

Animals↗

Evaluation of damaged small intestine of mouse following methotrexate administration.

PURPOSE: Methotrexate (MTX) treatment causes damage to the small intestine, resulting in malabsorption and diarrhea. The active and passive transport capacities of the small intestine are decreased by the treatment. The purpose of this study was to evaluate the damage to the small intestine of mice caused by MTX administration by examining the permeability of the paracellular pathway of the small intestinal epithelium. METHODS: MTX was administered orally to male ddY mice once daily for 1-6 days. The permeability of the small intestine to the nonabsorbable markers phenol red (PR) and fluorescein isothiocyanate (FITC) dextrans was examined using everted segments of the intestine. RESULTS: PR and FITC dextran permeation through the small intestine increased significantly in parallel with changes in body weight of the mice, wet weight of the small intestine and chemical composition of the small intestinal epithelium. CONCLUSIONS: In addition to changes in permeation through the transcellular pathway reported previously, this study revealed that MTX treatment disorders the paracellular barrier function of the small intestinal epithelium, resulting in increased permeation of nonabsorbable markers via the paracellular pathway of the small intestinal mucosa. The present approach to the examination of the barrier function of the intestinal epithelium could be of great use in evaluating the damage to the small intestine and malabsorption.

Administration, Oral↗

[Portal and systemic bacteremia as a manifestation of the functional failure of the enteral barrier in acute intestinal obstruction].

A complex investigation of 72 patients, with acute bowel obstruction (ABO) having clinico-laboratory signs and symptoms of endotoxicosis (ET), was carried out. It was proven that ABO was accompanied by profound decrease of the immuno-secretory function of the small bowel and its extensive bacterial contamination as a result of significant increase in the concentration of gram-negative symbiotic microflora, which leads to increased permeability of bowel barrier. Consequently there is massive translocation of the internal medium of the organism by enteral microflora and most of all in the portal zone and in the presence of inadequate hepatic barrier function--the systemic blood supply which corresponds to the clinical picture of endotoxic shock.

Acute Disease↗

The role of the imino transporter protein in sepsis-impaired intestinal proline absorption.

Recently, sepsis has been shown to impair intestinal amino acid absorption in addition to gut metabolic and barrier functions. We investigated intestinal proline absorption in a rabbit model of sepsis. Twelve hours after intraperitoneal injection of lipopolysaccharide, proline uptake by everted jejunal sacs prepared from septic animals (480.4 +/- 67.4 nmol per sac per hour) was significantly reduced compared with controls (846.8 +/- 73.5 nmol per sac per hour) (p < .001 by t test). We next investigated whether reduced expression of transporter proteins contributed to the impaired intestinal proline uptake during sepsis. The proline (imino) carrier of rabbit jejunum is covalently bound by fluorescein isothiocyanate (FITC) and/or phenylisothiocyanate with irreversible inhibition of proline uptake. This binding and inhibition is prevented by sodium chloride and L-proline. Single-cell suspensions of rabbit enterocytes were prepared 12 hours after intraperitoneal injection of lipopolysaccharide/saline or saline alone. Enterocytes were incubated for 30 minutes in tris(hydroxymethyl)aminomethane/ethylenediaminetetraacetate (Tris/EDTA) buffer; buffer with 1 mM phenylisothiocyanate; or buffer with 10 mM proline, 100 mM sodium chloride, and 1 mM phenylisothiocyanate. After incubation with 10 microM FITC in Tris/EDTA buffer for 15 minutes, the percent positivity and fluorescent intensity of FITC binding to enterocytes were determined by using flow cytometry. Sepsis significantly reduced the percentage of enterocytes binding FITC and the fluorescent intensity of FITC binding of proline/sodium chloride-pretreated or untreated cells. This suggests that sepsis depresses the expression of imino transporters by rabbit enterocytes, which may explain the reduced intestinal proline absorption.

Amino Acid Transport Systems, Neutral↗

Probiotics as functional food in the treatment of diarrhea.

PURPOSE OF REVIEW: A disturbance in microbial balance of the gastrointestinal tract is often associated with diarrhea. Therefore, probiotics, as beneficial microorganisms for host health, have attracted clinical attention for their potential therapeutic application in the treatment of diarrhea. This review focuses on new research findings relevant to the effects of probiotics on diarrhea prevention and treatment and potential mechanisms of action for this alternative therapy for diarrhea. RECENT FINDINGS: Clinical trials suggest potential beneficial effects of probiotic therapy for preventing and treating antibiotic-associated diarrhea, acute diarrhea including rotavirus-induced diarrhea, traveler's diarrhea, and diarrhea-predominant irritable bowel syndrome. The most extensively studied probiotics for diarrhea are Lactobacillus, Bifidobacterium and Saccharomyces, with potential mechanisms of therapeutic action based on the protection of intestinal epithelial cell and barrier function, prevention of enterotoxin binding to intestinal epithelial cells, and regulation of intestinal microbial environment. SUMMARY: Growing evidence suggests that probiotics may serve as a functional food in the treatment of diarrhea. Remaining challenges include identifying mechanisms of action to provide the basis of more refined hypothesis-driven clinical trials. The correct combination and concentration of probiotics applied to the appropriate gastrointestinal disorders may improve the efficacy of this approach for diarrhea and other diseases.

Bifidobacterium↗

Blastocystis hominis infection and intestinal injury.

Blastocystis hominis is an enteric protozoan associated with clinical illness. To determine the prevalence of intestinal injury in patients with B. hominis infection, the authors prospectively evaluated 18 patients with B. hominis infection by endoscopy and a test of intestinal permeability. Seventeen patients had gastrointestinal symptoms. Colonic mucosa appeared normal by lower endoscopy in 12 of 13 patients, and was friable slightly in 1. Duodenal mucosa was normal by upper endoscopy in nine patients. Pathologic examination of mucosal biopsy specimens did not demonstrate evidence of mucosal invasion. 51Cr-edetic acid (51Cr-EDTA) was given to the 18 patients with stools positive for B. hominis and to 32 healthy control subjects. Approximately 100 uCi of 51Cr-EDTA was given orally after an overnight fast, and urine was collected for the following 24 hours. Mean 24-hour urinary excretion of 51Cr-EDTA, calculated as a percent of the administered dose, was 1.31% (0.34-2.76%) in patients with B. hominis infection and 1.99% (0.59-3.48%) in the control subjects. The intestinal permeability to 51Cr-EDTA in blastocystis-infected individuals was not increased, but was decreased significantly compared with healthy subjects (p < 0.005). Therefore, in a group of symptomatic patients with B. hominis infection, endoscopy typically did not show evidence of significant intestinal inflammation, and results of intestinal permeability testing with 51Cr-EDTA did not suggest impaired barrier function of the intestinal mucosa. The clinical literature on B. hominis infection and intestinal injury is reviewed.

Adult↗

Characteristics of the intestinal epithelial barrier during dietary manipulation and glucocorticoid stress.

OBJECTIVES: a) To determine the significance of stress-induced alterations in intestinal permeability by measuring the transmucosal flux of formyl-methionyl-leucyl-phenylalanine (f-MLP), a ubiquitous neutrophilic chemoattractant present in the human and rodent colon; and b) to determine whether stress and/or diet influence(s) bacterial adherence-induced changes in epithelial permeability by affecting the production of secretory immunoglobulin A (IgA), the main immune mechanism preventing bacterial adherence. DESIGN: Prospective, randomized, controlled study. SETTING: University animal research laboratory. SUBJECTS: Female Fischer rats. INTERVENTIONS: Rats were randomly assigned to four groups of seven animals each. Groups of animals were assigned to receive saline or dexamethasone (0.8 mg/kg ip) and were either starved (5% dextrose in water ad libitum) or fed (water and rat chow) for 48 hrs. MEASUREMENTS AND MAIN RESULTS: Mucosal barrier function was evaluated by measuring secretory IgA, bacterial adherence to the intestinal mucosa, and transepithelial electrical resistance, a measure of tight junction permeability. The f-MLP permeation across the mucosa was also determined in segments with significant permeability changes. Results indicate that starvation in dexamethasone-treated rats significantly impairs secretory IgA, promotes bacterial adherence to the mucosa, and results in increased intestinal permeability to f-MLP. These effects are significantly attenuated by the feeding of rat chow. CONCLUSIONS: Alterations in intestinal barrier function are characterized by depressed IgA, bacterial adherence to the intestinal mucosa, and permeation of clinically relevant proinflammatory luminal macromolecules (f-MLP). Enteral stimulation with foodstuffs is a necessary protective measure to prevent altered epithelial barrier function during glucocorticoid stress.

Animals↗

The toxin of diarrheic shellfish poisoning, okadaic acid, increases intestinal epithelial paracellular permeability.

BACKGROUND & AIMS: Diarrhea associated with shellfish poisoning is poorly understood. The responsible toxin, dinophysistoxin 1, has been identified as okadaic acid, a potent phosphatase inhibitor, but its effects on intestinal epithelia have not been examined. The aim of this study was to investigate the effect of okadaic acid on intestinal epithelial function, both Cl- secretion and barrier function. METHODS: Cultured human intestinal epithelial T84 cell monolayers were used. The effect of okadaic acid on these monolayers was assessed by measuring electrophysiological parameters, lactate dehydrogenase release, and 22Na+ and [3H]mannitol flux rates. Protein phosphorylation studies were performed to identify potentially involved proteins. RESULTS: Okadaic acid does not directly stimulate Cl- secretion from intestinal epithelial cells. On the contrary, the response to well-characterized secretagogues is attenuated by okadaic acid. However, it does decrease transepithelial electrical resistance in a polarized fashion without inducing cytotoxicity. Sodium-mannitol flux studies suggest that the observed decrease in resistance is attributable to an increase in paracellular permeability. CONCLUSIONS: Okadaic acid, the toxin responsible for diarrheic shellfish poisoning, does not stimulate Cl- secretion but increases the paracellular permeability of intestinal epithelia. This alteration in intestinal epithelial physiology may contribute to the diarrhea of shellfish poisoning.

Cell Membrane Permeability↗