Search PubMed⌕ Search

SEARCH · Search PubMed

Results for “Intestinal Inflammation”

Search indexed PubMed citations on genomics, clinical trials, systematic reviews and public health. Explore titles, authors and supplied subject terms, then open the PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 613 records · Page 34Linked to original sources

Microflora in inflammatory bowel diseases: a pediatric perspective.

Several lines of evidence link inflammatory bowel diseases to modifications of intestinal microflora. Epidemiologic and clinical data suggest a triggering role for select agents in ulcerative colitis and in Crohn disease. Experimental evidence indicates that intestinal microorganisms are needed for developing intestinal inflammation in IL-10 knockout mice, and this is associated with an increased number of adherent clostridia and a decrease of lactobacilli and bifidobacteria. It may be hypothesized that a host-agent-specific relationship leads to an abnormal immune response, which may be genetically driven in select inflammatory bowel diseases. However, different from adults, the pattern of intestinal microflora undergoes profound changes during the early stage of life, contributing to the development of the immune system. A close relationship exists between microbiologic and immunologic imprinting. The microbiologic imprinting in neonates may be modified using bacterial probiotics that colonize the intestine, modify the immune response, and decrease the risk for atopy. Probiotics may decrease the recurrences of inflammatory bowel diseases. Preliminary evidence of intestinal antiinflammatory effects has been detected in children with cystic fibrosis. Overall these data provide the rationale to investigate the interaction between intestinal microflora and the local and general immune response in children with, or at risk for, inflammatory bowel diseases. This approach may be a key for understanding the pathophysiology of intestinal inflammation and may disclose novel strategies to educate better the immune system, particularly during its developmental stage.

Animals↗

Antigranulocyte monoclonal antibody immunoscintigraphy in inflammatory bowel disease in children and young adolescents.

AIM: Diagnostic delay for inflammatory bowel disease (IBD) is frequent, especially in paediatric patients. Scintigraphy with labelled leucocytes has been proposed as a very sensitive diagnostic tool for detecting bowel inflammation. The aim of this study was to evaluate the sensitivity and specificity of immunoscintigraphy in the diagnosis and follow-up of children with IBD and to compare this technique with other diagnostic techniques. METHODS: Sixty-six children with histologically confirmed IBD were enrolled in the study. Twenty-one children in whom IBD was suspected but subsequently not confirmed were used as controls. A total of 138 immunoscintigraphies were performed using 99mTechnetium-labelled monoclonal anti-granulocyte antibodies. Immunoscintigraphy was also compared with other diagnostic techniques. RESULTS: Overall sensitivity of monoclonal antibody immunoscintigraphy (MoAb-IS) in patients with clinically active disease was 94% for Crohn's disease (CD) and 85% for ulcerative colitis (UC). Ultrasonography, endoscopy and radiology were carried out at the same time in 29 patients with CD and in 6 patients with UC: sensitivity of IS was 90% compared with 76% of colonoscopy, 75% for enemas, and 55% for sonography. IS was negative (specificity) in 24% of patients with CD and in 67% of patients with UC during remission, and in 64% of controls with other causes of intestinal inflammation. Diagnostic delay was significantly shorter when compared with a historical cohort of patients. CONCLUSION: Immunoscintigraphy is a highly sensitive detector of intestinal inflammation in young patients with IBD and can be useful for reducing diagnostic delay. However, its specificity is low and all positive cases must be confirmed histologically.

Adolescent↗

Leukocytapheresis as an adjunct to conventional medication for inflammatory bowel disease.

Inflammatory bowel disease is characterized by clinical remission and relapse caused by severe intestinal inflammation. Drug therapy for inflammatory bowel disease is associated with unpleasant side effects. Furthermore, efficacy of conventional drugs decreases with chronic use, which can be a major difficulty in the long-term management of this disease. In active inflammatory bowel disease, leukocytes are elevated with activation behavior and increased survival time, and mucosal neutrophil level parallels the severity of intestinal inflammation and predicts relapse. Leukocyte-derived inflammatory cytokines are suspected to be major factors in the initiation and perpetuation of inflammatory bowel disease. Accordingly, leukocytes should be appropriate targets for therapy. To reduce peripheral blood level of leukocytes, centrifugation has been used to deplete peripheral blood leukocytes; this provided the initial evidence that reducing the level of peripheral blood leukocytes can benefit patients with inflammatory disease. To overcome the limitations of centrifugation, membrane filters, such as the Cellsorba trade mark column and leukocyte-adsorbing beads containing column like Adacolumn, have been developed that are direct blood perfusion systems for removing any desired level of leukocytes. In initial independent clinical studies, these two new models have produced striking clinical efficacy, safety, and a marked reduction in the dose of corticosteroids used to induce remission of active inflammatory bowel disease. Leukocytapheresis has been associated with a significant decrease in the amount of several proinflammatory cytokines produced by peripheral blood leukocytes. Accordingly, the Japan Ministry of Health has now approved both methods for the treatment of active ulcerative colitis. Clinical data suggest that leukocytapheresis might be an effective adjunct to therapy for inflammatory bowel disease to promote remission, taper conventional drug dosage, and potentially reduce the number of patients who require colectomy. The results should further understanding of the pathophysiology of inflammatory bowel disease.

Anti-Inflammatory Agents↗

The simultaneous blockade of chemokine receptors CCR2, CCR5 and CXCR3 by a non-peptide chemokine receptor antagonist protects mice from dextran sodium sulfate-mediated colitis.

Chemokine receptors CCR2, CCR5 and CXCR3 are involved in the regulation of macrophage- and T cell-mediated immune responses and in the migration and activation of these cells. In order to determine whether blockade of these chemokine receptors modulates intestinal inflammation, we investigated here the effect of a non-peptide chemokine receptor antagonist, TAK-779 (N,N-dimethyl-N-[4-[[[2-(4-methylphenyl)-6,7-dihydro-5H-benzocyclohepten-8-yl]carbonyl]amino]benzyl]-tetrahydro-2H-pyran-4-aminium chloride), in mice with dextran sodium sulfate (DSS)-induced experimental colitis. C57BL/6 mice were fed 5% DSS in their drinking water for up to 7 days with or without the administration of TAK-779. The severity of inflammation in the colon was assessed by clinical signs and histological examination. Infiltration of inflammatory cells into the mucosa was analyzed by immunohistochemistry, and the expression of cytokine and chemokine mRNAs in tissues was quantitated by reverse transcription-PCR. During DSS-induced colitis, the recruitment of monocytes/macrophages into the colonic mucosa and the induction of proinflammatory cytokines correlated with the severity of intestinal inflammation. The onset of clinical signs and histopathologic features were delayed in animals treated with TAK-779. The expression of CCR2, CCR5 and CXCR3 mRNAs was inhibited in the TAK-779-treated mice. Consistent with these results, infiltration of monocytes/macrophages into the lamina propria was almost completely inhibited and the expression of colonic IL-1beta and IL-6 was significantly decreased in the TAK-779-treated mice. The blockade of CCR2, CCR5 and CXCR3 prevents murine experimental colitis by inhibiting the recruitment of inflammatory cells into the mucosa. Therefore, chemokines and their receptors may be therapeutic targets for the treatment of inflammatory bowel disease.

Amides↗

Granulomatous enterocolitis induced in rats by purified bacterial cell wall fragments.

This study was designed to determine if poorly biodegradable bacterial cell wall components can produce chronic intestinal inflammation. A sterile aqueous suspension of sonically disrupted group A or group D streptococcal cell wall fragments was injected intramurally into the small intestine and cecum of 100 rats. Gross findings in rats killed at intervals of 1 day to 6 mo included intestinal thickening, adhesions, and mesenteric contraction. Acute histologic inflammation subsided by 2 wk, but chronic granulomatous inflammation persisted for 6 mo in the rats injected with group A streptococcal cell wall fragments and 3 mo in the rats injected with group D streptococcal cell wall fragments. Ninety-six control rats identically injected with human serum albumin or phosphate-buffered saline demonstrated mild acute inflammation that resolved, with only 1 rat having chronic intestinal inflammation. Granulomas in the intestine, mesentery, and mesenteric lymph nodes developed in 46% of the rats injected with group A fragments and 45% of the rats injected with group D streptococcal cell wall fragments, compared with 20% of the controls injected with albumin and 4% of the controls injected with phosphate-buffered saline. Group A streptococcal antigen was detected by immunofluorescence at the site of inflammation for 4 mo, and possible reactivation of acute inflammation was seen up to 6 mo after injection. We conclude that bacterial cell wall fragments are capable of producing chronic granulomatous inflammation in the intestinal wall if present in appropriate particle size and concentration. We speculate that cell walls from the enteric microflora may leak across a permeable mucosa in chronic inflammatory bowel disease to initiate and sustain local and systemic inflammation.

Animals↗

Lessons from genetically engineered animal models XI. Novel mouse models to study pathogenic mechanisms of Crohn's disease.

Crohn's Disease (CD) affects more than 500,000 individuals in the United States and represents the second most common chronic inflammatory disorder after rheumatoid arthritis. Although major advances have been made in defining the basic mechanisms underlying chronic intestinal inflammation, the precise etiopathogenesis of CD remains unknown. We have recently characterized two novel mouse models of enteritis that express a CD-like phenotype, namely the TNF DeltaARE model of tumor necrosis factor (TNF) overexpression and the SAMP1/Yit model of spontaneous ileitis. The unique feature of these models is that they closely resemble CD for location and histopathology. These genetically manipulated new models of intestinal inflammation offer a powerful tool to investigate potential causes of human disease and may allow the development of novel disease-modifying therapeutic modalities for the treatment of CD.

Animals↗

Reciprocal IFN-gamma and TGF-beta responses regulate the occurrence of mucosal inflammation.

The above new findings concerning the immunological mechanisms governing mucosa, immune responses and oral tolerance in TCR-transgenic mice, as well as those operative in mice with experimental colitis, greatly expand our understanding of the processes that normally control mucosal inflammation and possibly other types of inflammation as well (Fig. 1). They indicate that, in the nondiseased mouse, ingested proteins evoke a Th1-cell (IFN-gamma) response in the mucosal follicles that is quickly counter-regulated by induction of T-cell anergy/deletion, if this Th1-cell response is inhibited (experimentally by anti-IL-12), TGF beta-producing cells appear, and these are capable of active immune suppression. This reciprocal relationship between IFN-gamma production and TGF-beta production is further supported in mouse models of mucosal inflammation. Thus, in the TNBS-colitis model, there is direct stimulation of the immune cells in the lamina propria as a result of diffuse haptenization of mucosal proteins, which leads to a massive Th1-cell response capable of overwhelming any suppressive counter-regulatory mechanisms normally generated in the PPs. This highly polarized Th1-cell response is controlled only by direct abrogation of IL-12 production with exogenous administration of anti-IL-12, or with indirect inhibition of this response via induction of oral tolerance and accompanying production of TGF-beta (Refs 6-8). The data obtained from this model are consistent with those obtained with another model of intestinal inflammation--inflammation in severe combined immunodeficiency (SCID) mice following lymphoid repletion with CD45Rbhi (naive) T cells. In this model, inflammation is again mediated by Th1 cells and is prevented by co-repletion with CD45Rbhi (memory) T cells, which appear to work by secreting TGF-beta (Refs 9, 10). Thus, a common feature of the various experimental models of intestinal inflammation studied to date is the Yin-Yang relationship of IFN-gamma and TGF-beta, with the former being proinflammatory and the latter anti-inflammatory. Is the IFN-gamma TGF-beta dichotomy that is evident both in the normal state and in models of inflammation simply a reflection of an underlying Th1 Th2 dichotomy? The answer to this important question is not yet known. Thus, while it is clear from the in vitro studies already discussed that IL-12 and/or IFN-gamma inhibit TGF-beta production, the role of IL-4 in this process is more elusive. These in vitro studies indicate that IL-4 is not required for TGF-beta production, a finding that is consistent with studies in which the transfer of CD45Rbhi, T cells from IL-4-/- mice protected SCID mice from colitis induced by CD45Rbhi T cells. However, the addition of IL-4 to in vitro cultures containing anti-IL-12 augmented TGF-beta production, most probably by IL-4 acting as a growth factor for TGF-beta-producing cells rather than as an inducing factor (T. Marth et al., unpublished). Obviously, more work will be necessary to resolve this issue. Finally, it should be noted that the above considerations apply to human inflammatory diseases of the gastrointestinal tract, such as Crohn's disease. Recently, it has been shown that T cells extracted from Crohn's disease tissues manifest skewed Th1-cell responses. The hypothesis can therefore be put forward that this disease results from a dysregulated Th1-cell response to ubiquitous mucosal antigens that is not appropriately controlled by normal counter-regulatory mechanisms. Interventions that artificially bring the excessive Th1-cell response back into balance, such as administration of IL-12 antagonists, should therefore find a central place in the treatment of the disease.

Animals↗

Inflammatory bowel disease.

Many nutritional issues are important in the care of children and adolescents with inflammatory bowel disease. No specific dietary toxin or antigen has been identified to have an etiologic role in either ulcerative colitis or Crohn's disease. A possible modulating effect of omega-3 polyunsaturated fatty acids on intestinal inflammation is being investigated. Most prevalent among the nutritional consequences of inflammatory bowel disease is weight loss, for which inadequate caloric intake is primarily responsible. Impairment of linear growth and associated delay in pubertal development commonly complicate childhood Crohn's disease. The two major etiologic factors are chronic undernutrition and direct effects of inflammatory mediators secreted from the inflamed gut. Recent studies have incriminated interleukin-6. Treatment of intestinal inflammation and provision of adequate nutrition are of paramount importance in preventing or remedying growth impairment. Exclusive enteral nutrition using formulated food is efficacious primary therapy of active Crohn's disease, although the mode of action is poorly understood.

Adolescent↗

Association with selected bacteria does not cause enterocolitis in IL-10 gene-deficient mice despite a systemic immune response.

Resident bacteria have been implicated to play a major role in the development of inflammatory bowel disease. While luminally sterile IL-10 gene-deficient mice remain disease-free, their conventionally raised littermates develop enterocolitis associated with increased numbers of luminal and mucosal adherent bacteria. To investigate the role of defined bacteria on the initiation and development of this enterocolitis, we associated luminally sterile IL-10 gene-deficient mice with pure strains of resident bacteria. Axenic, luminally sterile mice were either monoassociated with viridans group Streptococcus or Clostridium sordellii or co-associated with Bacteroides vulgatus and Clostridium sordellii. Seven to 22 weeks later the mice were analyzed for intestinal histologic injury, epithelial permeability, and an inflammatory immune response to bacterial antigens. Despite optimal colonization none of the tested bacteria caused intestinal inflammation, release of inflammatory cytokines from the epithelia, or disruption of the epithelial barrier integrity. However, in the case of association with Bacteroides vulgatus and Clostridium sordellii, a systemic immune response to bacterial-derived antigens was measured, with a magnitude similar to that seen in conventional sick Il-10 gene-deficient mice. This response was not detected in mice associated with viridans group Streptococcus. We conclude that colonization of the intestinal lumen with individual bacterial species may not be sufficient to alter epithelial barrier integrity, increase intestinal cytokine release, or cause intestinal inflammation in susceptible IL-10 gene-deficient mice, despite the ability of these same bacteria to stimulate a systemic response.

Animals↗

Interleukin-6 genetic ablation protects from trinitrobenzene sulfonic acid-induced colitis in mice. Putative effect of antiinflammatory cytokines.

BACKGROUND: Interleukin (IL)-6 is a proinflammatory cytokine implicated in the pathogenesis of inflammatory bowel disease. IL-6 is locally upregulated in inflammatory bowel disease patients and in murine models of experimental colitis. Treatment with anti-IL-6 receptor antibody ameliorates intestinal inflammation. OBJECTIVE: It was the aim of this study to investigate the role of genetic IL-6 deficiency in trinitrobenzene sulfonic acid (TNBS)-mediated colitis, an experimental model inflammation that shares several features with Crohn's disease in humans. METHODS: Acute colitis was induced in wild-type and IL-6-deficient (Il-6(-/-)) mice by intracolonic administration of TNBS. Forty-eight hours after treatment, the local and systemic features of inflammation, i.e. food intake, weight loss, histological markers of colitis, cytokine expression by real-time PCR, food intake and body weight changes, were assessed. RESULTS: In wild-type mice, TNBS administration increased both IL-6 serum levels and local expression of IL-6 by 36 and 9 fold, respectively, compared with control, vehicle-injected mice. Compared with the wild-type mice, the Il-6(-/-) mice had significantly reduced intestinal inflammation as evidenced by epithelial damage, neutrophil infiltration, colon thickness and proinflammatory cytokine expression, following treatment with TNBS. Moreover, baseline levels of the antiinflammatory cytokines IL-10 and tumor growth factor-beta were significantly elevated in Il-6(-/-)compared with the wild-type mice. CONCLUSIONS: Our results demonstrate that Il-6(-/-)are partially protected from the development of TNBS-induced acute experimental colitis, most likely via their significantly elevated baseline levels of antiinflammatory cytokines.

Animals↗

Pancreatic autoantibodies in Greek patients with inflammatory bowel disease.

Pancreatic autoantibodies (PAbs) have been suggested as a specific but not sensitive marker for Crohn's disease (CD). The aim of this study was to assess the value of detecting PAbs in Greek patients with ulcerative colitis (UC) and CD. Sera were collected from 150 patients with IBD (73 with UC and 77 with CD), 31 cases with non-IBD intestinal inflammation, 16 cases with other autoimmune diseases, and 104 healthy controls. Determination of PAbs was performed by a standard indirect immunofluorescence technique. PAbs were detected in 18 of 73 (24.7%) samples from UC patients and in 32 of 77 (41.6%) samples from CD patients. The prevalence of positive PAbs was significantly higher in CD than in UC (P = 0.04). None of the 104 samples from healthy controls and the 31 cases with non-IBD intestinal inflammation had detectable PAbs. One patient with Sjogren's syndrome was PAbs positive. No association of PAbs with IBD activity, IBD localization, or medical treatment was found. Patients with stenotic CD had a significantly higher prevalence of PAbs positivity (60%) compared with patients with inflammatory (28.6%) and fistulizing (41.2%) disease (P = 0.02). The prevalence of PAbs in Greek CD patients was found to be similar to that in previous reports. In contrast to these studies we found also increased prevalence of PAbs in UC patients. These findings suggest that PAbs should be considered as a specific marker for IBD rather than for CD.

Adult↗

Interleukin-13 inhibits nitric oxide production in human colonic mucosa.

BACKGROUND/AIMS: Nitric oxide synthesis is increased in rectal biopsies from patients with ulcerative colitis and colonic epithelial cells are considered to be a major source of nitric oxide in intestinal inflammation. METHODOLOGY: Human colonic biopsies from normal bowel mucosa and colonic epithelial cell line HT-29 were cultured in the presence of the inflammatory cytokines IL-1 alpha + TNF-alpha + IFN-alpha added after 1 hour pretreatment with vehicle or Interleukin-13. Nitrite levels were determined at 30 hours in culture supernatants by a fluorometric assay. RESULTS: Unstimulated human colonic biopsies and HT-29 cells produced a basal amount of nitrite. Stimulation with IL-1 alpha + TNF-alpha + IFN-alpha induced a significant (P < 0.001) increase of nitrite generation by both human colonic biopsies and HT-29 cells. The presence of Interleukin-13 produced a significant (P < 0.001) suppression of the cytokine-induced nitrite generation from both colonic biopsies and HT-29 cells. CONCLUSIONS: Nitric oxide generation in human colonic mucosa is susceptible to manipulation by proinflammatory cytokines. Interleukin-13 has an inhibitory effect on cytokine induced nitrite production in colonic mucosa and could play an anti-inflammatory role in intestinal inflammation.

Adult↗

A mouse model for S. typhimurium-induced enterocolitis.

Salmonella typhimurium has emerged as a model pathogen that manipulates host cells in a complex fashion, thus causing disease. In humans, S. typhimurium causes acute intestinal inflammation. Intriguingly, type III secreted virulence proteins have a central role in this process. At the cellular level, the functions of these factors are well characterized; at present, animal models are required for elucidating how these factors trigger inflammatory disease in vivo. Calf infection models have been employed successfully and, recently, a mouse model was identified: in streptomycin-pretreated mice, S. typhimurium causes acute colitis. This mouse model provides a new avenue for research into acute intestinal inflammation because it enables the manipulation and dissection of both the bacterial and host contributions to the disease in unsurpassed detail.

Animals↗

Intestinal microflora in human and experimental inflammatory bowel disease.

Commensal luminal bacteria stimulate protective or tolerogenic mucosal immune responses in normal (ie, resistant) hosts and detrimental responses, which result in chronic intestinal inflammation, in genetically susceptible hosts. Enteric pathogens appear to be important in the initiation and reactivation of human inflammatory bowel disease, and may be responsible for chronic inflammation in at least a subset of patients with inflammatory bowel diseases. Individual components of the commensal flora have variable abilities to induce inflammatory and protective immune responses; these preferential immune responses to individual bacterial species may be unique to each host's genetic background. Analogous to the balance between pro- and antiinflammatory cytokines and T-cell subsets, the ratio between protective (ie, probiotic) and aggressive commensal bacteria may determine whether there is mucosal homeostasis or chronic, relapsing intestinal inflammation. Therapeutic alteration of the luminal microenvironment by probiotic, prebiotic, and molecular strategies offers great promise for nontoxic treatment of inflammatory bowel disease.

Journal Article↗

[Diagnostic value of high resolution sonography in Crohn's disease and ulcerative colitis].

OBJECTIVE: To evaluate the diagnostic accuracy of high resolution sonography in patients with inflammatory bowel disease (MICI). PATIENTS AND METHODS: In patients with Crohn's disease (n = 48), ulcerative colitis (n = 23), indeterminate colitis (n = 3), inflammatory (n = 21) and non-inflammatory (n = 23) controls, high resolution sonography was performed and compared to colonoscopy (+/- retrograde ileoscopy) and/or baryum studies of the small bowel and the colon. RESULTS: Diagnosis of intestinal inflammation or not was correct in 69/74 MICI patients (sensitivity: 94.4%, specificity: 66.7%, global accuracy: 93.2%). Segment location was accurate in 58/74 (sensitivity: 80.3%, specificity: 66.7%, global accuracy: 79.7), more frequently in Crohn's disease, than in ulcerative colitis. Five out of six complications of Crohn's disease were diagnosed. In Crohn's disease, the method was more accurate in case of colonic or ileocolonic involvement. CONCLUSION: High resolution sonography is a reliable diagnostic tool for the detection of intestinal inflammation and related complications in MICI. In can be of value in the follow-up and seems particularly interesting in the case of temporary contraindication of invasive methods.

Colitis, Ulcerative↗

Physiological basis for novel drug therapies used to treat the inflammatory bowel diseases. I. Immunology and therapeutic potential of antiadhesion molecule therapy in inflammatory bowel disease.

Adhesion molecules regulate the influx of leukocytes in normal and inflamed gut. They are also involved in local lymphocyte stimulation and antigen presentation within the intestinal mucosa. In intestinal inflammation, many adhesion molecules are upregulated, but alpha4-integrins most likely hold a key position in directing leukocytes into the inflamed bowel wall. Therapeutic compounds directed against trafficking of leukocytes have been designed and are being developed as a novel class of drugs in the treatment of Crohn's disease and ulcerative colitis. This review deals with the immunological aspects of leukocyte trafficking focused on gut homing of T cells. Second, the changes in adhesion molecules and T cell trafficking during intestinal inflammation are discussed. Finally, we review the clinical data that have been gathered with respect to the therapeutic potential and the safety of antiadhesion molecule treatment. Antegren, or natalizumab, a humanized anti-alpha4 integrin IgG4 antibody, has been most extensively evaluated and may be close to registration. A more specific humanized alpha4beta7-integrin MLN-02 has shown preliminary clinical efficacy in ulcerative colitis, and both antergren and MLN-02 appear to be very safe. Trials with the anti-ICAM-1 antisense oligonucleotide ISIS-2302 in steroid refractory Crohn's disease have provided conflicting efficacy data. In the near future, some of these novel biological agents may prove valuable therapeutic tools in the management of refractory inflammatory bowel disease, although it is too early to define the patient population that will benefit most from these agents.

Antibodies, Monoclonal↗

Predominant pathogenic role of tumor necrosis factor in experimental colitis in mice.

Antibodies to tumor necrosis factor (TNF)-alpha have been recently proposed as effective treatment for patients with Crohn's disease. Here, we analyze the functional role of TNF-alpha in a mouse model of chronic intestinal inflammation induced by the hapten reagent 2,4,6,-trinitrobenzene sulfonic acid (TNBS) that mimics some characteristics of Crohn's disease in humans. Macrophage-enriched lamina propria (LP) mononuclear cells from mice with TNBS-induced colitis produced 10-30-fold higher levels of TNF-alpha mRNA and protein than cells from control mice. When mice with chronic colitis were treated by intraperitoneal injection of antibodies to TNF-alpha, an improvement of both the clinical and histopathologic signs of disease was found. Isolated macrophage-enriched LP cells from anti-TNF-alpha-treated mice produced strikingly less pro-inflammatory cytokines such as interleukin (IL)-1 and IL-6 in cell culture. The predominant role of TNF-alpha in the mouse TNBS-induced colitis model was further underlined by the finding that striking colonic inflammation and lethal pancolitis was induced in TNF-alpha-transgenic mice upon TNBS treatment. Conversely, no significant TNBS-induced colitis could be induced in mice in which the TNF-alpha gene had been inactivated by homologous recombination. Complementation of TNF-alpha function in TNF-/- mice by the expression of a mouse TNF-alpha transgene was sufficient to reverse this effect. Taken together, the data provide direct evidence for a predominant role of TNF-alpha in a mouse model of chronic intestinal inflammation and encourage further clinical trials with antibodies to TNF-alpha for the treatment of patients with Crohn's disease.

Animals↗

Animal models of inflammatory bowel disease.

The aim of this article was to reveal the major biologic features of intestine that predispose the intestinal mucosa to numerous inflammatory conditions, especially in regard to experimental models of inflammatory bowel disease. The need for the greater understanding of the etiology of intestinal inflammation and the search for more effective and novel therapy for the treatment of the disease has led to the development of variety of experimental models of inflammatory bowel disease. There is a growing number of animal models of inflammatory bowel disease, either naturally occurring in several mammalian species or inducible in various species of experimental animals by using physical, chemical and biologic agents including the embryonic stem cell technology for specific gene targeted defects. Despite some serious objectives in regard to clinical aspects of human intestinal bowel disease, animal models of intestinal inflammation have advantages and being complementary to clinical approach indicate the clear need for experimental studies to be continued.

Animals↗