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Biomedical subjects

Axel U Dignass

Publications and source records attributed to Axel U Dignass.

12 recordsLinked to original sources

Tacrolimus is safe and effective in patients with severe steroid-refractory or steroid-dependent inflammatory bowel disease--a long-term follow-up.

OBJECTIVE: We and others have reported the use of tacrolimus in refractory inflammatory bowel disease (IBD). Little is known about its long-term efficacy and safety. METHODS: In this retrospective, observational single center study the charts of 53 adult patients with steroid-dependent (n = 18) or steroid-refractory (n = 35) IBD, Crohn's disease (CD) (n = 11), ulcerative colitis (UC) (n = 40), or pouchitis (PC) (n = 2) were reviewed. Tacrolimus (0.1 mg/kg body weight per day) was administered orally in all and initially intravenously in 2 patients (0.01 mg/kg body weight per day), aiming for serum trough levels of 4-8 ng/mL. Forty-one of 53 (77.1%) patients were receiving concomitant azathioprine. The mean treatment duration was 25.2 +/- 4.6 SD months (0.43-164 months). Patients were followed for a mean of 39 +/- 4.1 SD months (5-164 months). Response was evaluated using a modified clinical activity index (M-CAI). RESULTS: Thirty-one UC (78%), 10 CD (90.1%), and both PC (100%) patients experienced an immediate clinical response or went into remission at 30 days. A statistically significant drop on the M-CAI was documented for UC and CD patients. Nine UC patients (22.5%) underwent colectomy between 1.6 and 41.3 months following initiation. Mean colectomy-free survival was 104.8 +/- 15.5 (95% CI 74.4-135.2) months (limited to 164.4 months). Cumulative colectomy-free survival was estimated 56.5% at 43.8 months. Steroids were reduced or discontinued in 40 of 45 UC and CD patients (90%) taking steroids. Side effects included a temporary rise of creatinine (n = 4, 7.6%), tremor or paresthesias (n = 5, 9.4%), hyperkalemia (n = 1, 1.9%), hypertension (n = 1, 1.9%), and opportunistic infections (n = 2, 3.8%). CONCLUSION: Long-term tacrolimus therapy appears safe and effective in refractory IBD.

Adult↗

CXCL8 modulates human intestinal epithelial cells through a CXCR1 dependent pathway.

BACKGROUND: CXCL8 (previously known as Interleukin-8), a member of the alpha-chemokine family of chemotactic cytokines, stimulates intestinal neutrophil activation and chemotaxis. As intestinal epithelial cells have been recently shown to produce CXCL8, the aim of this study was to identify functional activities of CXCL8 on intestinal epithelial cells. METHODS: The expression of CXCL8 receptors CXCR1 and CXCR2 was assessed by RT-PCR and FACS analysis in human Caco-2 and HT-29 cells. The effects of CXCL8 on intestinal epithelial proliferation were assessed with colorimetric MTT assays and the effects on epithelial restitution with an in vitro migration model using Caco-2 and HT-29 cells. RESULTS: While the expression of both CXCR1 mRNA and protein could be demonstrated by RT-PCR and FACS analysis in human Caco-2 and HT-29 cells, no expression of CXCR2 was observed in these cell lines. Colorimetric MTT assays revealed that CXCL8 does not modulate cell proliferation in HT-29 and Caco-2 cells. In contrast, CXCL8 significantly enhanced intestinal epithelial migration in an in vitro migration model of HT-29 and Caco-2 cells. Enhancement of intestinal epithelial cell migration by CXCL8 was partially CXCR1-dependent and TGFbeta-independent. CONCLUSION: CXCL8 exerts functional effects on intestinal epithelial cells that may be relevant for intestinal inflammation and mucosal healing.

Caco-2 Cells↗

Mesalamine promotes intestinal epithelial wound healing in vitro through a TGF-beta-independent mechanism.

OBJECTIVE: Treatment with 5-aminosalicylic acid (5-ASA) derivatives is one of the main principles in the therapy of uncomplicated mild to moderate inflammatory bowel diseases (IBD). The beneficial effect of 5-ASA in the treatment of IBD is attributed to its anti-inflammatory and anti-oxidant properties within the inflamed gut. The aim of this study was to investigate whether 5-ASA also modulates intestinal epithelial wound repair in vitro. MATERIAL AND METHODS: The effects of 5-ASA on cell migration and proliferation, two key processes in mucosal healing, were studied in the non-transformed small-intestinal epithelial cell line IEC-6 using an in vitro wounding model and colorimetric MTT assays. Furthermore, the effects of 5-ASA on epithelial cell viability were determined by Trypan blue exclusion and flow cytometry-based cell cycle analysis. RESULTS: Clinically relevant concentrations of 5-ASA caused a significant dose-dependent enhancement of epithelial cell migration and proliferation in vitro. An about 2-fold enhancement of intestinal epithelial cell proliferation and migration was observed for pharmacological doses of 100 microg/ml 5-ASA. Neutralizing antibodies against TGFbeta did not modulate 5-ASA effects on IEC-6 cell proliferation and migration, indicating that the effects of 5-ASA were TGFbeta independent. Trypan blue viability tests and cell cycle analysis did not reveal any toxic or apoptotic effects of pharmacological 5-ASA concentrations on IEC-6 cells. CONCLUSIONS: 5-ASA promotes the rapid re-establishment of mucosal integrity in vitro by enhancing epithelial restitution and proliferation, suggesting that 5-ASA in addition to the well-characterized effects on the intestinal inflammatory cascade may also directly stimulate epithelial wound healing.

Animals↗

Intravenous iron sucrose versus oral iron supplementation for the treatment of iron deficiency anemia in patients with inflammatory bowel disease--a randomized, controlled, open-label, multicenter study.

OBJECTIVES: Anemia is a frequent complication in patients with inflammatory bowel disease (IBD). The optimal route for iron supplementation to replenish iron stores has not been determined so far. We therefore evaluated the efficacy and safety of intravenous iron sucrose as compared with oral iron sulfate for the treatment of iron deficiency anemia (IDA) in patients with IBD. METHODS: A randomized, prospective, open-label, multicenter study was performed in 46 patients with anemia and transferrin saturation <or=20% and/or serum ferritin concentrations <or=20 microg/L. The intravenous group received a single dose of iron sucrose of 7 mg iron/kg body weight, followed by five 200 mg infusions for the following 5 wks. The oral group received iron sulfate 100-200 mg per day for 6 wks. RESULTS: While a comparable increase in hemoglobin was observed for both administration routes (median increase 0.25 g/L in the intravenous group vs 0.21 g/L in the oral group), only iron sucrose led to a rise in serum ferritin concentrations. Intractable gastrointestinal adverse events caused permanent study drug discontinuation in five patients (20.8%) receiving iron sulfate, whereas only one patient (4.5%) had to be withdrawn because of side effects due to iron sucrose. CONCLUSIONS: Although being equal in short-term efficacy and overall tolerability our results suggest a better gastrointestinal tolerability for iron sucrose. Larger trials are mandatory to prove a possible advantage of iron sucrose in short- and long-term efficacy as well as in tolerability over iron sulfate in the management of IDA in IBD.

Abdominal Pain↗

Escherichia coli Nissle 1917 distinctively modulates T-cell cycling and expansion via toll-like receptor 2 signaling.

Although the probiotic Escherichia coli strain Nissle 1917 has been proven to be efficacious for the treatment of inflammatory bowel diseases, the underlying mechanisms of action still remain elusive. The aim of the present study was to analyze the effects of E. coli Nissle 1917 on cell cycling and apoptosis of peripheral blood and lamina propria T cells (PBT and LPT, respectively). Anti-CD3-stimulated PBT and LPT were treated with E. coli Nissle 1917-conditioned medium (E. coli Nissle 1917-CM) or heat-inactivated E. coli Nissle 1917. Cyclin B1, DNA content, and caspase 3 expression were measured by flow cytometry to assess cell cycle kinetics and apoptosis. Protein levels of several cell cycle and apoptosis modulators were determined by immunoblotting, and cytokine profiles were determined by cytometric bead array. E. coli Nissle 1917-CM inhibits cell cycling and expansion of peripheral blood but not mucosal T cells. Bacterial lipoproteins mimicked the effect of E. coli Nissle 1917-CM; in contrast, heat-inactivated E. coli Nissle 1917, lipopolysaccharide, or CpG DNA did not alter PBT cell cycling. E. coli Nissle 1917-CM decreased cyclin D2, B1, and retinoblastoma protein expression, contributing to the reduction of T-cell proliferation. E. coli Nissle 1917 significantly inhibited the expression of interleukin-2 (IL-2), tumor necrosis factor alpha, and gamma interferon but increased IL-10 production in PBT. Using Toll-like receptor 2 (TLR-2) knockout mice, we further demonstrate that the inhibition of PBT proliferation by E. coli Nissle 1917-CM is TLR-2 dependent. The differential reaction of circulating and tissue-bound T cells towards E. coli Nissle 1917 may explain the beneficial effect of E. coli Nissle 1917 in intestinal inflammation. E. coli Nissle 1917 may downregulate the expansion of newly recruited T cells into the mucosa and limit intestinal inflammation, while already activated tissue-bound T cells may eliminate deleterious antigens in order to maintain immunological homeostasis.

Apoptosis↗

Human galectin-2: novel inducer of T cell apoptosis with distinct profile of caspase activation.

Galectin-2 is structurally closely related to galectin-1, but has a distinct expression profile primarily confined to the gastrointestinal tract. Prominent differences in the proximal promoter regions between galectins-2 and -1 concern Sp1-, hepatocyte NF-3, and T cell-specific factor-1 binding sites. Of note, these sequence elements are positioned equally in the respective regions for human and rat galectins-2. Labeled galectin-2 binds to T cells in a beta-galactoside-specific manner. In contrast to galectin-1, the glycoproteins CD3 and CD7 are not ligands, while the shared affinity to beta1 integrin (or a closely associated glycoprotein) accounts for a substantial extent of cell surface binding. The carbohydrate-dependent binding of galectin-2 induces apoptosis in activated T cells. Fluorogenic substrate and inhibitor assays reveal involvement of caspases-3 and -9, in accordance with cleavage of the DNA fragmentation factor. Enhanced cytochrome c release, disruption of the mitochondrial membrane potential, and an increase of the Bax/Bcl-2 ratio by opposite regulation of expression of both proteins add to the evidence that the intrinsic apoptotic pathway is triggered. Cell cycle distribution and expression of regulatory proteins remained unaffected. Notably, galectins-1 and -7 reduce cyclin B1 expression, defining functional differences between the structurally closely related galectins. Cytokine secretion of activated T cells was significantly shifted to the Th2 profile. Our study thus classifies galectin-2 as proapoptotic effector for activated T cells, raising a therapeutic perspective. Of importance for understanding the complex galectin network, it teaches the lesson that selection of cell surface ligands, route of signaling, and effects on regulators of cell cycle progression are markedly different between structurally closely related galectins.

Animals↗

Successful therapy of refractory pyoderma gangrenosum and periorbital phlegmona with tacrolimus (FK506) in ulcerative colitis.

We describe two male patients with ulcerative colitis and refractory pyoderma gangrenosum including periorbital phlegmona in one case. Both patients were successfully managed with low dose oral tacrolimus (0.1 mg/kg bodyweight per day). Serum trough levels were closely monitored and maintained between 4 and 6 ng/mL. A rapid response was noted in both cases. Complete non-scarring skin restitution without side effects was accomplished in both cases. Low dose oral tacrolimus provides a valuable alternative treatment option for IBD patients with refractory pyoderma gangrenosum.

Adult↗

Current biological therapies for inflammatory bowel disease.

Current biological therapies for inflammatory bowel disease reflect the exponential advancement in understanding the human intestinal immune system and particularly the biology of intestinal inflammation over the past decade. The better understanding of the mechanisms of inflammatory bowel disease has evolved from descriptive clinical data and genetically engineered animal models. It led to great interest in a variety of new therapeutic agents and procedures with novel actions. This review will discuss the mechanisms of biologics (antibodies against pro-inflammatory cytokines, T-cell antibodies, anti-inflammatory cytokines, adhesion molecule blockers, growth factors, colony stimulating factors, fusion proteins, anti-sense oligonucleotides, hormones, immunostimulatory DNA (ISS-DNA, CpG Oligodeoxynucleotides) and parasites (Trichuris suis eggs), used in inflammatory bowel disease and summarize the available data on investigational and approved agents, and briefly touch on probiotics and extracorporeal immunomodulation (leukocyte apheresis and photoapheresis). Based on the data discussed, it appears that biologics may play an increasing role in managing inflammatory bowel disease in the near future.

Adjuvants, Immunologic↗

Rescue therapy with tacrolimus in a patient with toxic megacolon.

BACKGROUND: Toxic megacolon is a life-threatening complication most commonly observed in patients with ulcerative colitis or Crohn's disease that is characterized by total or segmental nonobstructive colonic dilatation of at least 6 cm on plain abdominal films associated with systemic toxicity. CASE REPORT: We report an unusual case of fulminant steroid-refractory ulcerative colitis complicated by toxic megacolon treated successfully with the immunosuppressant tacrolimus. CONCLUSION: Tacrolimus administration induced clinical remission and bridged the time interval, until the standard immunosuppressant azathioprine could maintain clinical remission, thereby avoiding eminent emergency colectomy.

Adult↗

Modulation of gastrointestinal wound repair and inflammation by phospholipids.

The mucosal surface of the digestive tract is a critical barrier between a broad spectrum of noxious and immunogenic substances present in the gastrointestinal lumen and the underlying mucosal immune system. Its preservation following various forms of injury or physiological damage is essential to prevent the invasion of harmful luminal factors into the host, which subsequently may lead to inflammation, uncontrolled immune response, and a disequilibrium of the homeostasis of the host. The preservation of this barrier following injuries is regulated by a broad spectrum of structurally distinct regulatory molecules, including phospholipids. Phospholipids play a pivotal role in the modulation of intestinal inflammation. They have been demonstrated to both promote and inhibit inflammation, and their overall impact in an individual setting seems to be dependent on several factors, including the level of immune cell activation and the presence of other mediators. Modulation of lipid mediators through administration of lysophosphatidic acid (LPA) or lisofylline (LSF), inhibitors of phospholipase A2 (PLA2) biosynthesis or monoclonal antibodies against thromboxane (TBX) or platelet-activating factor (PAF) as a therapeutic approach have been used in several models of inflammation; however, beneficial effects were not always convincing and further studies are warranted.

Animals↗

Intestinal barrier function.

Intestinal barrier function regulates transport and host defense mechanisms at the mucosal interface with the outside world. Transcellular and paracellular fluxes are tightly controlled by membrane pumps, ion channels and tight junctions, adapting permeability to physiological needs. Food and microbial antigens are under constant surveillance of the mucosal immune system. Tolerance against commensals and immunity against pathogens require intact antigen uptake, recognition, processing and response mechanisms. Disturbance at any level, but particularly bacterial translocation due to increased permeability and breakdown of oral tolerance due to compromised epithelial and T cell interaction, can result in inflammation and tissue damage. New therapeutic approaches including probiotics and peptides to restore disrupted barrier function are evolving.

Biological Transport↗

Lisofylline and lysophospholipids ameliorate experimental colitis in rats.

BACKGROUND: Intestinal inflammatory processes initiate a chain reaction in which membrane-bound lipids generate eicosanoids and phospholipids. Bioactive lipid mediators play a pivotal role in the pathogenesis of intestinal inflammation and colonic mucosa from patients with inflammatory bowel disease contains high levels of phospholipids. Therefore, we investigated the effects of lysophosphatidic acid and lysophosphatidylethanolamine, two natural occurring phospholipids and lisofylline, which decreases lipid peroxidation, in an in-vivo model of intestinal inflammation. METHODS: Colitis was induced by rectal administration of ethanol and trinitrobenzene sulfonic acid in rats. Rats were treated once daily with either lysophosphatidic acid or lysophosphatidylethanolamine rectally or twice daily intraperitoneally with lisofylline following induction of colitis. Rats were sacrificed after 7 days and the effect of lysophosphatidic acid, lysophosphatidylethanolamine, and lisofylline on colonic damage and inflammation were assessed using standardized macroscopical and histological injury scores. RESULTS: Treatment with lysophosphatidic acid, lysophosphatidylethanolamine, and lisofylline significantly reduced the degree of inflammation and necrosis in the distal colon compared to control rats. In addition, the weight loss was significantly less in the treatment groups compared to controls. Histological studies revealed a significant reduction of epithelial damage and colonic inflammation. CONCLUSION: The administration of anti-inflammatory lysophospholipids and suppression of proinflammatory lipid metabolites by lisofylline may provide new approaches to ameliorate intestinal inflammation.

Administration, Topical↗