Lysophosphatidic acid modulates intestinal epithelial cell function in vitro.
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Biomedical subjects
Publications and source records attributed to A U Dignass.
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Patients with chronic inflammatory bowel diseases (IBD) are at increased risk to develop osteopenia and osteoporosis. New parameters for the assessment of bone formation and especially bone resorption have significantly improved the diagnostic procedures to characterize bone metabolism. Biochemical characterization of bone turnover in IBD patients may provide important information about the pathogenesis of osteoporosis in this patient population. A cross-sectional study was performed. One hundred forty-nine patients (77 men, 52 premenopausal, and 20 postmenopausal women) with IBD (104 with Crohn's disease [CD] and 45 with ulcerative colitis [UC]) underwent clinical, osteodensitometric, and metabolic bone assessment. Bone mineral density was determined by dual energy X-ray absorptiometry. Bone formation (bone alkaline phosphatase), bone resorption (N-terminal telopeptide of type-I collagen, free desoxypyridinoline, total pyridinoline, and desoxypyridinoline), vitamin D, and parathyroid hormone were assessed. Thirty-six percent of patients with CD and 32% with UC showed osteopenia, 15% with CD and 7% with UC showed osteoporosis. Bone resorption was significantly increased in IBD patients compared to normal controls, whereas bone formation did not show a compensatory increase. Bone formation was even more suppressed in the subset of patients currently treated with corticosteroids. Our data confirm the high prevalence of osteopenia and osteoporosis reported in IBD patients. Furthermore, we provide evidence for an increased bone resorption accompanied by low bone formation in IBD patients. This imbalance of bone metabolism is likely to be one of the reasons for increased bone loss in IBD patients.
BACKGROUND: Adenine nucleotides have been demonstrated to enhance structural and functional regeneration in experimental renal injury in rats. The mechanism of adenine nucleotide action have not been elucidated. The aim of this study was to characterize the effects of adenine nucleotides on intestinal epithelial wound healing in vitro. METHODS: The effects of adenine nucleotides on cell migration, cell proliferation and cell adhesion were studied in the non-transformed small intestinal epithelial cell line IEC-6 using an in vitro wounding model, a colorimetric BrdU assay and a hexosaminidase adhesion assay. RESULTS: The adenine nucleotides ADP and ATP were found to significantly stimulate epithelial cell restitution (migration) in vitro. Stimulation of epithelial restitution averaged 42% for ADP and 57% for ATP. In addition, adenine nucleotides inhibited the proliferation of rat small intestinal epithelial cells, averaging 56% for ADP and 74% for ATP. Enhancement of intestinal epithelial restitution and inhibition of epithelial cell proliferation by adenine nucleotides were mediated through transforming growth factor (TGF)-beta-independent pathways. CONCLUSION: These findings suggest that adenine nucleotides exert functional effects on intestinal epithelial cell populations and may play a role in the morphogenesis of the gastrointestinal tract and its remodeling after injury.
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Although interleukin 2 (IL-2) has been presumed to have a highly circumscribed range of target cells limited largely to classic immune cell populations, the presence of functional IL-2 receptors in rat epithelial cell lines has recently been demonstrated. Limited information is available about the functional effects of IL-2 on intestinal epithelial cells. The effect of recombinant IL-2 on intestinal epithelial cell migration was assessed using a previously described in vitro model of epithelial restitution by quantitation of cells migrating into standard wounds established in confluent IEC-6 cell monolayers. Transforming growth factor beta content was assessed by Northern blot and bioassay. Exogenous IL-2 enhanced epithelial cell restitution in vitro on average 3.8-fold; this effect was independent of cell proliferation. Enhancement of restitution through IL-2 could be completely blocked through antibodies directed against TGFbeta1 and interleukin-2 receptor, indicating that stimulation of epithelial cell restitution is specifically enhanced by interleukin-2 and mediated through a TGFbeta-dependent pathway. In addition, increased expression of TGFbeta1 mRNA and increased levels of bioactive TGFbeta peptide in wounded monolayers treated with IL-2 compared to unwounded monolayers cultured in serum-deprived medium alone support the notion that enhancement of epithelial cell restitution in vitro is mediated through a TGFbeta-dependent pathway. These studies suggest that IL-2, a potent cytokine whose biological origin and targets have been presumed to be largely limited to lymphocyte and macrophage populations, may play a role in preserving the integrity of the intestinal epithelium following various forms of injuries.
BACKGROUND: Previous studies have shown the importance of transforming growth factors alpha and beta (TGF alpha and TGF beta) in modulating epithelial cell restitution after injury in vitro. AIM: To investigate the role of the growth factors TGF alpha and TGF beta after acute epithelial injury in vivo. METHODS: An in vivo model of phytohaemagglutinin (PHA) induced acute epithelial injury in rat small intestine was used. Epithelial cell turnover was assessed by autoradiography and liquid scintillation counting of thymidine uptake. Expression of TGF alpha and TGF beta was assessed by immunohistochemistry. RESULTS: An expansion of the proliferative compartment and increased turnover of intestinal epithelial cells was seen in rats with PHA induced intestinal epithelial injury. Expression of TGF alpha and TGF beta peptides was shown in both the epithelial cell and lamina propria compartment. Different patterns of TGF alpha and TGF beta expression were seen, however, within the epithelium of rats with acute intestinal injury compared with untreated controls, while the expression of these peptides within the lamina propria was not changed. CONCLUSIONS: These findings suggest that acute intestinal epithelial cell injury in vivo is associated with compensatory changes in expression of TGF alpha and TGF beta in the epithelial cell compartment, while the lamina propria does not seem to be significantly affected.
The effect of cytokines, growth factors, mitogens, and bacterial products on nitric oxide (NO) generation by monolayers of small intestinal epithelial cells-6 (IEC-6) cells was evaluated. Subconfluent IEC-6 cells were maintained in DMEM containing 5% fetal calf serum and after 16-24 hr of incubation, the medium was replaced with fresh medium in the presence or absence of calcium ionophore (CaI), L-NAME, L-NNA, individual growth factors, cytokines, or mitogens. After 72 hr of culture, the media supernatant was collected and NO chi generation was determined. NO synthase activity was determined in sonicated supernatants of IEC-6 cells by [14C] arginine conversion to citrulline. NO chi generation in subconfluent cultures was greater than in fully confluent cultures, suggesting contact inhibition. NO chi generation by IEC-6 cells was significantly increased by CaI and inhibited by L-NAME and L-NNA. LPS, IL-1 beta, IL-2, IL-8, IFN-8, TFN-alpha, EGF, TGF-alpha, bFGF, and PHA significantly increased NO chi generation. NO synthase activity in IEC-6 cells (4.2 +/- 1.7 pmol/min/10(6) cells) was NADPH dependent. These results suggest that stimulation of NO chi generation by intestinal epithelial cells through cytokine bacterial products and mitogens may be one of the mechanisms responsible for their effects in the intestinal tract.
Various peptide growth factors have been found to regulate epithelial cell function within the mucosal epithelium of the gastrointestinal tract. In this study hepatocyte growth factor/scatter factor (HGF/SF) was found to stimulate intestinal epithelial cell proliferation: 2.5-fold in the non-transformed rat small intestinal epithelial cell line IEC-6 and 1.9-fold in the human colon cancer-derived HT-29 cell line. In addition, HGF/SF enhanced epithelial cell restitution, the initial step involved in gastrointestinal wound healing, in an in vitro model. Migration of IEC-6 in wounded monolayers was enhanced up to 7-fold. Enhancement of restitution by HGF could be completely abrogated by addition of immunoneutralizing anti-TGF beta 1, indicating that this process is mediated through a TGF beta-dependent pathway. These findings suggest that HGF exerts functional effects on intestinal epithelial cell populations and may play a role in the morphogenesis of the gastrointestinal tract and its remodeling following injury.
BACKGROUND/AIMS: Various peptide growth factors have been found to exert functional effects among epithelial cell populations. This study assessed the role of certain fibroblast growth factors (FGFs) (acidic FGF, basic FGF, and keratinocyte growth factor) in the regulation of intestinal epithelial cell proliferation and restitution. METHODS: Recombinant growth factors were added to subconfluent cultures of IEC-6, Caco-2, and HT-29 cell lines with subsequent assessment of [3H]-thymidine incorporation. The effects on an in vitro model of restitution were assessed by quantitation of cells migrating into standard wounds established in confluent monolayers of IEC-6 cells. Transforming growth factor beta (TGF-beta) content of growth factor-treated wounded monolayers was assessed by Northern blot and bioassay. RESULTS: Acidic FGF, basic FGF, and keratinocyte growth factor caused a modest increase in proliferation of IEC-6, Caco-2, and HT-29 cell lines. Acidic FGF and basic FGF promoted intestinal epithelial cell restitution in vitro up to 10-fold, in conjunction with the enhanced expression of TGF-beta messenger RNA and protein. Promotion of IEC-6 restitution by acidic and basic FGF could be blocked by addition of immunoneutralizing anti-TGF-beta antisera. CONCLUSIONS: FGFs that exert effects on fibroblast cells also exert effects on intestinal epithelial cell populations and may help promote epithelial cell restitution, the initial step of intestinal wound healing through a TGF-beta-dependent pathway.
BACKGROUND: After various forms of superficial injury, mucosal integrity is re-established by rapid migration of epithelial cells across the wound margins in a process termed restitution. The aim of the present study was to assess the role of several regulatory peptides produced within the intestinal mucosa in epithelial restitution. METHODS: The effects of various cytokines and peptide growth factors were studied in an in vitro model of intestinal epithelial restitution. Standard "wounds" were established in confluent monolayers of the intestinal cell line IEC-6, and migration was quantitated in the presence or absence of the physiologically relevant cytokines transforming growth factor (TGF)-alpha, epidermal growth factor (EGF), interleukin (IL)-1 beta, IL-6, tumor necrosis factor (TNF)-alpha, interferon gamma (IFN-gamma), and platelet-derived growth factor (PDGF). RESULTS: Four factors (TGF-alpha, EGF, IL-1 beta, and IFN-gamma) enhanced epithelial cell restitution by 2.3-fold to 5.5-fold. In contrast, IL-6, TNF-alpha, PDGF, and an endotoxin lipopolysaccharide had no effect on cell migration. Enhancement of restitution was independent of proliferation. The restitution-promoting cytokines TGF-alpha, EGF, IL-1 beta, and IFN-gamma increase the production of bioactive TGF-beta 1 peptide in wounded IEC-6 cell monolayer. The promotion of IEC-6 restitution by various cytokines could be completely blocked by addition of immunoneutralizing anti-TGF-beta 1. CONCLUSIONS: These findings suggest that various cytokines that are expressed in intestinal mucosa promote epithelial restitution after mucosal injury through increased production of bioactive TGF-beta 1 in epithelial cells.