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[Hyperamylasemia].

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F Bode, M Runge. 1986-06-27. [Hyperamylasemia].. https://doi.org/10.1055/s-2008-1068578

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Control of postprandial hyperglycaemia by galactosyl maltobionolactone and its novel anti-amylase effect in mice.

The ability to control carbohydrate digestion is useful in the treatment of diabetes mellitus and obesity. In the present study, we examined whether recently developed 4(2)-O-beta-D-galactosyl maltobionolactone (LG2O) having anti-amylase activity is able to control postprandial blood glucose concentration in mice. In addition, we tried to determine how LG2O regulates carbohydrate delivery in the gut lumen by conducting in vivo and in vitro studies. Male non-diabetic ddY mice and KK-A(y) mice, a spontaneously diabetic strain, had free access to a carbohydrate rich diet supplemented with LG2O (3 or 10 g/kg) for 0.5 hr, and blood glucose concentration was measured. LG2O suppressed any steep increase in postprandial blood glucose concentration in both ddY and KK-A(y) mice. Corresponding to the blood glucose response, LG2O also markedly suppressed any increase in postprandial plasma insulin concentration. After ingestion of the diet, LG2O produced a 1.5-3.5 fold increase in the gut contents and reducible sugar content in the small intestine but not in the stomach. Although alpha-amylase activity in the stomach was much lower compared with the activity in the small intestine, LG2O still strongly inhibited alpha-amylase activity in the stomach. In contrast, LG2O had little or no influence on alpha-amylase activity in the proximal intestine. From the in vitro carbohydrate digestion stimulation, LG2O at 7.5 mM decreased glucose production by 75% for dextrin, 25% for alpha-starch and 60% for raw starch. In conclusion, administration of LG2O inhibits carbohydrate digestion in the gut, and produces significant improvements in both blood glucose and insulin response following ingestion as part of the diet, and this evidence provides support for its therapeutic potential in treating diabetes mellitus and obesity.

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[Therapeutic effects of human interleukin 10 gene transfer on severe acute pancreatitis in rats, an experimental study].

OBJECTIVE: To study the therapeutic effects of human interleukin 10 (IL-10) gene transfer on severe acute pancreatitis (SAP) in rats. METHODS: Twenty healthy SD rats were injected intraperitoneally with SA liposome, SA liposome/pcDNA3 or SA liposome/pcDNA3-IL-10. Another twenty SD rats were randomly divided into five groups: rats in one group underwent laparotomy only (normal control), and SAP was induced in the other 4 groups induced by homogeneous injection of sodium taurocholate beneath the pancreatic capsule. Among the 4 SAP groups, one group did not receive any drugs, and liposomes, pcDNA3 or pcDNA3-IL-10 complexed with cationic liposomes were administered to the other groups. Drugs were administered by a single intraperitoneal injection thirty minutes after SAP had been induced. The levels of IL-10 in pancreas, liver and lungs were determined by ELISA kits. The level of serum amylase, histology, and tissue tumor necrosis factor (TNF) were assessed and mortality rate was observed in different groups for one week. RESULTS: The levels of IL-10 in the pancreas, liver and lung 24 hours after IL-10 gene transfer, increased significantly (all > 350 pg/g), and then gradually decreased, however, the levels of IL-10 were still significantly higher that those in the control groups (P < 0.05) 96 hours later and decreased to normal in one week. The levels of IL-10 of transfer control group were not significantly different from those of the normal control group. The levels of IL-10 expression in pancreas, liver and lungs were increased significantly in the gene therapy group, compared with the SAP group. The serum amylase level was (4 300 +/- 700) U/L in normal control group, increased to (20 300 +/- 1 100) U/L 24 hour after SAP induction without a difference between the therapy control group and SAP group, and decreased to (6 800 +/- 700) U/L after IL-10 gene therapy (P < 0.05). The histological score of pancreas was 4.1 +/- 0.2 24 hours after the induction of SAP, and was 3.2 +/- 0.3 in the IL-10 therapy group. The level of TNF in pancreas, liver, and lungs 24 hours after the induction of SAP was significantly higher than that in normal control group (P < 0.05) and was not different from that in therapeutic control group. However, it was decreased markedly in IL-10 therapy group (P < 0.05). No rat in any group died within 2 days after onset. There was no difference of mortality between SAP group and therapeutic control group. The one-week mortality was 90% in the whole SAP group. The one-week mortality of IL-10 gene therapy group was 30 %, significantly lower than that in SAP group (P < 0.05). There was no significant difference in the therapeutic control groups and the SAP group. The values of relative risk of SAP group, SA liposome group, and pcDNA3 group were 12, 8, and 11 times higher than that of gene therapy group (P < 0.05). CONCLUSION: Cationic liposome mediated pcDNA3-IL-10 gene therapy decreases significantly the severity and mortality of SAP.

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The influence of nitric oxide on basal and cholecystokinin-8-induced proliferation and apoptosis in the rat pancreas.

Nitric oxide (NO) is formed by different cell types in the pancreas. In this study, inhibition of endogenous nitric oxide by N(omega)-nitro-L-arginine (L-NNA) reduced the urinary excretion of NO(2)/NO(3) and raised serum L-arginine and the NO donator S-nitroso-N-acetylpenicillamine (SNAP) increased the urinary excretion of NO(2)/NO(3). The peptide cholecystokinin-8 (CCK-8) has a strong influence on exocrine pancreatic proliferation. Rat pancreas was excised and studied with regard to tissue weight, protein and DNA contents after 3 days of treatment with saline, L-NNA or SNAP given separately or combined with CCK-8. Further, proliferation of different pancreatic cells was studied with [3H]-thymidine incorporation and apoptotic activity was studied by analysing caspase-3 activity and histone-associated DNA fragments. The effects of L-NNA indicate that endogenous nitric oxide formation has a tonic inhibition on apoptosis in the pancreas during both basal condition and growth stimulation by CCK-8. In CCK-induced hyperplasia, NO inhibits the proliferation of acinar cells but stimulates ductal cells. Endogenous NO may regulate the balance between proliferation and apoptosis and in a situation of growth stimulation by CCK-8, it has a tonic inhibition on both mitogenesis and apoptosis thus slowing down the acinar cell turnover in the pancreas.

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