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PubMed · 12173921

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F John Service. How did we get here?. https://pubmed.ncbi.nlm.nih.gov/12173921/

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Clinical significance, pathogenesis, and management of postprandial hyperglycemia.

It is well established that strict glycemic control (hemoglobin A1c <7.0%) can prevent the microvascular complications of diabetes mellitus. Recent studies indicate that elevated plasma glucose concentrations are an independent and clinically significant risk factor for cardiovascular disease in nondiabetic and diabetic individuals. Thus, isolated postprandial hyperglycemia (2-hour postprandial glucose level >140 mg/dL [>7.8 mmol/L]) in the face of normal fasting plasma glucose (<110 mg/dL [<6.1 mmol/L]) and normal hemoglobin A1c (<6.1%) values is associated with a 2-fold increased risk of death from cardiovascular disease. These observations imply that more strict glycemic control is required to prevent macrovascular disease than microvascular disease. This review summarizes epidemiologic and experimental studies linking postprandial hyperglycemia to cardiovascular disease and therapeutic approaches available and in development to treat this disorder.

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Gastric inhibitory polypeptide (GIP) dose-dependently stimulates glucagon secretion in healthy human subjects at euglycaemia.

AIMS/HYPOTHESIS: In the isolated perfused pancreas, gastric inhibitory polypeptide (GIP) has been shown to enhance glucagon secretion at basal glucose concentrations, but in healthy humans no glucagonotropic effect of GIP has yet been reported. Therefore, we studied the effect of GIP on glucagon secretion under normoglycaemic conditions. METHODS: Ten healthy subjects (9 men, 1 woman; age 33+/-11; BMI 26.8+/-2.2 kg/m(2)) received three different doses of intravenous GIP (7, 20, and 60 pmol/kg body weight) and placebo. Venous blood samples were drawn over 30 min for glucagon and GIP concentrations (specific radioimmunoassays). In addition, 31 healthy subjects (16 men, 15 women; 42+/-11 years; BMI 24.4+/-2.7 kg/m(2)) were studied with 20 pmol GIP/kg. Statistics were done with RM-ANOVA and Duncan's post hoc tests. RESULTS: Gastric inhibitory polypeptide dose-dependently stimulated glucagon secretion ( p=0.019) with a maximal increment after 10 min. Incremental glucagon concentrations (Delta(10-0 min)) were 0.1+/-0.7, 1.4+/-0.5, 2.4+/-0.5, and 3.4+/-0.8 pmol/l (for placebo and for 7, 20, and 60 pmol GIP/kg, respectively; p=0.017). After the injection of 20 pmol GIP/kg b.w. in 31 healthy subjects, glucagon concentrations increased over the baseline from 7.5+/-0.5 to 9.3+/-0.7 pmol/l ( p=0.0082). CONCLUSIONS/INTERPRETATION: Glucagon secretion is dose-dependently stimulated by GIP at basal glucose concentrations. The absence of a glucagonotropic GIP effect in previous studies could be due to the hyperglycaemic conditions used in these experiments. Our results underline differences between GIP and the glucagonostatic incretin GLP-1.

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[Novel aspects in the mechanisms of steroid diabetes and the regulation of hepatic glucose production by insulin and steroids].

Glucocorticoids are known to increase blood glucose levels, and an impairment of glucose tolerance is a common side effect of glucocorticoid therapy and a central feature of Cushing's disease. A major pathophysiological event in this process is an increased glucose production of the liver on the basis of glucocorticoid-induced insulin resistance resulting in an increment in hepatic gluconeogenesis. Both, glucocorticoids and insulin are known to affect the expression of the two gluconeogenic key enzymes, phosphoenolpyruvate-carboxykinase (PEPCK) and glucose-6-phosphatase (G6Pase). While glucocorticoids are known to stimulate the expression of the PEPCK- and G6Pase gene, insulin decreases hepatic glucose production through an inhibition of PEPCK- and G6Pase gene expression. Recently, considerable progress has been made in the understanding of the signal transduction involved in the glucocorticoid- and insulin-dependent regulation of hepatic gluconeogenesis. In this article, we will review the most recent advances and assemble the current knowledge into a clinically relevant pathophysiological model.

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