Mechanism by which hyperglycemia inhibits hepatic glucose production in conscious rats. Implications for the pathophysiology of fasting hyperglycemia in diabetes.
Open Access
- 1 September 1993
- journal article
- Published by American Society for Clinical Investigation in Journal of Clinical Investigation
- Vol. 92 (3) , 1126-1134
- https://doi.org/10.1172/jci116681
Abstract
To examine the relationship between the plasma glucose concentration (PG) and the pathways of hepatic glucose production (HGP), five groups of conscious rats were studied after a 6-h fast: (a) control rats (PG = 8.0 +/- 0.2 mM); (b) control rats (PG = 7.9 +/- 0.2 mM) with somatostatin and insulin replaced at the basal level; (c) control rats (PG = 18.1 +/- 0.2 mM) with somatostatin, insulin replaced at the basal level, and glucose infused to acutely raise plasma glucose by 10 mM; (d) control rats (PG = 18.0 +/- 0.2 mM) with somatostatin and glucose infusions to acutely reproduce the metabolic conditions of diabetic rats, i.e., hyperglycemia and moderate hypoinsulinemia; (e) diabetic rats (PG = 18.4 +/- 2.3 mM). All rats received an infusion of [3-3H]glucose and [U-14C]lactate. The ratio between hepatic [14C]UDP-glucose sp act (SA) and 2X [14C]-phosphoenolpyruvate (PEP) SA (the former reflecting glucose-6-phosphate SA) measured the portion of total glucose output derived from PEP-gluconeogenesis. In control rats, HGP was decreased by 58% in hyperglycemic compared to euglycemic conditions (4.5 +/- 0.3 vs. 10.6 +/- 0.2 mg/kg.min; P < 0.01). When evaluated under identical glycemic conditions, HGP was significantly increased in diabetic rats (18.9 +/- 1.4 vs. 6.2 +/- 0.4 mg/kg.min; P < 0.01). In control rats, hyperglycemia increased glucose cycling (by 2.5-fold) and the contribution of gluconeogenesis to HGP (91% vs. 45%), while decreasing that of glycogenolysis (9% vs. 55%). Under identical plasma glucose and insulin concentrations, glucose cycling in diabetic rats was decreased (by 21%) and the percent contribution of gluconeogenesis to HGP (73%) was similar to that of controls (84%). These data indicate that: (a) hyperglycemia causes a marked inhibition of HGP mainly through the suppression of glycogenolysis and the increase in glucokinase flux, with no apparent changes in the fluxes through gluconeogenesis and glucose-6-phosphatase; under similar hyperglycemic hypoinsulinemic conditions: (b) HGP is markedly increased in diabetic rats; however, (c) the contribution of glycogenolysis and gluconeogenesis to HGP is similar to control animals.Keywords
This publication has 28 references indexed in Scilit:
- Assessment of insulin action in insulin-dependent diabetes mellitus using [6(14)C]glucose, [3(3)H]glucose, and [2(3)H]glucose. Differences in the apparent pattern of insulin resistance depending on the isotope used.Journal of Clinical Investigation, 1986
- Glucose and fructose 6-phosphate cycle in humansAmerican Journal of Physiology-Endocrinology and Metabolism, 1986
- Importance of Glucose Per Se to Intravenous Glucose Tolerance: Comparison of the Minimal-Model Prediction with Direct MeasurementsDiabetes, 1985
- Insulin modulation of gene expressionDiabetes/Metabolism Research and Reviews, 1985
- Partial pancreatectomy in the rat and subsequent defect in glucose-induced insulin release.Journal of Clinical Investigation, 1983
- Effect of glucose, independent of changes in insulin and glucagon secretion, on alanine metabolism in the conscious dog.Journal of Clinical Investigation, 1980
- HYPERGLYCEMIA INHIBITS GLUCOSE PRODUCTION IN MAN INDEPENDENT OF CHANGES IN GLUCOREGULATORY HORMONESJournal of Clinical Endocrinology & Metabolism, 1978
- Glucose Disposal during Insulinopenia in Somatostatin-Treated DogsJournal of Clinical Investigation, 1978
- Intrinsic regulation of glucose output by rat liverAmerican Journal of Physiology-Legacy Content, 1969
- A rapid filter paper assay for UDPglucose-glycogen glucosyltransferase, including an improved biosynthesis of UDP-14C-glucoseAnalytical Biochemistry, 1968