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At least 19 recordsLinked to original sources

Enzymatic utilization of glucose by a basidiomycete.

Meloche, H. P., Jr. (Northern Regional Research Laboratory, Peoria, Ill.). Enzymatic utilization of glucose by a basidiomycete. J. Bacteriol. 83:766-774. 1962.-Cell-free extracts of acetone-dried Lactarius torminosus NRRL 2900 were prepared. These extracts contained hexokinase. They also contained triphosphopyridine nucleotide (TPN)-specific glucose-6-phosphate dehydrogenase and catalyzed the reduction of TPN in the presence of d-fructose-6-phosphate, 6-phospho-d-gluconic acid (6PG), and d-ribose-5-phosphate (R5P). Aged preparations oxidized d-glucose-6-phosphate (G6P) to 6PG, whereas fresh preparations oxidized G6P to a pentose with the uptake of 1 mumole of O(2) and the evolution of 1 mumole of CO(2) per mumole of G6P. Evidence for the action of transketolase in the metabolism of R5P by cell-free extracts was obtained.Cell-free preparations lacked hexosediphosphate enzymes. Triosephosphate isomerase and F6P kinase could not be demonstrated; however, aldolase activity was present. Evidence is presented for the conversion of d-glyceraldehyde-3-phosphate to pyruvate. In addition, phosphohexoisomerase was demonstrated. It appears that a hexosemonophosphate pathway operates in L. torminosus extracts and may be the major mechanism of glucose dissimilation in this organism.

Basidiomycota↗

Pancreatic islet discrimination of hexose anomers. I. Steady-state computer simulation.

Pancreatic islets detect glucose level by phosphorylating it and converting the glycolytic rate to a signal to secrete insulin. Insulin secretion is greater from the alpha- than from the beta-anomer when the D-glucose level is below 22 mM. D-mannose behaves similarly but at nearly twofold higher concentrations. Two explanations have been proposed: 1) glucokinase, which has the same anomeric preference, is the principal hexose phosphorylating enzyme and limits glycolytic rate. 2) Phosphofructokinase limits glycolysis and hexokinase is the principal enzyme phosphorylating hexose; hexosediphosphate activators of phosphofructokinase are more readily synthesized from alpha-anomers of hexose phosphates. We have simulated both alternatives with a detailed anomerically specific model of the hexose-metabolizing glycolytic enzymes. The pathway preference for alpha-anomer of both hexoses was adequately reproduced with anomerically active limiting glucokinase. The other mechanism did not reproduce the observed pathway preference.

Animals↗

Some effects of fructose-1,6-diphosphate on rat myocardial tissue related to a membrane-stabilizing action.

This study aims at elucidating the mechanism of action of extracellular fructose-1,6-diphosphate (FDP). FDP is able to inhibit Ca++ entry into the myocardial tissue with an IC50 value of 11.5 mM and in addition, it is bound by rat heart slices, the binding being activated by Zn and conditions of chemical hypoxia induced by KCN and iodoacetate. The overall effect of extracellular FDP includes an increase of frequency and amplitude of contraction of perfused heart at concentration below 1 mM, and, in general, a stimulation of the oxygen consumption of the tissue. The antihaemolytic effect of FDP suggests its action as a membrane stabilizer. The effects of extracellular FDP on the myocardial cell can be interpreted both on the basis of a limited permeability of the cell membrane to it and as a purely extracellular effect transduced through the cell membrane with a final response consisting of an increase in the intracellular FDP.

Animals↗

Fructose-1,6-diphosphate as an in vitro and in vivo anti-alcohol agent in the rat.

Fructose-1, 6-diphosphate (FDP) decreases the effect of ethanol on Ca++ entry and inhibits the ethanol-stimulated phosphate efflux in rat heart slices. FDP also inhibits the ethanol-stimulated [36Cl-]-uptake by rat brain microvesicles and affects the isolated GABA-receptor in a way opposite to that of ethanol. The in vivo effects of FDP include a dose-dependent decrease in ethanol-induced gastric ulcers and a decrease in the serum transaminase levels raised by chronic ethanol administration. Other central actions of ethanol such as diuresis, narcosis, dependence and withdrawal symptoms are also counteracted by FDP.

Animals↗

Improved exercise tolerance by i.v. fructose-1,6-diphosphate in chronic, stable angina pectoris.

The effect of IV fructose-1,6-diphosphate (FDP) on transient, reproducible myocardial ischemia was evaluated in ten patients, aged 50 to 66 years, with chronic, stable exertional angina. FDP or placebo (glucose) were administered between basal and posttreatment ergometric stress testing; an identical procedure was repeated in each patient with the second treatment on the following day according to a single-blind, cross-over design. FDP improved exercise tolerance and total work capacity, significantly delaying the onset of ST-segment depression and angina. Nevertheless, the critical level of the rate x pressure (R X P) product, causing appearance of myocardial ischemia, was not remarkably changed. However, the R X P product at same workload was significantly lower after FDP. These results suggest that improved exercise tolerance might have resulted from peripheral (increased oxygen delivery to skeletal muscle) rather than from central (cardiac) effects of FDP.

Aged↗

Serum lysozyme increased by fructose-1, 6-diphosphate in men, rabbits, and mice.

Fructose-1, 6-diphosphate hydrated sodium salt (FDP), intravenously injected, remarkably stimulates the production of serum lysozyme in man, rabbit, and mouse with a different kinetics in each of them: Man and rabbit show, in the first hour, a concentration peak followed by a slow decrease, whereas in mouse the concentration is less variable with time.

Animals↗