Search PubMed⌕ Search

SEARCH · Search PubMed

Results for “Fructosediphosphates”

Search indexed PubMed citations on genomics, clinical trials, systematic reviews and public health. Explore titles, authors and supplied subject terms, then open the PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 613 records · Page 34Linked to original sources

Reaction mechanism of erythrocyte phosphofructokinase.

The reaction mechanism of erythrocyte phosphofructokinase (PFK) was investigated by the initial velocity and the product inhibition. Intersecting lines obtained with initial velocity studies are consistent with a sequential mechanism and the formation of ternary complex as an intermediate. The product inhibition studies support an ordered Bi Bi mechanism in which fructose 6 phosphate (F6P) is the first substrate binding and adenosine diphosphate (ADP) is dissociated from the enzyme before fructose-1,6-P2 (FDP).

Adenosine Diphosphate↗

Involvement and identification of a lysine in the PPi-site of pyrophosphate-dependent phosphofructokinase from Giardia lamblia.

The substrate binding and/or catalytic site of the pyrophosphate-dependent phosphofructokinase (PPi-PFK) of Giardia lamblia was investigated using an ATP affinity label, 2',3'-dialdehyde of ATP, oxidized ATP (oATP), for the involvement of lysine residues. The enzyme, which uses PPi rather than ATP as a substrate was inhibited by low concentrations of oATP. Oxidized ATP behaves as an affinity label for the substrate binding site as evidenced by saturation kinetics with the formation of reversible complex prior to inactivation, and the observation that the inactivation was stoichiometric with the amount of oATP incorporated which extrapolated to 1 mol per mol of monomeric PPi-PFK. The critical lysine modified by oATP is proposed to be located at the PPi-binding site since complete protection is afforded by PPi; and under steady-state, PPi was competitive with the inhibitor. Other substrates of the reaction in either the forward or reverse direction did not completely protect against inactivation. This is further confirmed by the non-competitive inhibition displayed by either Pi or fructose 1,6, bisphosphate. Furthermore, the Km values for Pi and fructose 1,6 bisphosphate of the oATP-modified enzyme were not altered. The oATP-modified peptides were analyzed by HPLC peptide mapping, and the profile showed a major peak absorbing at 258 nm, which was absent when the modification was carried out in the presence of MgPPi. This peptide was sequenced and found to contain Lys-497. These results suggest that the essential lysine-497 modified by oATP is involved in the binding and/or catalysis of PPi and that an ATP-type of binding domain, with reference to the phosphoryl groups, is present in the PPi-dependent phosphofructokinase of Giardia.

Adenosine Triphosphate↗

Rana esculenta L. liver Fru-1,6-P2ase and G-6-Pase activity and Fru-2,6-P2 concentration after acclimation at 5 and 25 degrees C.

The activities of Fru-1,6-P2ase and G-6-Pase in liver and kidney of frogs acclimated at 5 and 25 degrees C and Fru-2,6-P2 level in liver were investigated. The aim of this study was to examine the effect of thermal acclimation on regulatory enzymes of gluconeogenesis and on concentration of gluconeogenesis regulator. Fru-1,6-P2ase activity in liver of frogs acclimated at 5 degrees C was 6.16 +/- 0.77 and 4.46 +/- 0.46 U/g wt in those acclimated at 25 degrees C; the respective values for G-6-Pase were 0.46 +/- 0.04 and 0.25 +/- 0.02 U/g wt. Fru-1,6-P2ase activity in kidney was 3.2 +/- 0.48 U/g wt at 5 degrees C and 2.64 +/- 0.23 U/g wt at 25 degrees C; the respective values for G-6-Pase were 0.2 +/- 0.05 and 0.17 +/- 0.05 U/g wt. K(m) of frog liver Fru-1,6-P2ase determined after acclimation at 5 degrees C and to 25 degrees C was 1.36 and 1.41 microM, respectively. Frog liver Fru-1,6-P2ase was allosterically inhibited by AMP. I0.5 determined after acclimation at 5 degrees C was 10.55 microM and after acclimation at 25 degrees C was 10.88 microM. Liver Fru-2,6-P2 concentration after acclimation at 5 degrees C was 0.44 +/- 0.13 nmol/g wt in comparison with 0.58 +/- 0.19 nmol/g wt after acclimation at 25 degrees C. In conclusion, cold exposure increased hepatic gluconeogenic capacity of Rana esculenta.

Acclimatization↗

Fructose- 1,6-bisphosphate did not affect hippocampal neuronal damage caused by 10 min of complete umbilical cord occlusion in fetal sheep.

Fructose-1, 6-bisphosphate (FBP) has a neuroprotective effect in neonatal and adult rats. The purpose of this study was to examine the effects of FBP on hippocampal neuronal damage in fetal sheep asphyxiated by 10 min of complete umbilical cord occlusion. Thirteen fetal sheep at 124 days of gestation were surgically instrumented with catheters. Cardiorespiratory parameters were monitored, and biochemical analyses were performed with the blood samples. During the insult seven fetuses were given FBP (500 mg/kg) and six were given iso-osmotic saline, and hippocampal neuronal damage was examined histologically and scored. Cardiorespiratory changes were the same in both groups, and there was no neuroprotective effect of FBP in this study. However the decrease of serum total Ca level implied the Ca- chelating effect of FBP.

Animals↗

Overexpression of phosphofructokinase and pyruvate kinase in citric acid-producing Aspergillus niger.

Phosphofructokinase and pyruvate kinase were overexpressed in the filamentous fungus Aspergillus niger. Moderate overexpression of these glycolytic enzymes in A. niger N400 (3-5-fold the wild-type level), either individually or simultaneously, did not increase citric acid production by the fungus significantly. Thus, phosphofructokinase and pyruvate kinase do not seem to contribute in a major way to flux control of the metabolism involved in the conversion of glucose to citric acid. Overexpression of phosphofructokinase and pyruvate kinase did not influence the activities of other enzymes in the pathway, nor did it change intermediary metabolite levels. However, in strains overexpressing phosphofructokinase, the level of fructose 2,6-bisphosphate, a positive allosteric effector of phosphofructokinase, was reduced almost 2-fold compared to the wild-type strain. Measurements with purified phosphofructokinase, using substrate, product and effector concentrations found intracellularly, showed that such a reduction in the fructose-2,6-bisphosphate level could decrease the specific activity of phosphofructokinase in the cell significantly. Thus, the fungus seems to adapt to overexpression of phosphofructokinase by decreasing the specific activity of the enzyme through a reduction in the level of fructose 2,6-bisphosphate.

Aspergillus niger↗

Regulation of the futile cycle of fructose phosphate in sea mussel.

Carbohydrate metabolism in mussels shows two phases separated seasonally. During summer and linked to food supply, carbohydrates, mainly glycogen, are accumulated in the mantle tissue. During winter, mantle glycogen decreases concomitantly with an increase in triglyceride synthesis. In spring, after spawning, the animals go in to metabolic rest until the beginning of a new cycle. This cycle is regulated by the futile cycle of fructose phosphate that implicates PFK-1 and FBPase-1 activities. These enzymes and the bifunctional PFK-2/FBPase-2 that regulates the Fru-2,6-P2 levels, are seasonally modulated by covalent phosphorylation/dephosphorylation mechanisms, as a response to unknown factors. The futile cycle of the fructose phosphates also controls the transition from physiological aerobiosis to hypoxia. The process is independent of the phosphorylation state. In this sense, a pH decrease triggers a small Pasteur effect during the first 24 h of aerial exposure. Variations in the concentration of Fru-2,6-P2 and AMP are the sole factor responsible for this effect. Longer periods of hypoxia induce a metabolic depression characterized by a decrease in Fru-2,6-P2 which is hydrolyzed by drop in the pH. In this review, the authors speculate on the two regulation processes.

Animals↗

Regulation of glycolysis during acclimation of scallops (Patinopecten yessoensis Jay) to anaerobiosis.

Some glycolytic metabolites in the adductor muscle were measured after transfer of scallops from aerobic to anaerobic saltwater for 12 h. The level of octopine increased gradually during the initial 3 h incubation, and thereafter the level increased rapidly up to 12 h. The ATP level also did not show any significant change for the initial 3 h, and then decreased rapidly. The fructose 2,6-biphosphate (Fru 2,6-BP) level increased drastically during the initial 3 h incubation, but thereafter the level did not show any significant change up to 12 h. In the short-term effects of anaerobiosis for 90 min, the level of fructose 6-phosphate (Fru 6-P) increased just after transfer to anaerobiosis, and then its level decreased. In contrast, the fructose 1,6-biphosphate (Fru 1,6-BP) level increased greatly, at the time when both glucose 6-phosphate (Glc 6-P) and Fru 6-P decreased. The Fru 2,6-BP level did not any significant change during the initial 15 min incubation, but thereafter the level increased gradually up to 90 min. Scallop 6-phosphofructo 1-kinase (EC 2.7.1.11) (PFK1) was strongly activated by 1 microM Fru 2,6-BP when 0.2 mM Fru 6-P was used as a substrate, but the activity was not affected at 5 mM Fru 6-P. In view of these results, the regulation mechanism of glycolysis is discussed.

Adenosine Triphosphate↗

Regulatory properties of Rana esculenta liver D-fructose-1,6-bisphosphate 1-phosphohydrolase and their comparison with properties of other vertebrate liver isoenzymes.

D-Fructose-1,6-bisphosphate 1-phosphohydrolase [EC 3.1.3.11] (Fru-1,6P2ase), a regulatory enzyme of gluconeogenesis, was isolated from Rana esculenta liver in homogeneous from with approximately 30% yield. Basic kinetic properties of the enzyme and its subunit molecular weight were determined. Km is 1.72 microM. Like other vertebrate Fru-1,6P2ase, the frog liver enzyme is inhibited by fructose-2,6-bisphosphate (Fru-2,6P2) competitively, Ki is 78 nM and by AMP allosterically, I0.5 is 10.9 microM. Both inhibitors (Fru-2,6P2 and AMP) act synergistically on liver Fru-1,6-P2ase. Ki for Fru-2,6P2 determined in the presence of 1-10 microM of AMP were 35-2 nM, respectively. Maximum activity was found at pH 7.5. Like other Fru-1,6P2ases, the frog enzyme requires magnesium ions for its activity and is activated by potassium ions; the Ka for Mg2+ is 267 microM, Ka for K+ is 77 mM. The subunit molecular weight of the frog liver Fru-1,6P2ase was 37,300 Da. A great similarity between regulatory properties of frog liver Fru-1,6P2ase and liver enzymes of other vertebrates, suggests a similar regulation of gluconeogenesis in amphibia and other vertebrates.

Adenosine Monophosphate↗

Ribose 1,5-bisphosphate regulates rat kidney cortex phosphofructokinase.

Phosphofructokinase (EC 2.7.1.11) is a major enzyme of the glycolytic pathway, catalyzing the conversion of fructose 6-phosphate to fructose 1,6-bisphosphate. In this study, we demonstrated the effect of ribose 1,5-bisphosphate on phosphofructokinase purified from rat kidney cortex. Ribose 1,5-bisphosphate relieved the phosphofructokinase from ATP inhibition and increased the affinity for fructose 6-phosphate at nanomolar concentrations. These activating effects of ribose 1,5-bisphosphate were enhanced in the presence of AMP. Ribose 1,5-bisphosphate reduced the inhibition of the phosphofructokinase induced by citrate. These results suggest that ribose 1,5-bisphosphate is an activator of rat kidney cortex phosphofructokinase and synergistically regulates the enzyme activity with AMP.

Adenosine Monophosphate↗

Effects of fructose-1,6-bisphosphate on morphological and functional neuronal integrity in rat hippocampal slices during energy deprivation.

D-fructose-1,6-bisphosphate, a high energy glycolytic intermediate, attenuates ischemic damage in a variety of tissues, including brain. To determine whether D-fructose-1,6-bisphosphate serves as an alternate energy substrate in the CNS, rat hippocampal slices were treated with D-fructose-1,6-bisphosphate during glucose deprivation. Unlike pyruvate, an endproduct of glycolysis, 10 mM D-fructose-1,6-bisphosphate did not preserve synaptic transmission or morphological integrity of CA1 pyramidal neurons during glucose deprivation. Moreover, during glucose deprivation, 10-mM D-fructose-1,6-bisphosphate failed to maintain adenosine triphosphate levels in slices. D-fructose-1,6-bisphosphate, however, attenuated acute neuronal degeneration produced by 200 microM iodoacetate, an inhibitor of glycolysis downstream of D-fructose-1,6-bisphosphate. Because (5S, 10R)-(+)-5-methyl-10, 11-dihydro-5H-dibenzo [a,d]cyclohepten-5,10-imine, an antagonist of N-methyl-D-aspartate receptors, exhibited similar protection against iodoacetate damage, we examined whether (5S, 10R)-(+)-5-methyl-10, 11-dihydro-5H-dibenzo [a,d]cyclohepten-5,10-imine and D-fructose-1,6-bisphosphate share a common neuroprotective mechanism. Indeed, D-fructose-1,6-bisphosphate diminished N-methyl-D-aspartate receptor-mediated synaptic responses and partially attenuated neuronal degeneration induced by 100-microM N-methyl-D-aspartate. Taken together, these results indicate that D-fructose-1,6-bisphosphate is unlikely to serve as an energy substrate in the hippocampus, and that neuroprotective effects of D-fructose-1,6-bisphosphate are mediated by mechanisms other than anaerobic energy supply.

Adenosine Triphosphate↗

The HPr(Ser) kinase of Streptococcus salivarius: a hexameric bifunctional enzyme controlled by glycolytic intermediates and inorganic phosphate.

Phosphorylation of HPr, the small phosphocarrier protein of the phosphoenolpyruvate:sugar phosphotransferase system, on Ser46 by the HPr(Ser) kinase (HPrK/P) is a vital step in catabolite repression in Gram-positive bacteria. Streptococcus salivarius HPrK/P is reported to be a multimeric protein not regulated by metabolic intermediates. We re-evaluated the molecular mass of S. salivarius HPrK/P using sedimentation equilibrium ultracentrifugation, demonstrated that S. salivarius HPrK/P dephosphorylated HPr(Ser-P) and further characterised the effect of fructose 1,6-bisphosphate and other metabolic intermediates on enzyme activities. The molecular mass of S. salivarius HPrK/P was 201305 Da, suggesting that streptococcal HPrK/P was a hexameric protein. Fructose 1,6-bisphosphate poorly activated streptococcal HPrK/P but protected kinase activity against inhibition by inorganic phosphate and inhibited dephosphorylation of HPr(Ser-P). Phosphoenolpyruvate and 2-phosphoglycerate, but not fructose 1-P, fructose 6-P, and ribulose 1,5-bisphosphate, also protected kinase activity against inhibition by inorganic phosphate. Thus, unlike previous reports, we show that fructose 1,6-bisphosphate and other key glycolytic intermediates played a pivotal role as a modulator of streptococcal HPrK/P activities.

Bacterial Proteins↗

Effect of fructose-1, 6-diphosphate versus diphenhydramine on mortality in compound 48/80-induced shock.

Fructose-1,6-diphosphate (FDP) has a salutary effect on hemorrhagic, traumatic and endotoxic shock. The role of FDP on compound 48/80-induced shock was therefore investigated. Sprague Dawley aged male rats (448+/-7.4 gm body weight) were randomly assigned into three groups and treated intraperitoneally with diphenhydramine (DPHM) 15 mg/kg (n=11), 12.5 ml of 10% FDP (n=10) and 12.5 ml saline (n=10). The rats were injected with compound 48/80 (5 mg/kg) 30 min later, and monitored every 10 min for 60 min. Arterial pressure was higher in FDP rats than in DPHM (P<0.01) or saline (P<0.005) groups. Plasma potassium (K(+)) was lower in the FDP group (P<0.01). Arterial pO2 and pCO2 were within physiological range in all groups. A profound decrease in arterial pH and bicarbonate (HCO3(-)) was also observed in all groups. Mortality at 48 h in the saline group was 100%, in the DPHM group 91%, and in the FDP group 20% (P<0.001 and P<0.005, respectively). FDP improved survival significantly in this study.

Adenosine Triphosphate↗

Intravenous toxicity of fructose-1,6-bisphosphate in rats.

Fructose-1,6-bisphosphate (FBP) is a bisphosphorilated sugar with a protective action against events that lead to cellular damage. The toxicity of the drug was assessed when administered intravenously in Wistar rats in doses of between 250 and 4000 mg/kg. Ionic calcium, total calcium, inorganic serum phosphate and the electrocardiographic profile of these animals were assessed. The lethal dose (LD(50)) was established by means of PROBIT processing. There was no reduction in the levels of total calcium, with the administration of increased doses of FBP, although there was a significant reduction in the levels of ionic calcium in those groups that received 250 mg/kg and over. The serum phosphate showed a significant statistical increase in those groups that received 750 mg/kg and over. The LD(50) obtained in 24 h was 1068 mg/kg. Though it was not possible to elucidate the toxic mechanism of FBP, the electrocardiogram (ECG) showed that all the rats died of cardiac arrest.

Animals↗

High-performance thin-layer chromatography method for inositol phosphate analysis.

A simple and inexpensive high-performance thin-layer chromatography (HPTLC) method for the analysis of inositol mono- to hexakisphosphates on cellulose precoated plates is described. Plates were developed in 1-propanol-25% ammonia solution-water (5:4:1) and substance quantities as low as 100-200 pmol were detected by molybdate staining. Chromatographic mobilities of nucleotides and phosphorylated carbohydrates were also characterized. Charcoal treatment was employed to separate nucleotides from inositol phosphates with similar R(F) values prior to HPTLC analysis. Practical application of the HPTLC system is demonstrated by analysis of grain extracts from wild type and low-phytate mutant barley as well as phytate degradation products resulting from barley phytase activity.

6-Phytase↗

Influence of age and caloric restriction on liver glycolytic enzyme activities and metabolite concentrations in mice.

The influence of caloric restriction (CR) from 2 months of age on the activities of liver glycolytic enzymes and metabolite levels was studied in young and old mice. Livers were sampled 48 h after the last scheduled feeding time. Old mice on CR showed significant decreases in the activities of all the enzymes studied, except for aldolase, triosephosphate isomerase and phosphoglycerate mutase, which were unchanged. The metabolites glucose, glucose-6-phosphate, fructose-6-phosphate, pyruvate and lactate were lower while fructose-1,6-bisphosphate, glyceraldehyde-3-phosphate, dihydroxyacetone phosphate, 3-phosphoglycerate and phosphoenolpyruvate were increased in old CR. Young mice on CR also showed reduced enzyme activities, except for aldolase, triosephosphate isomerase and enolase which were unchanged when compared with young controls. The metabolites glucose, glucose-6-phosphate, fructose-6-phosphate and pyruvate were decreased when compared with young controls, while phosphoenolpyruvate was increased. Ketone bodies increased (65%) in old, but not young, CR mice while fructose-2,6-bisphosphate decreased in both young (22%) and old CR (28%) mice. The results indicate that decreased hepatic glucose levels in CR mice are associated with decreased enzyme activities but not a uniform decrease in metabolite levels. Increased ketone body levels indicate increased utilization of non-carbohydrate fuels while decreased fructose-2,6-bisphosphate level suggests its importance in the control of glycolysis in CR.

3-Hydroxybutyric Acid↗

A modelling study of feedforward activation in human erythrocyte glycolysis.

Though feedforward activation (FA) is a little known principle of control in metabolic networks, there is one well-known example; namely, the activation of pyruvate kinase (PK) by fructose-1,6-biphosphate (FBP) in glycolysis. The effects of this activation on the enzyme's kinetics are well characterised, but its possible role in glycolytic control has not been determined, and, experimentally, there is as yet no direct way of modifying the enzyme to remove just the FBP activation without affecting other aspects of the enzyme's kinetics. Given this limitation, we used a detailed numerical simulation of human erythrocyte glycolysis to simulate the effects of selective removal of the activation of PK by FBP on steady-state metabolite concentrations and on the dynamic response of glycolytic flux to a sudden increase of the cell's demand for ATP. Our modelling results predict that in the absence of FA steady-state levels of metabolites within the activation loop, i.e. from FBP to phosphoenolpyruvate, would be four- to thirteen-fold higher than normal, whereas levels of ATP and metabolites outside the loop, i.e. glucose-6-phosphate, fructose-6-phosphate and pyruvate, would be lower than normal. Existing clinical evidence in a patient with haemolytic anaemia, correlated with a lack of activation of PK by FBP (Paglia D.E., Valentine W.N., Holbrook C.T., Brockway R., Blood (1983) 62 972-979), is consistent with this prediction. In response to changing demand for ATP, the model predicts that the corresponding change of glycolytic flux would entail changes of metabolite concentrations in the absence of FA, but that in its presence the levels of metabolites within the activation loop remain essentially unperturbed. Thus, our results suggest that by stabilising metabolite pools in the face of variable glycolytic flux, FA may serve to avoid perturbations of the oxygen affinity of haemoglobin (sensitive to the levels of 2,3-phosphoglycerate) and of cell osmolality that would otherwise occur during variations in the cell's demand for ATP. In addition, by significantly raising the steady-state setpoint of intermediate metabolite pools, the productivity index (ratio of glycolytic flux to total metabolites in the pathway) of glycolysis would fall almost four-fold in the absence of forward activation.

2,3-Diphosphoglycerate↗

Fat body fructose-2,6-bisphosphate content and phosphorylase activity correlate with changes in hemolymph glucose concentration during fasting and re-feeding in larval Manduca sexta.

Fasting of second-day fifth instar larval Manduca sexta leads to a rapid decrease in hemolymph glucose concentration from 3.39+/-0.29 to 0.33+/-0.06 mM in 1 h, along with a decrease in the fructose-2,6-bisphosphate content in the fat body (from 5.92+/-0.31 to 2.80+/-0.47 nmol fructose-2,6-bisphosphate/g fat body in 3 h) and activation of fat body glycogen phosphorylase (from 16% to 55-65% phosphorylase a). During re-feeding an increase in the glucose level in the hemolymph was observed (from 0.36+/-0.05 to 3.91+/-0.36 mM in 3 h), along with an increase in the fructose-2,6-bisphosphate level in the fat body (from 2.88+/-0.47 to 6.66+/-0.42 nmol fructose-2,6-bisphosphate/g fat body in 3 h) and inactivation of fat body glycogen phosphorylase (from 56% to 16% phosphorylase a). These data are consistent with the hypothesis that a decrease in hemolymph glucose both activates fat body glycogen phosphorylase and causes a decrease in fat body fructose-2,6-bisphosphate content. Both of these changes would favor conversion of stored glucose to trehalose in the fat body. When second-day larvae were decapitated, the changes in hemolymph glucose and fat body fructose-2,6-bisphosphate were very similar to those observed in fasting whole insects. These data are consistent with a direct role for glucose in controlling carbohydrate metabolism in Manduca sexta.

Animals↗

Antagonistic effects of hypertrehalosemic neuropeptide on the activities of 6-phosphofructo-1-kinase and fructose-1,6-bisphosphatase in cockroach fat body.

Hypertrehalosemic neuropeptides from the corpora cardiaca such as the decapeptide Bld HrTH bring about a profound switch in the metabolic activity of cockroach fat body during which production of the blood sugar trehalose is stimulated while the catabolism of carbohydrate (glycolysis) is inhibited. The mechanisms of the metabolic switch are not fully understood. Incubation of isolated fat body from the cockroach Blaptica dubia with 10(-8) M Bld HrTH, for 10-60 min, stimulated glycogen breakdown and increased the content of the substrates of both the glycolytic enzyme 6-phosphofructo-1-kinase (PFK, EC 2.7.1.11) and the gluconeogenic enzyme fructose-1,6-bisphosphatase (FBPase, EC 3.1.3.11) in the tissue. The glycolytic signal fructose 2,6-bisphosphate was markedly decreased in fat body on incubation with Bld HrTH. The content of ATP was slightly reduced, while the contents of ADP and AMP were increased after incubation with the hormone. Fructose 2,6-bisphosphate is a potent activator of PFK and a strong inhibitor of FBPase purified from fat body. The activity of PFK was decreased by about 90% when the hormone-dependent changes in effectors and substrates in fat body were simulated in vitro. FBPase, in contrast, was activated about 25-fold under these conditions, suggesting the hormone to stimulate gluconeogenesis in fat body. The data support the view that fructose 2,6-bisphosphate is a pivotal intracellular messenger in the hormone-induced metabolic switch from carbohydrate degradation to trehalose production in cockroach fat body.

Adenosine Monophosphate↗