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 415 records · Page 23Linked to original sources

Fructose 2,6-bisphosphate: changes during neonatal maturation and aging of rat and potential role in regulation of glucose utilization.

During the 6 days following birth, tissue levels of fructose-2,6-P2 in rat brain, liver, muscle, heart and kidney did not significantly change. However, by the tenth day postpartum fructose-2,6-P2 levels in brain, heart, and skeletal muscle increased approximately 50% and attained adult values. During maturation of liver, adult levels of fructose-2,6-P2 were not achieved until 3-4 weeks after birth or approximately at the time of maximum rates of gluconeogenesis. Renal fructose-2,6-P2 levels in the neonate were initially elevated and 2-3 weeks after birth decreased approximately 2.5-fold to adult values. With the exception of the pons-medulla, which showed no significant changes in fructose-2,6-P2 amounts, levels of this regulatory sugar from aging brain regions were generally decreased. The fructose-2,6-P2 levels from heart atria of old rats (24-30 month) were also significantly decreased. In diaphragm, the fructose-2,6-P2 levels were increased at 12 months of age and at 27 months of age were twice the level at 3 months. The fructose-2,6-P2 levels during the aging of liver, skeletal muscle (EDL and soleus), spleen, thymus, kidney, testis and lung were not significantly altered.

Aging↗

Rat hepatic 6-phosphofructo 2-kinase/fructose 2,6-bisphosphatase: a unique bifunctional enzyme.

Fructose 2,6-bisphosphate is a potent allosteric activator of 6-phosphofructo 1-kinase and an inhibitor of fructose 1,6-bisphosphatase. It potentiates the effect of AMP on both enzymes. A great deal of compelling evidence supports the hypothesis that fructose 2,6-bisphosphate plays a key role in the hormonal and substrate regulation of substrate cycling at the fructose 6-phosphate/fructose 1,6-bisphosphate level in liver. This regulation is exerted at the level of the enzyme activities responsible for the synthesis and degradation of fructose 2,6-bisphosphate. Synthesis of the compound is catalyzed by a unique enzyme which transfers the gamma-phosphate of ATP to the C2 position of fructose 6-phosphate (ATP:D fructose 6-phosphate 2-phosphotransferase) while degradation is catalyzed by a phosphohydrolase activity which is specific for the C-2 position of fructose 2,6-bisphosphate (D-fructose 2,6-bisphosphate 2-phosphohydrolase). These activities are distinct from the classical 6-phosphofructo 1-kinase and fructose 1,6-bisphosphatase with regard to molecular weight, interaction with ligands, and the efficiency with which phosphoryl transfer occurs. Both activities have been purified to homogeneity and have been shown to be present in a single enzyme protein, i.e. the enzyme is bifunctional. Incubation of the 6-phosphofructo 2-kinase/fructose 2,6-bisphosphatase with cAMP-dependent protein kinase and ATP leads to phosphorylation of the enzyme resulting in inactivation of the phosphotransferase activity and stimulation of the phosphohydrolase activity. Since fructose 2,6-bisphosphate is not further metabolized and can only be recycled to fructose 6-phosphate, simultaneous modulation of the synthesis and degradation of the compound by covalent modification of a single protein provides a very efficient and sensitive regulatory mechanism. The bifunctional enzyme was also shown to possess an ATPase activity which was nearly equal to the activity of the kinase reaction. However, in the presence of fructose 6-phosphate the enzyme did not transfer phosphate to water but rather to the C-2 position of the phosphorylated sugar. The ability of the enzyme to catalyze a partial reaction at a rate nearly equal to that of the forward reaction suggested that the reaction mechanism of the kinase proceeds by a two step transfer, i.e. via a phosphoryl enzyme intermediate.(ABSTRACT TRUNCATED AT 400 WORDS)

Adenosine Triphosphate↗

Temporal organization of the phosphofructokinase/fructose-1,6-biphosphatase cycle.

The dynamic and functional organization of the fructose-6-phosphate/fructose-1,6-bisphosphate cycle has been investigated in an open and homogeneous reconstituted enzyme system containing phosphofructokinase, fructose-1,6-biphosphatase, pyruvate kinase, adenylate kinase and glucose 6-phosphate isomerase. The properties of this system were analyzed by a model based on the kinetic properties of the individual enzymes. It could be shown that in a broad parameter region sustained oscillations arise. At low maximum activities of phosphofructokinase a domain of multiple stationary states occurs, in which stable stationary states can coexist with a stable oscillatory or with an alternate stable stationary state. The occurrence of oscillations and the emergence of alternate stationary motions are caused mainly by the reciprocal effect of the allosteric effectors AMP and fructose-2,6-bisphosphatase must be involved in the reaction network. The study of bisphosphatase. The attained states can either be glycolytic or gluconeogenic, their metabolic efficiencies depend mainly on the maximum activities of phosphofructokinase and fructose-1,6-bisphosphatase as well as on the supply of fructose-6-phosphate and fructose-1,6-bisphosphate. Efficient metabolic states arise only when both the enzyme concentrations and the rates of substrate supply favor either the glycolytic or the gluconeogenic mode of action. At medium maximum concentrations of the enzymes oscillations occur, in which glycolytic and gluconeogenic states are consecutively passed. A high rate of substrate cycling is observed only at the transitions between the functionally antagonistic phases of the periodicities. By this temporal organization the mean efficiency of the states is increased. The integration of fructose-2,6-bisphosphate as very sensitively acting activator of phosphofructokinase and inhibitor of fructose-1,6-bisphosphatase gives rise either to emergence of oscillations or of their extinction. Generally, the glycolytic mode is favored by this effector because of its stimulatory action on the phosphofructokinase activity.

Fructose-Bisphosphatase↗

Fructose 2,6-bisphosphate and the control of glycolysis by growth factors, tumor promoters and oncogenes.

Tumor and proliferating cells maintain a high glycolytic rate even under aerobic conditions. The discovery of fructose 2,6-bisphosphate, a potent stimulator of glycolysis, has prompted a re-investigation of this phenomenon. Rat hepatoma cells and fibroblasts stimulated by mitogens or transformed by the Rous sarcoma virus carrying the v-src oncogene were used as models. The results indicate that in established lines of hepatoma cells the biochemical properties of the bifunctional enzyme, PFK-2/FBPase-2, involved in the synthesis and degradation of fructose 2,6-bisphosphate, differ from those of the enzyme from normal liver. In addition, the stimulation of glycolysis induced by phorbol esters and pp60v-src can be explained by an increase in the concentration of fructose 2,6-bisphosphate and an activation of PFK-2. The mechanism of stimulation involves the transcription of a gene whose product activates PFK-2 or is a distinct PFK-2 isozyme. Finally, mercaptopurines were found to block fructose 2,6-bisphosphate synthesis in vitro and in lymphocytes and lymphoblastic cells. In these cells, this resulted in an inhibition of glycolysis.

Animals↗

Cerebral resuscitation with succinate and fructose-1, 6-diphosphate.

To test the hypotheses that succinate or fructose-1, 6-diphosphate may have a beneficial effect in global cerebral ischemia, we induced complete global cerebral ischemia for 5 minutes in rabbits by occlusion of the ascending aorta and the superior and inferior vena cavae. Fifteen minutes after restoration of cerebral blood flow, animals received an intravenous bolus of either succinate or fructose-1,6-diphosphate followed by continuous infusion. Another group of animals received fructose-1, 6-diphosphate beginning prior to aortic occlusion. Control animals received intravenous glucose by bolus, followed by infusion. Cerebrospinal fluid lactate levels were measured before occlusion and at 2 1/2 hours after occlusion, when the animals were sacrificed. In all animals electrocortical silence was demonstrated for the 5 minutes of global ischemia. The percent change in cerebrospinal fluid lactate levels in all groups was statistically similar. Only two of seven of the control animals recovered electroencephalogram amplitude during the 2 1/2 hour observation period. Time for recovery of amplitude on the electroencephalogram in animals receiving fructose-1, 6-diphosphate either before or after ischemia was statistically similar to controls. In the succinate treated group, all seven animals regained preocclusion levels of electroencephalogram amplitude within 36 minutes of the restoration of cerebral blood flow. Succinate administered after complete global cerebral ischemia resulted in significantly increased recovery of cerebral electrical activity (Fischer's exact test, p less than 0.05).

Animals↗

Macrophage lysozyme stimulation by fructose-1-6-diphosphate.

FDP produces an increase of serum lysozyme concentration which may be related to stimulation of the phagocytic activity. Mice macrophages in vitro produce extracellular and intracellular LSZ (lysozyme) and FDP (fructose-1-6-diphosphate) increases this production. Also in vivo FDP stimulates the macrophages intracellular lysozyme production. The toxic activity in vitro and the protection in vivo against Staphylococcus pyogenes after FDP administration can also be related to macrophage stimulation.

Animals↗

Fructose 2,6-bisphosphate in developing rat brain.

Fructose 2,6-bisphosphate (Fru-2,6-P2) levels and 6-phosphofructo-1-kinase and 6-phosphofructo-2-kinase activities have been studied in rat brain during development from embryonal to adult state. Fru-2,6-P2 increases slightly from day 16 of gestation, reaching a maximum 24 h after birth, remaining quite constant during postnatal development. In contrast with 6-phosphofructo-1-kinase, which increases progressively after the first week of age, 6-phosphofructo-2-kinase remains unaltered throughout the period studied. The role of Fru-2,6-P2 in controlling cerebral glycolysis is discussed.

Animals↗

Some kinetic properties of pyruvate kinase from Trypanosoma brucei: influence of pH and fructose-1,6-diphosphate.

The influence of pH on the activity of purified pyruvate kinase (ATP:pyruvate 2-O-phosphotransferase, EC 2.7.1.40) from Trypanosoma brucei has been studied. The Km for the coenzyme ADP is pH-dependent and shows the involvement of a dissociable group on the free enzyme with a pKa of 6.5-6.7. The cooperative interaction of the multiple phosphoenolpyruvate (PEP) binding sites is independent of pH in the range of 5.7-7.8. Variation of the Vmax value with pH indicates the presence of a dissociated group (pKa 6.2-6.3) and of an undissociated group (pKa 7.5-7.6) in the enzyme-substrate complex. A doubly dissociated phosphate group on PEP is shown to be essential by the effects of pH on the S0.5 value for this substrate, as is an undissociated enzyme group with a pKa in the range 6.7-7.0. It is shown that PEP and frucotse-1,6-diphosphate (FDP) act entirely in conjunction in allosterically activating the enzyme, FDP, the heterotropic effector, decreases the interaction between PEP binding sites at low concentration, and decreases the S0.5 value for PEP at higher concentration. A model for the interaction of the enzyme with its substrates is discussed.

Adenosine Diphosphate↗

A fructose bisphosphate activated lactate dehydrogenase in the liver fluke Fasciola hepatica.

Lactate dehydrogenase of Fasciola hepatica showed typical Michaelis-Menten kinetics at pH 7.2, with respect to pyruvate. Addition of physiological levels of fructose bisphosphate activated the enzyme at all substrate concentrations tested; the response to this effector being hyperbolic in nature. As well as depending upon the fructose bisphosphate concentration, the Vmax and Km are modified by different buffers. The degree of activation is much greater using Tris-HCl than phosphate buffer. The pH optimum occurs at pH 6.5 whether using physiological levels of substrate in the presence or absence of fructose bisphosphate, or high levels of substrate. Of the potential effectors tested, significant inhibition was shown by the nucleoside triphosphates, especially ATP. The importance of this inhibition, coupled with the activation by fructose bisphosphate is discussed. Fasciola hepatica lactate dehydrogenase is unusual in that it does not catalyse the reverse reaction to any measurable extent. That is, lactate oxidation is negligible unless the effector fructose bisphosphate is present. Use was made of this fact to visualise the isoenzymes of lactate dehydrogenase separated by polyacrylamide disc gel electrophoresis. Five isoenzyme bands became apparent when stained in this manner.

Animals↗

Absence of substrate channeling in the glycosome of Trypanosoma brucei.

Glycolytic enzymes in the purified glycosomes of Trypanosoma brucei brucei bloodstream forms were crosslinked to form a large protein complex by the bifunctional reagent dimethyl suberimidate [Aman, R.A., Kenyon, G.L. and Wang, C.C. (1985) J. Biol. Chem. 260, 6966-6973]. The crosslinked enzyme complex was found capable of catalyzing the chain reactions leading from glucose to the formation of alpha-glycerophosphate in the presence of ATP and NADH. To determine whether the crosslinked enzyme complex exhibits multiple substrate channelings, these chain reactions were investigated in the crosslinked complex as well as in a preparation of solubilized native glycosomes. When glucose was present at a relatively high concentration (20 mM), production of alpha-glycerophosphate by the crosslinked complex had no apparent lag phase whereas the free enzyme mixture did. However, when the glucose level was lower (0.5-5.0 mM) the difference between the two enzyme preparations disappeared, a lag phase was found in both cases. Formation of sugar phosphates from radiolabeled glucose, followed by high performance liquid chromatographic analysis, showed no significant difference in the diluting powers of exogenous, unlabeled sugar phosphates added to the crosslinked complex or free enzymes. Exogenous fructose 1,6-diphosphatase demonstrated the same effectiveness in disrupting the chain reactions catalyzed by the crosslinked complex and the free enzyme mixture. In situ generation of 2-deoxyglucose-6-phosphate from 2-deoxyglucose and ATP was observed in the crosslinked complex, but the product had no amplified inhibitory effect on the phosphoglucose isomerase activity in the complex. All results suggest an absence of substrate channelings among the glycolytic enzymes in the glycosome of T. b. brucei bloodstream form.

Adenosine Triphosphate↗

Purification and characterization of a metabolite-regulated pyruvate kinase from Leishmania major promastigotes.

The pyruvate kinase (ATP:pyruvate 2-O-phosphotransferase, EC 2.7.1.40) of Leishmania major promastigotes is a multimer of 59 kDa subunits having an Mr 181000. It is activated by its substrate phosphoenolpyruvate (PEP) in a positively cooperative manner, and heterotropically by fructose 1,6-bisphosphate (FBP). Kinetics with regard to the phosphate acceptor adenosine 5'-diphosphate (ADP), MgCl2, and KCl are hyperbolic and unaffected by FBP. The enzyme is strongly inhibited by the reaction product ATP, as well as GTP and ITP, and to a lesser degree by citrate. Of seven amino acids reported to inhibit the pyruvate kinases of other organisms, none have any effect on the L. major pyruvate kinase in vitro. The enzyme shows its maximum activity at pH 7.0 in the absence of FBP, and at pH 7.6 in its presence. Contrary to previous suggestions, the enzyme appears to be well-suited for a regulatory role in the metabolism of an aerobic organism capable of net glucose synthesis.

Animals↗

Purification in a single step and kinetic characterization of the pyruvate kinase of Trypanosoma brucei.

The pyruvate kinase of Trypanosoma brucei can be purified to homogeneity in one step by affinity elution from a phosphocellulose column with the substrate phosphoenolpyruvate (PEP) and the allosteric activator fructose-2,6-diphosphate (FDP). The purified enzyme has a specific activity of 175 mumol min-1 (mg protein)-1 and a subunit molecular mass of 59 kDa as judged by sodium dodecyl sulfate-polyacrylamide gel electrophoresis. Kinetic studies of the pure enzyme show that an increase in the PEP concentration decreases the apparent Km for adenosine diphosphate (ADP) and that an increase in the ADP concentration decreases the half saturation point (S0.5) for PEP. Likewise, the allosteric activator FDP decreases both the apparent Km for ADP and the S0.5 for PEP. ADP concentrations above 0.2 mM inhibit trypanosomal pyruvate kinase.

Adenosine Diphosphate↗

Presence of a fructose-2,6-bisphosphate-insensitive pyrophosphate: fructose-6-phosphate phosphotransferase in the anaerobic protozoa Tritrichomonas foetus, Trichomonas vaginalis and Isotricha prostoma.

Extracts of the anaerobic protozoa Tritrichomonas foetus, Trichomonas vaginalis and Isotricha prostoma contained a high activity (0.5-1 mumol min-1 (mg protein)-1) of pyrophosphate:fructose-6-phosphate phosphotransferase (PPi-PFK), but no detectable ATP: fructose-6-phosphate phosphotransferase. PPi-PFK from I. prostoma was purified close to homogeneity by adsorption on phospho-Ultrogel and elution with fructose-1,6-bisphosphate, and subsequent anion-exchange chromatography. The enzyme had an Mr of 95,000 as determined by gel filtration and consisted of subunits of Mr 48,000. PPi-PFK from I. prostoma and from T. foetus displayed hyperbolic kinetics with respect to their substrates and were not affected by fructose-2,6-bisphosphate. In sharp contrast with what has been found in other eukaryotes, no evidence could be found for the presence of fructose-2,6-bisphosphate in the two trichomonads, in I. prostoma and in Entamoeba histolytica.

Animals↗

Phosphofructokinase from Dirofilaria immitis: effect of fructose 2,6-bisphosphate and AMP on the non-phosphorylated and phosphorylated forms of the enzyme.

The enzyme responsible for the synthesis of fructose 2,6-bisphosphate (Fru-2,6-P2), 6-phosphofructo-2-kinase, was shown to be present in the heart worm, Dirofilaria immitis. The level of Fru-2,6-P2 was determined to be 4 +/- 0.3 nmol(g wet weight)-1 in the tissues of the filariid. Fru-2,6-P2 stimulated the activity of both the non-phosphorylated and phosphorylated forms of the D. immitis phosphofructokinase (PFK). The Kact values for Fru-2,6-P2 were 378 +/- 18 nM and 65 +/- 6 nM for the non-phosphorylated and phosphorylated forms, respectively, at 1 mM fructose 6-phosphate (Fru-6-P) and 1 mM ATP at pH 6.8. AMP also stimulated the activity of both forms of the enzyme with Kact values of 230 +/- 10 microM and 37.3 +/- 6.1 microM for the non-phosphorylated and phosphorylated forms, respectively. In the absence of any effectors, the S0.5 values for Fru-6-P were 17.4 mM and 11.0 mM for the non-phosphorylated and phosphorylated forms, respectively, of the D. immitis PFK at 1 mM ATP, pH 6.8. These S0.5 values were lowered to 0.03 mM by the combined effects of saturating levels of Fru-2,6-P2 and AMP. A physiological assay was developed based on the level of metabolites in the parasite that influence the activity of PFK. This assay contained the known effectors of the PFK at concentrations approximating those found in the parasite. Under these conditions the KFru-6-P values were 153 microM and 60 microM for the non-phosphorylated and phosphorylated forms of the PFK, respectively.(ABSTRACT TRUNCATED AT 250 WORDS)

Adenosine Monophosphate↗

Kinetic properties of fructose bisphosphate aldolase from Trypanosoma brucei compared to aldolase from rabbit muscle and Staphylococcus aureus.

The kinetic properties of aldolase from Trypanosoma brucei were studied in comparison with aldolase from rabbit muscle and Staphylococcus aureus. The 3 enzymes displayed a similar broad pH optimum for the cleavage of fructose 1,6-bisphosphate (Fru(1,6)P2) and a similar narrow pH optimum for the cleavage of fructose 1-phosphate (Fru-1-P). However, small alterations in the maximal cleavage rate at more extreme pH values yielded disparities between the pH curves. The reaction catalyzed by the aldolases from T. brucei and S. aureus proceeded via an ordered sequence, as described for the rabbit-muscle enzyme. We determined for the 3 enzymes the kinetic parameters for both the cleavage and the formation of Fru(1,6)P2 and for the cleavage of Fru-1-P. The trypanosomal enzyme differed in its higher ratio of the maximal rate of Fru(1,6)P2-cleavage vs. the maximal rate of Fru(1,6)P2-formation, its higher affinity towards dihydroxyacetone phosphate, and its higher turnover number for the cleavage of Fru-1-P. At ionic strengths above 0.1 M the kinetic parameters of the trypanosomal enzyme followed the limited form of the Debye-Hückel equation. At ionic strengths below 0.1 M the enzyme revealed a characteristic deviation: the apparent Km for Fru(1,6)P2 increased with decreasing salt concentration. The trypanosomal aldolase was competitively inhibited by adenine nucleotides and phosphates. This inhibition occurred in the same concentration range as observed for the rabbit-muscle enzyme, while the bacterial enzyme was less affected.

Adenosine Diphosphate↗

Changes in intracellular levels of fructose 2,6-bisphosphate and several glycolytic intermediates in Leishmania major promastigotes as a function of pO2.

Leishmania major promastigotes were grown to late log phase, washed and resuspended in Hanks' balanced salt solution, and incubated with glucose at various pO2s in the presence of 5% CO2. Samples were taken at times from 0-40 min and assayed for fructose 2,6-bisphosphate (Fru(2,6)P2), glucose-6-phosphate (G6P), fructose-6-phosphate (F6P), phospho(enol)pyruvate (PEP), and ATP. At 95% O2 ATP remained constant throughout the incubation. It did not decrease significantly at 10% O2, but decreased by about 20% and 30% at 6% and 0% O2, respectively. At 95% O2, Fru(2,6)P2 increased about 15-fold within 5 min after the addition of glucose and remained at this high level. At 10%, 6%, and 0% O2 Fru(2,6)P2 rose about 5-fold within 5 min and then declined slightly during the remainder of the incubation. G6P increased from about 0.5 to 12 nmol (mg protein)-1 at 5 min in cells incubated under 95% O2 and then declined to about 5 nmol (mg protein)-1. It increased to about 8 nmol (mg protein)-1 at 5 min and then declined slightly in cells incubated under 10% O2. F6P levels were approximately one-eighth of G6P levels under all conditions, suggesting that phosphohexoseisomerase was not subject to regulation. PEP levels were initially high, but at 95% O2 there was a 50% drop in PEP at 5 min, while at 10%, 6%, and 0% O2 there was less of a decline. The observation that the rise in Fru(2,6)P2 levels at 10%, 6%, or 0% O2 is the same at 5 min and less than the rise at 95% O2 supports the presence of a low affinity oxygen sensor. The different time course of changes in G6P, F6P, and PEP levels suggests that in addition to an activation of pyruvate kinase by Fru(2,6)P2, other regulatory events are also operative at low pO2.

Adenosine Triphosphate↗