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Differences in the allosteric properties of pure low and high phosphate forms of phosphofructokinase from rat liver.

Low phosphate and high phosphate forms of phosphofructokinase (Furuya, E., and Uyeda, K. (1980) J. Biol. Chem. 255, 11656-11659) from rat liver were purified to homogeneity and various properties were compared. The specific activities of these enzymes and their electrophoretic mobilities on polyacrylamide in sodium dodecyl sulfate are the same. A limited tryptic digestion yields products with no change in the enzyme activity but with a reduction in the molecular weight of about 2000. Both low and high phosphate enzymes can be phosphorylated by the catalytic subunit of cAMP-dependent protein kinase, and approximately twice as much [32P]phosphate is incorporated into the low phosphate than the high phosphate enzyme. A comparison of their allosteric kinetic properties reveal that the high phosphate enzyme is much more sensitive to inhibition by ATP and citrate and shows a higher K0.5 for fructose 6-phosphate than the low phosphate enzyme, and the difference in the K0.5 values becomes greater at lower pH values. Furthermore, the high phosphate phosphofructokinase is less sensitive to activation by AMP and fructose 2,6-bisphosphate. Moreover, when the low phosphate enzyme is phosphorylated by protein kinase, the resulting phosphorylated enzyme exhibits a higher K0.5 for fructose 2,6-bisphosphate than does the untreated enzyme. These results demonstrate that the phosphorylation affects the allosteric kinetic properties of the enzyme and results in a less active form of phosphofructokinase.

Adenosine Monophosphate↗

Influence of fructose 2,6-bisphosphate on the aggregation properties of rat liver phosphofructokinase.

The influence that fructose 2,6-bisphosphate (Fru-2,6-BP) has on the aggregation properties of rat liver phosphofructokinase has been studied by observing the fluorescence polarization of the enzyme covalently bound to the fluorescent probe pyrenebutyric acid. Fru-2,6-BP dramatically slows the dissociation of the high molecular weight aggregate forms of the enzyme when the enzyme is diluted to 3.2 micrograms/ml (4 X 10(-8) M subunits). Furthermore, Fru-2,6-BP is a strong promoter of reassociation to tetramer and larger forms if the enzyme has been previously allowed to dissociate to the dimer in its absence. Unlike many other positive effectors of liver phosphofructokinase, Fru-2,6-BP is also able to overcome the tendency of MgATP to promote tetramer formation and instead stabilize a very high degree of high molecular weight aggregate formation even in the presence of MgATP. The apparent affinity of liver phosphofructokinase for Fru-2,6-BP was measured by its ability to promote reassociation and compared to that for Fru-1,6-BP. The apparent dissociation constant for Fru-2,6-BP under these conditions is 36 microM, about 40-fold lower than the value of 1.4 mM measured for Fru-1,6-BP. Both ligands demonstrate synergism with the substrate Fru-6-P, which can lower the dissociation constant for Fru-2,6-BP 9-fold to 4 microM and that for Fru-1,6-BP 5-fold to 0.28 mM. These data are interpreted to suggest that influencing the aggregation state of rat liver phosphofructokinase may be one way in which Fru-2,6-BP achieves its effects on the enzyme in vivo.

Animals↗

The permissive effects of glucocorticoid on hepatic gluconeogenesis. Glucagon stimulation of glucose-suppressed gluconeogenesis and inhibition of 6-phosphofructo-1-kinase in hepatocytes from fasted rats.

Production of [14C]glucose from [14C]lactate in the perfused livers of 24-h fasted adrenalectomized rats was not stimulated by 1 nM glucagon but was significantly increased by 10 nM hormone. Crossover analysis of glycolytic intermediates in these livers revealed a significant reduction in glucagon action at site(s) between fructose 6-phosphate and fructose 1,6-bisphosphate as a result of adrenalectomy. Site(s) between pyruvate and P-enolpyruvate was not affected. In isolated hepatocytes, adrenalectomy reduced glucagon response in gluconeogenesis while not affecting glucagon inactivation of pyruvate kinase. A distinct lack of glucagon action on 6-phosphofructo-1-kinase activity was noted in these cells. When hepatocytes were incubated with 30 mM glucose, lactate gluconeogenesis was greatly stimulated by glucagon. A reduction in both sensitivity and responsiveness to the hormone in gluconeogenesis was seen in the adrenalectomized rat. These changes were well correlated with similar impairment in glucagon action on 6-phosphofructo-1-kinase activity and fructose 2,6-bisphosphate content in hepatocytes from adrenalectomized rats incubated with 30 mM glucose. These results suggest that adrenalectomy impaired the gluconeogenic action of glucagon in livers of fasted rats at the level of regulation of 6-phosphofructo-1-kinase and/or fructose 2,6-bisphosphate content.

Adrenalectomy↗

[Hepatic glycolytic intermediates and glucoregulatory enzymes in septic shock due to peritonitis: experimental study in rats].

The hypoglycemia in septic shock due to peritonitis indicates deranged carbohydrate metabolism. To determine if this metabolic failure could be attributed to changes of glucoregulatory enzymes and glycolytic intermediates, activities and changes of these substances in septic shock have been studied in rats. Liver tissue was sampled 5 hours after induction of peritonitis by cecal incision in fasted male rats. Hepatic glycolytic intermediates were assayed by UV-spectrophotometry. Peritonitis caused 33% decrease in glucose-6-phosphate (G6P), a 2.5 fold increase in fructose-1,6-diphosphate (FDP) and a 3.5 fold increase in lactate. Phosphoenolpyruvate (PEP) levels did not show a significant increase in peritonitis. We investigated activities of glucose-6-phosphatase (G6Pase), fructose-1,6-diphosphatase (FDPase), phosphofructokinase ( PFKase ) and pyruvate kinase ( PKase ) in mitochondria-free supernatants from rat liver homogenates. Tissue was sampled 5 hours after induction of peritonitis by cecal incision. Assays were conducted at optimal substrate levels at pH 7.4; NADH charges produced by coupled reactions were determined by UV-spectrophotometry. A significant increase of PFKase and PKase specific activity was observed. These changes were consistent with stimulated glycolysis. For gluconeogenesis to achieve maximum efficiency it would be necessary to inhibit PFKase and PKase completely.

Animals↗

Cooperation of fructose-2,6-bisphosphate and AMP in the activation of yeast phosphofructokinase.

Yeast phosphofructokinase is effectively activated by AMP and fructose-2,6-bisphosphate. Both effectors influence the sensitivity of the enzyme with respect to fructose-6-phosphate and increase the respective maximum activities. The dependence of phosphofructokinase activity on the concentration of fructose-2,6-bisphosphate was measured at different AMP concentrations and vice versa. By AMP the half activation constant for fructose-2,6-bisphosphate is decreased by one order of magnitude. The affinity to AMP is significantly increased by fructose-2,6-bisphosphate. AMP increases the maximum activity of the enzyme with respect to fructose-2,6-bisphosphate only slightly, while the maximum activity with respect to AMP is drastically increased by fructose-2,6-bisphosphate. The interaction of the two activators is most pronounced at low levels of fructose-6-phosphate and at high concentrations of ATP.

Adenosine Monophosphate↗

Interference by ATPase in the assay of rat heart phosphofructokinase.

A high molecular-weight protein was found in heart extracts which, in the assay for phosphofructokinase, artificially activated the enzyme. The protein could be removed by gel-exclusion chromatography or high-speed centrifugation. The mechanism of activation appeared to be due to the hydrolysis of ATP to ADP, AMP and inorganic phosphate which was inhibited by Mn2+. Phosphofructokinase is thus activated by the production of activators and by the lowered inhibitory concentration of ATP. Since the adrenergic/Ca2+-activated form of the enzyme is the more sensitive to activators, the difference between the two forms of phosphofructokinase is amplified in the presence of the ATPase and diminished upon its removal or its inhibition by Mn2+. The Mn2+-sensitive ATPase appears to play no part in the adrenergic/Ca2+-mediated control of cardiac phosphofructokinase or the interconverting reactions.

Adenosine Triphosphatases↗

Metabolic effects of fructose diphosphate in hypoxic and ischemic states.

A number of methods have been used to protect organ systems and cells from the ravages of ischemia and hypoxia. Some have attempted to reduce the metabolic needs, such as by hypothermia, cardioplegia, and slow calcium channel blockers. Others have attempted to provide the metabolic needs, such as by cold blood cardioplegia and solutions of readily metabolized substrates. Our work has centered on the use of fructose 1-6-diphosphate, which can be used anaerobically after glycolysis has been stopped by the effects of anoxia and acidosis. Fructose diphosphate has proved effective experimentally in ameliorating the effects of local and global ischemia of the heart. It has also been found to be of value in many hypoxic or ischemic states including traumatic, septic, endotoxic, and hypovolemic shock. The rationale and a survey of preliminary results are presented.

Animals↗

Influence of inorganic phosphate on the kinetic properties of yeast phosphofructokinase.

Yeast phosphofructokinase is effectively activated by inorganic phosphate. In the absence of other allosteric stimulators, inorganic phosphate increases the maximum activity of the enzyme only. In the presence of the activators AMP and fructose 2,6-bisphosphate inorganic phosphate causes changes in the maximum activity and the enzyme affinity to fructose 6-phosphate. Inorganic phosphate augments the sensitivity of phosphofructokinase to the activators AMP and fructose 2,6-bisphosphate and increases the respective maximum activities. The extent of activation of the enzyme by inorganic phosphate prevails at low levels of fructose 6-phosphate and high ATP concentrations.

Adenosine Monophosphate↗

[Theoretical evidence for the need to suppress parasitic recirculation in the futile cycle fructose-6-P--fructose-1,6-P2].

In connection with the discussion of a possible role of the futile cycle fructose-6-P in equilibrium or formed from fructose-1,6,-P2 in the regulation of the carbohydrate energy metabolism, simple stoichiometric models of glycolysis and gluconeogenesis are examined which take account of substrate recirculation in the cycle. The recirculation is shown to involve wasteful expenditure of ATP and to divert fructose-1,6-P2 from glycolytic phosphorylation ADP and fructose-6-P from glucose or glycogen resynthesis. As a result, the glycolytic system loses its capacity to stabilize the level of ATP, while gluconeogenesis proves to be not efficient. From the analysis performed it is concluded that normal energy metabolism should involve allosteric regulatory mechanisms to suppress substrate recirculation in the cycle.

Adenosine Diphosphate↗

Inhibition of fructose-1,6-bisphosphatase by fructose 2,6-bisphosphate.

Rat liver fructose-1,6-bisphosphatase, which was assayed by measuring the release of 32P from fructose 1,6-[1-32P]bisphosphate at pH 7.5, exhibited hyperbolic kinetics with regard to its substrate. beta-D-Fructose 2,6-bisphosphate, an activator of hepatic phosphofructokinase, was found to be a potent inhibitor of the enzyme. The inhibition was competitive in nature and the Ki was estimated to be 0.5 microM. The Hill coefficient for the reaction was 1.0 in the presence and absence of fructose 2,6-bisphosphate. Fructose 2,6-bisphosphate also enhanced inhibition of the enzyme by the allosteric inhibitor AMP. The possible role of fructose 2,6-bisphosphate in the regulation of substrate cycling at the fructose-1,6-bisphosphatase step is discussed.

Adenosine Monophosphate↗

[Effect of cAMP of glycolysis and glycogenolysis in the liver and adrenals of white rats].

The rates of glycolysis and glycogenolysis an the rate of lactate formation from glucoso-6-phosphate (G-6-Ph) in the liver were reduced during stress (starvation). On the contrary, these activities in the adrenals were increased. The rates of lactate formation from fructose diphosphate remained unchanged in both organs. The results obtained attest to the inhibition in the liver and activation in the adrenals of phosphorylase, hexokinase and phosphofructokinase. The degree of hexokinase inhibition in the liver depended on the presence of cAMP, ATP and MgCl2 in the incubation medium and was a consequence of enzymatic phosphorylation. Unlike 2', 3'-AMP, the inhibitory effect of CAMP was highly specific. The protein inhibitor of protein kinase completely reversed the inhibitory effect of cAMP on hexokinase. In the adrenals, cAMP slightly increased the rates of glycolysis and lactate formation from G-6-Ph because of allosteric effects of cAMP. The activation rather than inhibition of glycolysis in the adrenals during stress is probably caused by the absence in this tissue of cAMP-dependent protein kinase which phosphorylates hexokinase.

Adrenal Glands↗

Regulation of rat liver fructose 2,6-bisphosphatase.

An enzyme activity that catalyzes the hydrolysis of phosphate from the C-2 position of fructose 2,6-bisphosphate has been detected in rat liver cytoplasm. The S0.5 for fructose 2,6-bisphosphate was about 15 microM and the enzyme was inhibited by fructose 6-phosphate (Ki 40 microM) and activated by Pi (KA 1 mM). Fructose 2,6-bisphosphatase activity was purified to homogeneity by specific elution from phosphocellulose with fructose by specific elution from phosphocellulose with fructose 6-phosphate and had an apparent molecular weight of about 100,000, 6-phosphofructo 2-kinase activity copurified with fructose 2,6-bisphosphatase activity at each step of the purification scheme. Incubation of the purified protein with [gamma-32P]ATP and the catalytic subunit of the cAMP-dependent protein kinase resulted in the incorporation of 1 mol of 32P/mol of enzyme subunit (Mr = 50,000). Concomitant with this phosphorylation was an activation of the fructose 2,6-bisphosphatase and an inhibition of the 6-phosphofructo 2-kinase activity. Glucagon addition to isolated hepatocytes also resulted in an inhibition of 6-phosphofructo 2-kinase and activation of fructose 2,6-bisphosphatase measured in cell extracts, suggesting that the hormone regulates the level of fructose 2,6-bisphosphate by affecting both synthesis and degradation of the compound. These findings suggest that this enzyme has both phosphohydrolase and phosphotransferase activities i.e. that it is bifunctional, and that both activities can be regulated by cAMP-dependent phosphorylation.

Animals↗