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Glycogen metabolism in white and red muscle or normal and diabetic rats. Degradation of glycogen by adrenaline.

The author studied the effect of adrenaline (500 mug/kg s.c.) on the glycogen content of white (extensor digitorum longus -- EDL) and red (soleus -- SOL) muscle of normal and alloxan-diabetic rats. In normal rats, whose nutritional state varied at the time of adrenaline administration (after a 24 hours' fast, fed ad libitum or given 5 g glucose/kg as a 20% solution intragastrically 2 hours before injecting adrenaline), no marked post-adrenaline differences were found between the size of the decrease in the amount of glycogen in white and red muscle. In addition, no significant differences were found between the three groups of animals in glycogen concentration in the EDL (0.3+/-0.05, 0.35+/-0.03 and 0.26+/-0.02 mg/g) or in the SOL, apart from one exception (0.23+/-0.02, 0.2+/-0.01, and 0.51+/-0.03 mg/g), after adrenaline. The glycogen concentration in the white and red muscle of diabetic rats fed ad libitum fell to values similar to those in normal rats after adrenaline (0.32+/-0.05 mg/g in the EDL and 0.18+/-0.02 mg/g in the SOL). These results supoort the view of authors who hold that glycogenolysis is possible without pre-activation of phosphorylase; they also support the idea, expressed by Krebs, of the existence of a reciprocal relationship between phosphorylase activity and the glycogen concentration, according to which glycogen itself may influence its own degradation.

Animals

Regulation of glycogen synthesis and glucose utilization in Escherichia coli during maintenance of the energy charge. Quantitative correlation of changes in the rates of glycogen synthesis and glucose utilization with simultaneous changes in the cellular levels of both glucose 6-phosphate and fructose 1,6-diphosphate.

Treatment of nitrogen-starved cultures of Escherichia coli W4597(K) with sodium azide results in simultaneous changes in both glucose 6-phosphate and fructose 1,6-diphosphate as well as in the rate of glycogen synthesis. Based on these observations, a comprehensive equation was developed which relates the cellular levels of both of these hexose phosphates with the rate of glycogen synthesis. This relationship apparently represents the interaction in vivo between the rate-limiting enzyme of bacterial glycogen synthesis, glucose 1-phosphate adenylyltransferase (adenosine diphosphoglucose synthetase, EC 2.7.7.27), and its substrate glucose 1-phosphate (reflected by glucose 6-phosphate) and its major allosteric activator fructose diphosphate. The form of the equation that describes this relationship was determined from studies presented here of the kinetic properties of the E. coli W4597(K) enzyme in the presence of physiological concentrations of its substrates and modulators. We show here and in subsequent reports of this series that the comprehensive relationship between glycogen synthesis and hexose phosphates can serve as a reference to evaluate the possible participation of new factors in the regulation of glycogen synthesis. Treatment with NaN3 did not change the cellular level of glucose 1-phosphate adenylyltransferase. The value of the adenylate energy charge, (ATP + 1/2 ADP)/(ATP + ADP + AMP), was maintained despite losses of up to 35% in cellular adenylates. The quantitative co-variance between hexose phosphates and the cellular rate of glucose utilization that we previously described for other metabolic conditions was also observed in the azide-treated cultures. We integrate the new information into the system of coordinated regulation of glycogen synthesis, glycolysis, and glucose utilization that we proposed previously.

Adenosine Diphosphate Glucose

Actions of glycogen synthase and phosphorylase of rabbit-skeletal muscle on modified glycogens.

The high reactivities exhibited by rabbit-muscle synthase and phosphorylase for unmodified glycogen-acceptors decrease progressively, presumably because of a large increase in apparent Km as the glycogen molecule is converted into its component maltosaccharide chains by the debranching enzyme, isoamylase. Elongation of the outer chains of glycogen acceptor also results in decreased reactivities of the two transglucosylases and this is shown, for phosphorylase acting in the direction of glucan synthesis, to be caused by a decrease in the Vmax of the reaction. A partial restoration of the degradative reactivity of phosphorylase by a limited alpha-amylolysis of the long outer-chains of modified glycogen suggests a role of cytoplasmic alpha-amylase in mammalian glycogen metabolism.

Animals

The effects of glucose and of potassium ions on the interconversion of the two forms of glycogen phosphorylase and of glycogen synthetase in isolated rat liver preparations.

In the isolated perfused rat liver, increasing glucose concentration from 5.5 to 55 mm in the perfusion medium caused a sequential inactivation of glycogen phosphorylase and activation of glycogen synthetase. The latter change was preceded by a lag period which corresponded to the time required to inactivate the major part of the phosphorylase. 2. The same sequence of events was observed in isolated rat hepatocytes incubated at 37C. In this preparation, the rate of phosphorylase inactivation was greatly increased by increasing the concentration of glucose and/or of K+ ions in the external medium. The same agents also caused the activation of glycogen synthetase, but this effect was secondary to the inactivation of phosphorylase. 3. In both types of preparations, the rate of synthetase activation was modulated by the residual amount of phosphorylase a that remained after the initial phase of rapid inactivation and was independent of glucose concentration. 4. In isolated hepatocytes, the rate of conversion of glucose into glycogen was propotional to the activity of synthetase a in the preparation. This conversion was preceded by a lag period which could be shortened by increasing either glucose or K+ concentration in the medium. The incorporation of labelled glucose into glycogen was simultaneous with a glycogenolytic process which could not be attributed to the activity of phosphorylase a.

Animals

Biosynthesis of glycogen in Neurospora crassa. Kinetic mechanism of UDP-glucose: glycogen 4-alpha-glucosyltransferase.

The kinetic mechanism of glycogen synthase [UDP-glucose: glycogen 4-alpha-glucosyltransferase, EC 2.4.1.11], glucose-6-P-dependent form, from Neurospora crassa has been investigated by initial velocity experiments and studies with inhibitors in the presence of sufficient levels of glucose-6-P. The rate equation was different from those of common two-substrate systems because one of the substrates, glycogen, is also a product. The reaction rates were determined by varying the concentration of one of the substrates while keeping that of the other constant. Double-reciprocal plots of initial velocity measurements were linear and showed converging line patterns. UDP was found to act competitively when the substrate UDP-glucose was varied, but noncompetitively when glycogen was varied. On the basis of these results, it is concluded that glycogen synthase, glucose-6-P-dependent form, from N. crassa has a rapid equilibrium random Bi-Bi mechanism. Rate constant and dissociation constants for each step of this mechanism were estimated.

Computers

Hormonal regulation of glycogen metabolism in human fetal liver. II. Regulation of glycogen synthase activity.

During the first two thirds of gestation, the concentrations of UDPG, ATP, ADP, and Mg++ in human fetal liver remain constant, whereas the concentration of Pi decreases twofold and the G-6-P and AMP concentrations increase. Incubation of human fetal liver explants with glucagon or insulin did not alter the concentrations of any of these intermediates. ATP, ADP, and Pi are inhibitors of human fetal liver glycogen synthase D-form activity, while G-6-P and AMP and Mg++ are stimulators. Ca++ at concentrations of less than 0.1 mM was found to stimulate glycogen synthase D activity. This effect of Ca++ was also observed in "physiologic" mixtures containing UDPG, G-6-P, ATP, ADP, AMP, Pi, and Mg++ at concentrations found either in liver in utero or in explants. 45Ca++ efflux from perifused (rat) fetal liver explants was stimulated by glucagon. These data provide a picture of the metabolite regulation of human fetal liver glycogen synthase activity in which the D-form may largely control glycogen synthesis in utero and hormonal effects on glycogen synthase may be induced by effects of Ca++ on the D-form.

Adenine Nucleotides

Biosynthesis of glycogen in Neurospora crassa. Purification and properties of the UDPglucose:glycogen 4-alpha-glucosyltransferase.

The Neurospora crassa glycogen synthase (UDPglucose:glycogen 4-alpha-glucosyltransferase, EC 2.4.1.11) was purified to electrophoretic homogeneity by a procedure involving ultracentrifugation, DEAE-cellulose column chromatography, (NH4)2SO4 fractionation and 3-aminopropyl-Sepharose column chromatography. The final purified enzyme preparation was almost entirely dependent on glucose-6-P and had a specific activity of 6.9 units per mg of protein. The subunit molecular weight of the glycogen synthase was determined by electrophoresis in sodium dodecyl sulfate-polyacrylamide gel to be 88 000--90 000. The native enzyme was shown to have a molecular weight of 270 000 as determined by sucrose density gradient centrifugation. Thus, the glucose-6-P-dependent form of the N. crassa glycogen synthase can exist as trimer of the subunit. Limited proteolysis with trypsin or chymotrypsin converted the glucose-6-P-dependent form of the enzyme into an apparent glucose-6-P-independent form. The enzyme was shown to catalyze transfer of glucose from UDPglucose to glycogen as well as to its phosphorylase limit dextrin, but not to its beta-amylase limit dextrin. Moreover, glucose, maltose and maltotriose were not active as acceptors.

Cations, Divalent

On the activities of glycogen phosphorylase and glycogen synthase in the liver of the rat.

A procedure was developed for determination of glycogen synthase and phosphorylase activities in liver after various in vivo physiological treatments. Liver samples were obtained from anaesthetised rats by freeze-clamping in situ. Other procedures were shown to stimulate the activity of phosphorylase and depress the activity of glycogen in the liver. The direction of glycogen metabolism appears to be regulated by the relative proportions of the two enzymes, as shown by a strong positive correlation between total activities and active forms of phosphorylase and synthase. The enzyme activities responded as expected to stimuli such as insulin and glucose, which depressed phosphorylase and increased synthase activity, and glucagon, which increased phosphorylase and decreased synthase activity. In fasted animals approximately 50% of each enzyme was in the active form, which suggests the existence of a potential futile cycle for glycogen metabolism. The role for such a cycle in the regulation of glycogen synthesis and degradation is discussed.

Animals

Regulation of rat liver glycogen synthesis and activities of glycogen cycle enzymes by glucose and galactose.

Direct regulation of rat liver glycogen metabolism by glucose and galactose was studied using an isolated liver perfusion system. Activation of glycogen synthase and net glycogen synthesis increased linearly when perfusate glucose concentration was increased from 125 to 500 mg/100 ml. Galactose, rapidly taken up by isolated rat liver regardless of circulating glucose concentration, increased these responses to glucose. In the presence of galactose (greater than or equal to 5 mg/100 ml), activation of synthase and glycogen synthesis were 1.5-fold higher at any given glucose concentration. The addition of insulin did not appreciably after synthase activation by glucose and galactose. Phosphorylase activity, low at circulating glucose levels above 125 mg/100 ml, was further decreased as glucose was increased or when galactose was added to the perfusate. Release of glucose into the perfusate in response to aglycemia was increased in the presence of galactose.

Animals

Effects of insulin and procaine hydrochloride on glycogen synthetase activation and adipocyte calcium flux: evidence for a role of calcium in insulin activation of glycogen synthetase.

Observations that insulin-induced stimulation of glycogen synthetase occurs without detectable reduction in cyclic AMP suggests an alternative controlling mechanism. The hypothesis that this stimulation might be mediated through calcium was tested using procaine HC1, a drug whose insulin-like action is not associated with reduction in basal or adrenaline-stimulated cyclic AMP levels. Pretreatment of adipose tissue with insulin or porcaine for 30 minutes increased homogenate glucose-6-phosphate independent ("I") form activity to 58% and 48% respectively with no significant change in total activity. Insulin and procaine also had similar effects on calcium efflux from isolated rat adipocytes. Following an initial displacement of calcium from the adipocytes by insulin (but not by procaine) both agents decreased efflux of calcium, measured following 10, 20 and 30 minutes incubation. In adipose tissue homogenates increasing the free calcium concentration from 10(-8) to 10(-3) M increased "I" form glycogen synthetase activity without significantly altering total activity. A complex interrelationship with ATP and calcium was also observed. In the presence of ATP 0.5 mM maximal activation occurred at 10(-6) M calcium concentration. These findings suggest that insulin-induced activation of glycogen synthetase may be effected by alteration of intracellular free calcium with consequent effects on glycogen synthetase-related enzymes in a mechanism independent of or complementary to effects on cyclic AMP levels.

Adipose Tissue

Contribution of cyclic adenosine 3':5'-monophosphate to the regulation of bacterial glycogen synthesis in vivo. Effect of carbon source and cyclic adenosine 3':5'-monophosphate on the quantitative relationship between the rate of glycogen synthesis and the cellular concentrations of glucose 6-phosphate and fructose 1,6-diphosphate in Escherichia coli.

When either fructose, glycerol, or succinate served as a sole source of carbon and energy in nitrogen-starved cultures of Escherichia coli W4597(K) the values of the kinetic constants of the equation that expresses the relationship between glycogen synthesis and hexose phosphates were different from the values observed when glucose was the sole source of carbon and energy. Addition of glucose during either exponential growth or nitrogen starvation to a culture using one of the other carbon sources slowed the rate of glycogen synthesis and shifted the values of the constants toward the values observed in cultures using glucose alone. Addition of cyclic AMP (cyclic adenosine 3':5'-monophosphate) during exponential growth of a culture using glucose caused the values of the constants to be shifted toward the values observed in cultures using a carbon source other than glucose. In all of the metabolic conditions studied in this report the adenylate energy charge ((ATP + 1/2 ADP)/(ATP + ADP + AMP)) and the level of the rate-limiting enzyme of glycogen synthesis, ADP-glucose synthetase (glucose 1-phosphate adenylyltransferase, EC 2.7.7.27), were the same. The data presented here indicate that the difference we observed in the quantitative relationship for glycogen synthesis is the result of the different cellular levels of cyclic AMP in the cells using glucose and the cells using one of the other carbon sources. Since cyclic AMP does not affect the velocity of ADP-glucose synthetase in vitro, apparently a change in the cellular level of cyclic AMP causes a shift in the cellular level of a presently unknown (and previously undetected) effector of this enzyme. The shift in the level of this effector evidently alters the response of the enzyme in vivo to the substrate glucose 1-phosphate and the activator fructose 1,6-diphosphate.

Adenine Nucleotides

[Conditions for glycogen retention in smears of isolated cells. I. Cytofluorimetric analysis of glycogen content in cells obtained by different methods of isolation].

A cytofluorimetrical study was made of glycogen content on smears of isolated rat liver cells, obtained by perfusion of different solutions: 1/15 M phosphate buffer, the Locke solution, only the Locke solution plus sodium citrate, a calcium-free Locke solution, 0.25 M sucrose, physiological saline, Versene. No loss of glycogen occurred during any perfusion procedure, however, it took place during the smear preparation. The main cell injury is observed due to mechanical factors. An additional treatment of liver, after perfusion, by homogenization and centrigugation at mild conditions decreases the cell glycogen content by 30%. The least cell injury and the best glycogen retention was achieved when phosphate buffers were employed for cell isolation.

Animals

Structure of the polysaccharide formed by incubating glycogen with D-[14C]glucose in the presence of the glycogen debranching enzyme [amylo-(1 linked to 6)-glucosidase-4-alpha-glucanotransferase].

[14C]Glycogen has been synthetized in vitro by incubating D-[14C]glucose with rabbit-liver glycogen in the presence of a pure preparation of the glycogen debranching enzyme [amylo-(1 linked to 6)-glucosidase-4-alpha-glucanotransferase]. The course of the reaction has been monitored and 14C-products isolated after 30 min and 5 h. The distribution of D-[14C]glucose groups in the polysaccharides has been determined by debranching the molecules with a crystalline isoamylase from Pseudomonas. The quantities of unlabeled and 14C-linear unit chains containing D-[14C]glucose at their reducing ends have been determined by paper chromatography followed by enzymic degradation and analysis. In the 30-min product, between 65 and 85% of the D-[14C]glucose groups were covered by unlabeled groups because of transferase action. In the 5-h product, the extent of covering approached 100%. Extensive redistribution of unlabeled groups also was found to have occurred, even in the early stages of the reaction. It is concluded that the D-[14C]glucose incorporation assay for amylo-(1 linked to 6)-glucosidase, as ordinarily carried out, is probably not specific just for the hydrolytic action of this enzyme, but that it depends indirectly on its transferase activity as well.

Animals

Enzymes regulating glycogen metabolism in swine subcutaneous adipose tissue. II. Glycogen synthase.

Glycogen synthase from swine adipose tissue was purified to apparent homogeneity using ethanol precipitation, DEAE chromatography, and affinity chromatography utilizing glucosamine 6-phosphate as the ligand. The purified enzyme migrated as a single protein component during electrophoresis on polyacrylamide gels at pH 7.3 although some protein failed to enter the running gel. Enzyme incubated with sodium dodecyl sulfate (SDS) migrated as one component (mol wt similar to 90,000) on SDS-polyacrylamide gel electrophoresis. The enzyme was relatively unstable at all stages of the purification procedure, but stability was increased in the presence of glucose 6-phosphate, UDPG, or glycerol. The isoelectric point of the purified enzyme and of enzyme activity in crude homogenates was pH 4.8. The sedimentation coefficient of the enzyme in crude homogenates was 8.5 S. The pH-activity profile showed an optimum at pH 7.8 in the absence of glucose 6-phosphate but no definable optimum between pH 7.0 and 9.2 in its presence. The Km of glycogen synthase I for UDPG was 250 muM in the absence and 37 muM in the presence of glucose 6-phosphate; the K-a for glucose 6-phosphate was 18 mu-M. The K-m of glycogen synthase D for UDPG was 130 mu-M in the presence of glucose 6-phosphate; the Ka for glucose 6-phosphate was 1 mM. The anions sulfate and phosphate activated the enzyme when assays were performed in the absence of glucose 6-phosphate. Fluoride produced activation of enzyme assayed either in the presence or in the absence of glucose 6-phosphate.

Adipose Tissue

Biosynthesis of bacterial glycogen: genetic and allosteric regulation of glycogen biosynthesis in Salmonella typhimurium LT-2.

Structural gene mutants of the glycogen biosynthetic enzymes adenosine diphosphate glucose pyrophosphorylase (glgC) and glycogen synthase (glgA) were isolated and partially characterized. The cotransduction frequencies of these genes with the aspartic semialdehyde dehydrogenase (asd) and glycerol-3-phosphate dehydrogenase (glpD) genes suggested the unambiguous gene order of glpD glgA glgC asd. The results of the three-factor cross glpD- glgA- glgC+ X glpD+ glgA+ glgC- were consistent with the proposed order. A simultaneous and approximately equivalent derepression of the glgC, glgA, and glgB (branching enzyme) gene products was observed in the late logarithmic-early stationary phase of growth on enriched media. These results are consistent with the coordinately regulated synthesis of the three glycogen biosynthetic enzymes in Salmonella typhimurium.

Genes

Intracellular localization and size of glycogen particles in glycogen synthesized under histochemical conditions.

During the investigation of the histochemical synthesis of glycogen particles from glucose 1-phosphate by the phosphorylase-branching glycosyltransferase system in various tissue cells, it was observed that focal synthesis localized in a certain area of the cytoplasm occurred in some cells. This differed from the usual synthesis in which particles of similar size were synthesized within the cytoplasm. Otherwise, cytoplasmic particles of various size were also synthesized in other cells under the same histochemical condition. The possible significance of the presence of these patterns in glycogen synthesis is discussed.

Animals

Evidence for the coordinate control of glycogen synthesis, glucose utilization, and glycolysis in Escherichia coli. II. Quantitative correlation of the inhibition of glycogen synthesis and the stimulation of glucose utilization by 2,4-dinitrophenol with the effects on the cellular levels of glucose 6-phosphate, fructose, 1,6-diphosphate, and total adenylates.

In cultures of Escherichia coli W4597(K) and G34 under various nutritional conditions the rates of glucose utilization and cellular levels of fructose-1,6-P2 are quantitatively related by the Hill equation where the value of the Hill coefficient is approximately equal to 2. This is the first evidence that fructose-P2, or any metabolite which covaries with fructose-P2, modulates glucose utilization in E. coli. In light of previous observations from our laboratory this new observation and those in the succeeding report provide the first evidence that in E. coli glycolsis, glycogen synthesis and glucose utilization are coordinately regulated, thus providing for the coupling of ATP utilization and production under various metabolic circumstances. Alterations in the level of ATP apparently affect the velocity of phosphofructokinase, the rate-limiting enzyme in glycolsis, altering the cellular levels of glucose-6-P or fructose-P2. Changes in the levels of these hexose phosphates are quantitatively related to alterations in the rates of glucose utilization and glycogen synthesis in the intact E. coli cell.

Adenosine Diphosphate

[Immunological demonstration of large quantities of glycogen or of a glycogen-like substance in human embryonic colon cells and in colon carcinomas by means of rabbit antisera raised against a strain of Escherichia coli 013].

Rabbit antisera raised against a strain of E. coli 013, with a strong antiglycogen activity, were tested on human fetal and normal adult colons, on colon carcinomas, and on colon tumor cells in culture (HT29). Only very rare granules were present in adult normal colons when tested with the immunofluorescence method. In faetal colons, in 12 out of 14 carcinomas, and on HT29 cells, the immunofluorescent reactions were similar to those observed in normal liver. The reactions were negative after previous treatment with alpha-amylase. They were inhibited with glycogen, with phenol-alcohol, perchloric, and trichloroacetic extracts from faetal colons, and with a tumor trichloroacetic extract. The extracts precipitated with anti-E. coli 013 antisera. They had a strong inhibiting activity in a radioimmunoassay test with labeled glycogen. The extracts from normal adult colons did not precipitate with the antisera and they had no inhibiting activity in either immunofluorescence and radioimmunoassay tests.

Adult