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The phosphorylation of rabbit skeletal muscle glycogen synthase by glycogen synthase kinase-2 and adenosine-3':5'-monophosphate-dependent protein kinase.

Purified glycogen synthase is contaminated with traces of two protein kinases that can phosphorylate the enzyme. One is protein kinase dependent on adenosine 3':5'-monophosphate (cyclic AMP) and the second is an activity termed glycogen synthase kinase-2 [Nimmo, H.G. and Cohen P, (1974)]. Glycogen synthase kinase-2 has been found to be localized relatively specifically in the protein-glycogen complex. It has been purified 4000-fold by two procedures, both of which involve disruption of the complex, followed by the DEAE-cellulose and phosphocellulose chromatographies. However the salt concentration at which glycogen synthase kinase-2 is eluted from DEAE-cellulose depends on the method that is used to disrupt the complex. The results indicate that glycogen synthase kinase-2 is firmly attached to a protein component of the complex. The isolation procedures separate glycogen synthase kinase-2 from phosphorylase kinase, cyclic AMP-dependent protein kinase and other glycogen-metabolising enzymes. Glycogen synthase kinase-2 is the major phosvitin kinase in skeletal muscle, although glycogen synthase is a six to eight-fold better substrate than phosvitin under the standard assay conditions. Phosphorylase kinase and phosphorylase b are not substrates for glycogen synthase kinase 2. Following incubation with cyclic-AMP-dependent protein kinase, cyclic AMP and Mg-ATP, the phosphorylation of glycogen synthase reaches a plateau at 1.0 molecules of phosphate incorporated per subunit and the activity ratio measured in the absence and presence of glucose 6-phosphate falls from 0.8 to a plateau of 0.18. The Ka for glucose 6-phosphate of this phosphorylated species, termed glycogen synthase b1, is the 0.6 mM. Following incubation with glycogen synthase kinase-2 and Mg-ATP, the phosphorylation reaches a plateau of 0.92 molecules of phosphate incorporated per subunit and the activity ratio decreases to a plateau of 0.08. The Ka for glucose 6-phosphate of this phosphorylated species, termed glycogen synthetase b2, is 4 mM. In the presence of both cyclic-AMP-dependent protein kinase and glycogen synthase kinase-2, the phosphorylation of glycogen synthase reaches a plateau when 1.95 molecules of phoshophate have been incorporated per subunit. The activity ratio is 0.01 and the Ka for glucose 6-phosphate is 10 mM. The results indicate that glycogen synthase can be regulated by two distinct phosphorylation-dephosphorylation cycles. The implication of these findings for the regulation of glycogen synthase in vivo are discussed.

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

Purification and properties of rabbit-liver glycogen synthase.

Glycogen synthase b was purified from rabbit liver by a procedure involving isolation of the glycogen-enzyme complex, DEAE-cellulose chromatography, and affinity chromatography. The purified enzyme had a specific activity of 25 mumol of glucose transferred from UDPglucose into glycogen per min per mg of protein at 30 degrees C in the presence of 10 mM glucose 6-P, and appeared to be homogeneous by the criterion of polyacrylamide disc gel electrophoresis. The b form was convertible into the a form by a rabbit-liver protein phosphatase. A subunit size of 85 000 was determined by electrophoresis in sodium dodecyl sulfate and molecular weights of 183 000 +/- 20 000 and 170 000 +/- 21 000 were determined for the a and b forms of the enzyme, respectively. On conversion of the a into the b form, 1.13 mol of phosphate was incorporated per 85 000 g of protein. The degree of phosphorylation and loss of glycogen synthase a activity paralleled each other.

Animals

The purification and properties of rabbit skeletal muscle glycogen synthase.

Glycogen synthase a was purified over 500-fold by a procedure which involved solubilisation of the enzyme from a protein-glycogen complex by the action of endogenous phosphorylase and debranching enzyme, followed by DEAE-cellulose chromatography, and either gel filtration on Sepharose 4B or fractionation with polyethylene glycol. 15 mg of protein could be obtained from 1000 g of muscle in five days, corresponding to a yield of 20%. The purity was over 90% as judged by gel electrophoresis and ultracentrifugal analysis. The amino acid composition was determined and the absorption coefficient, A1%280 NM, measured refractiometrically was 13.4. Glycogen synthase a sedimented as two major components, both of which were enzymatically active. The smaller species (13.3 S) comprised 85% and the larger species (19.OS) 15% of the material. The molecular weight of the 13.3-S component was determined to be 377000 by high-speed sedimentation equilibrium centrifugation. The subunit molecular weight measured by gel electrophoresis in the presence of sodium dodecylsulphate was 88 000 indicating that the 13.3-S species is a tetramer. The properties of the enzyme are compared to those obtained by other workers.

Amino Acids

The hysteretic properties of glycogen synthase I.

Glycogen-free synthase I from human polymorphonuclear leukocytes is activated by its own substrate, glycogen, in a slow, time-dependent process (hysteretic activation). This lag in response to addition of glycogen depends on the concentration of glycogen, pH and temperature. At pH 7.4 and at a temperature of 30 degrees C, the half-time of activation t 1/2 decreases from 89 min at 0.004 mg/ml glycogen to 6 min at 25 mg/ml. The activation is accelerated by increasing temperature and pH, but is not influenced by enzyme concentration, glucose 6-phosphate, UDP, high ionic strength, EDTA, mercaptoethanol, glucose, sucrose or amylase limit dextrin. The Km for UDP-glucose (0.024 mM) and the activity ratio were unchanged during the activation process. The activation can be described by vt = vf + (vo - vf) e-kt where vt, vf and vo are velocities at times t, O and infinity and k is a complex rate constant. Evidence from ultracentrifugation and kinetic studies is presented to substantiate the hypothesis that the underlying mechanism is a simple biolecular process: enzyme + glycogen in equilibrium enzyme-glycogen complex, with the dissociation constant Ks = 0.003 mg/ml. The hysteretic activation may become rate-limiting during experiments in vitro with synthase. The possibility of a physiological role in glycogen metabolism, perhaps in the form of a concerted hysteresis with H+ is discussed.

Enzyme Activation

Effects of magnesium on the kinetic properties of bovine heart glycogen synthase D.

Highly purified glycogen synthase D, free of synthase kinase and phosphatase activities, was prepared from bovine heart. The enzyme had no activity without glucose 6-phosphate. Kinetic studies of this enzyme at various concentrations of UDP-glucose demonstrated that there was no cooperativity with respect to the substrate at any concentration of glucose-6-P with or without Mg2+. Glucose 6-phosphate increased the maximum velocity (Vmax) of the enzyme, but had very little or no effect on the Michaelis constant for UDP-glucose (Km equals 0.33 mM). Free Mg2+ gave a high Vmax at all glucose 6-phosphate concentrations without affecting the Km for the substrate. The double reciprocal plots of reaction rates versus glucose 6-phosphate concentration were biphasic and were interpreted as evidence for two kinetic forms, each with a glucose 6-phosphate binding site of different affinity (A1/2 values equals 0.31 and 1.1 mM). High Mg2+ concentrations nearly abolished the biphasic kinetic behavior of glucose 6-phosphate, suggesting that the Vmax of both enzyme forms was the same at saturating concentration of Mg2+ and glucose 6-phosphate and that magnesium ion might have no effect on the binding of glucose 6-phosphate or on the state of the equilibrium between two forms. Plots of reaction velocity versus Mg2+ concentration showed no cooperativity of Mg2+ activation in the presence or absence of glucose 6-phosphate. Both kinetic forms of glycogen synthase D had the same affinity for Mg2+ (A1/2 is approximately equal to 4 mM). Studies on the inhibition of the enzyme by Pi, ATP, and UTP were carried out with assays specific for the form of synthase with A1/2 for glucose 6-phosphate equals 0.31 mM (high affinity form) and the form with A1/2 for glucose 6-phosphate equals 1.1 mM (LOW AFFINITY FORM) BY ASSAYING WITH AND WITHOUT 5.0 MM free Mg2+, respectively. Both forms of synthase exhibited positive cooperativity with respect to UDP-glucose when inhibited by UTP, but not with Pi or ATP. Thus, each form of the enzyme had more than one UDP-glucose site, and these sites showed cooperativity only in the presence of a uridine nucleotide inhibitor. In the absence of Mg2+ (low affinity form), the inhibitors, Pi, ATP, and UTP, all induced positive cooperativity with respect to glucose 6-phosphate binding to this enzyme. The positive cooperativity induced by ATP was obliterated by adding free Mg2+ (high affinity form), but that induced by other inhibitors was affected slightly or not at all by the cation. These results indicate that each of the enzyme forms (high or low affinity forms) has more than one glucose 6-phosphate site and that these may function in a cooperative manner. The preceding findings are interpreted in relation to the importance of Mg2+ in the regulation of glycogen synthase D activity as well as the regulation of glycogen synthase phosphatase activity in heart.

Adenosine Triphosphate

The effects of food deprivation and re-feeding on bovine adipose-tissue glycogen synthase.

Bovine adipose-tissue glycogen metabolism was studied during food deprivation and re-feeding. Changes in the specific activity of adipose-tissue glycogen synthase paralleled changes in tissue glycogen content: both parameters increased during food deprivation and remained so during the first 10 days of re-feeding. The values for the A0.5 (activation constant) for glucose 6-phosphate of the freshly isolated enzyme from adipose tissue from fed and starved steers were 2.9 +/- 0.1 mM and 0.90 +/- 0.05 mM respectively. Additionally, whereas incubation of adipose-tissue extracts from fed steers did not activate endogenous glycogen synthase (through a presumed phosphoprotein phosphatase mechanism), the enzyme from starved or re-fed (up to 3 days re-feeding) steers was reversibly activated as measured by changes in the value for the A0.5 for glucose 6-phosphate. Thus activation of bovine adipose-tissue glycogen synthase during food deprivation appears to be related to expression of glycogen synthase phosphatase activity. These effects of food deprivation on bovine glycogen metabolism contrast markedly with the effects observed in rat adipose tissue.

Adipose Tissue

Glycogen synthase of Hymenolepis diminuta. II. Nutritional state, interconversion of forms, and primer glycogen molecular weight as control factors.

Glycogen synthase I (UDP glucose: glycogen alpha-4-glycosyltransferase, EC2.4.1.11) of the tapeworm Hymenolepis diminuta is the form of the enzyme which is active in vivo, while the D-form represents an inactive "storage form." Utilizing the differential effect of inorganic phosphate (Pi) on the I and D-forms, the ratio of the 2 forms in vivo has been determined under conditions of starvation of the host and refeeding of the parasite with glucose. This procedure reveals that conversion of the inactive D-form to the active I-form takes place when glycogen-depleted worms are incubated in glucose. The activity of glycogen synthase I also is affected by the molecular weight of the primer glycogen. With certain molecular weight fractions, enzymatic activity is higher than with others. This specificity of the glycogen primer could explain the relatively low concentrations of those molecular weight fractions which confer the highest synthase activity.

Animals

Glycogen synthase in the rat tapeworm, Hymenolepis diminuta--II. Control of enzyme activity by glucose and glycogen.

1. The proportion of activity in the physiologically active I form of glycogen synthase in Hymenolepis diminuta (Cestoda) decreased in the worm when the rat host was fasted and was greatly increased in the cestode 1 hr after a 24 hr fasted rat was refed. 2. The increase in glycogen synthase I activity was due to glucose present in the host gut after feeding, not to other physiological changes in the rat intestine due to meal consumption. 3. Incubation of intact H. diminuta in vitro with glucose also resulted in the conversion of glycogen synthase D to I. 4. Glucose does not appear to affect the glycogen synthase complex directly, because neither the total synthase converted to I nor the rate of conversion was affected by glucose in a partially purified homogenate. 5. High concentrations of glycogen inhibited the synthase D to I conversion and high mol. wt glycogen was a more effective inhibitor than low mol. wt glycogen.

Adenosine Triphosphate

Activation of rat adipocyte glycogen synthase by insulins.

Incubation of fat cells with insulin increased glycogen synthase I activity without changing total synthase activity. This effect of insulin was dependent upon the particular lot of albumin present in the medium and was abolished by incubating cells with trypsin. Half-maximal activation of glycogen synthase was obtained with 8 microunits/ml of insulin, a concentration very similar to that which half-maximally stimulated 3-O-methylglucose uptake. The basal percentage of phosphorylase a activity was not detectably altered by insulin, although it was decreased by incubating cells with 5 mM glucose. Insulin (50 microunits/ml) markedly opposed actions of epinephrine (0.05 to 10 muM) to increase phosphorylase a activity and decrease glycogen synthase I activity, effects which were observed without glucose. Partial activation of glycogen synthase by insulin was seen after 1 min and complete activation after 4 min. Glucose alone produced a transient increase in synthase I activity. When cells were incubated with insulin plus glucose for 4 min, the increase in the percent synthase I activity was much greater than the additive effects of insulin and glucose alone. This potentiation of the effect of insulin on glucogen synthase I activity depended on the time of incubation with glucose and on the concentration of the hexose. If cells were incubated with cytochalasin B before insulin plus glucose, the effect of glucose was abolished. These results suggest that there are at least two mechanisms by which insulin can increase fat cell glycogen synthase I activity. One requires glucose and activation occurs secondary to an increase in glucose transport; where another mechanism(s) is operative even in the absence of glucose.

Adipose Tissue

Isolation of a glycogen synthase I kinase that is independent of adenosine 3':5'-monophosphate.

Three protein kinases (ATP:protein phosphotransferase, EC 2.7.1.37) were detected when the soluble fraction of rabbit kidney medulla was chromatographed on DEAE-cellulose with a linear NaC1 gradient. The first two kinases eluted (Peak 1 and Peak II) were cyclic-AMP-dependent, wheras Peak III was cyclic-AMP-independent. A procedure was developed to separate the catalytic subunit of Peak II cyclic-AMP-dependent protein kinase (representing the bulk of the histone kinase activity) from Peak III protein kinase. In contrast to the catalytic subunit, Peak III protein kinase phosphorylated casein more rapidly than histone. Peak III was insensitive to the heat-stable protein inhibitor of cyclic-AMP-dependent protein kinases and appeared to have a higher requirement for ATP than did the catalytic subunit. Peak III catalyzed the conversion of glycogen synthase (UDPglucose:glycogen alpha-4-glucosyltransferase, EC 2.4.1.11) from the I (glucose-6-phosphate-independent) to the D (glucose-6-phosphate-dependent) form. This conversion was dependent on Mg-2+ and ATP and was unaffected by cyclic AMP, cyclic GMP, or the protein inhibitor. Glycogen synthase I in the soluble fraction of kidney medulla could be converted to the D form by endogenous glycogen synthase I kinase if Mg-2+ and ATP were added. Most of this glycogen synthase I kinase activity was unaffected by cyclic AMP or by the protein inhibitor, suggesting that Peak III may be of major importance in the regulation of glycogen synthase in vivo.

Ammonium Sulfate

Interconversion between multiple glucose 6-phosphate-dependent forms of glycogen synthase in intact adipose tissue.

We have tested the hypothesis that interconversion between multiple glucose-6-P-dependent forms of glycogen synthase helps regulate glycogen synthesis in adipose tissue. Our results indicate that interconversion of glycogen synthase in adipose tissue involves primarily dependent forms and that these interconversions were measured better by monitoring the activation constant (A0.5) for glucose-6-P than measuring the -: + glucose-6-P activity ratio. Insulin decreased and epinephrine increased the A0.5 for glucose-6-P without significant change in the activity ratio. Insulin consistently decreased the A0.5 in either the presence or absence of glucose, indicating that the insulin-promoted interconversion did not require increased hexose transport. Isoproterenol increased the A0.5 for glucose-6-P, while methoxamine was without effect, indicating beta receptors mediate adrenergic control of interconversion between glucose-6-P-dependent forms. The changes in the A0.5 produced by incubations with insulin or epinephrine were mutually reversible. We conclude that 1) glycogen synthesis in adipose tissue is catalyzed by multiple glucose-6-P-dependent forms of glycogen synthase, 2) hormones regulate glycogen metabolism by promoting reversible interconversions between these forms, and 3) there is no evidence that a glucose-6-P-independent form of glycogen synthase exists in intact adipose tissue.

Adipose Tissue

Glycogen synthase kinases. Distribution in mammalian tissues of forms that are independent of cyclic AMP.

Extracts of rat tissues contain kinases which catalyze the conversion of glycogen synthease from the glucose 6-phosphate-independent (I) form to the glucose 6-phosphatate-dependent (D) form. These kinases were stimulated by adenosine 3':5' monophosphate (cyclic AMP). The glycogen synthase kinase activity ratio (activity in the absence of cyclic AMP divided by activity in the presence of cyclic AMP) varied from 0.28 to 0.97. The activity ratio for histone kinase in the same extracts ranged from 0.11 to 0.29. The levels of glycogen synthase kinase varied by a factor of 80 in the following rat tissues (given in order of decreasing enzyme activity): kidney, liver, stomach mucosa, lung, brain, heart, skeletal muscle, and adipose tissue. In the same tissues the levels of histone kinase varied by only a factor of 6 and did not correlate with the levels of glycogen synthase kinase. A modification of the method of Walsh et al. ((1971) J. Biol. Chem. 246, 1977-1985) was developed for purification of the heat-stable inhibitor of cyclic AMP-dependent protein kinases (inhibitor). The modified procedure resulted in good yields of highly purified inhibitor and was much simpler than the previously described procedure. This inhibitor completely inhibited cyclic AMP-dependent histone kinase activity of the extracts but much of the glycogen synthase kinase activity was not inhibited. The portion of glycogen synthase kinase that was insensitive to the inhibitor was: stomach mucosa, 95%; brain, 90%; liver, 82%; kidney, 81%; lung, 68%; adipose tissue, 65%; skeletal muscle, 63%; and heart, 54%. This histone kinase activity in the extracts and hte ratio of glycogen synthase kinase to histone kinase activity of purified catalytic subunit of the cyclic AMP-dependent protein kinase was used to calculate for each extract the glycogen synthase kinase activity contributed by the cyclic AMP-dependent protein kinase. Based on these calculations, the portion of the glycogen synthase kinase which was due to kinases independent of cyclic AMP was: kidney, 97%; liver, 91%; lung, 89%; brain, 87%, heart, 85%; stomach mucosa, 84%; adipose tissue, 38%; and skeletal muscle, 33%. A significant portion of the glycogen synthase kinase activity, but virtually none of the cyclic AMP-dependent histone kinase activity, of these extracts could be adsorbed to phosphocellulose columns. Liver extracts contained, in addition, a form of glycogen synthase kinase which was not adsorbed to phosphocellulose and which could be separated from the cyclic AMP-dependent protein kinase by additional chromatography. These studies demonstrate that kinases independent of cyclic AMP account for most of the glycogen synthase kinase activity of many tissues. The widespread distribution and high concentrations of these enzymes suggest that they are of physiological importance.

Adipose Tissue

Rat adipose tissue glycogen synthase. Evidence for multiple discrete kinetic species and their interconversion.

Rat adipose tissue glycogen synthase has been kinetically characterized. The classical D form has an apparent Km for UDP-glucose of 0.7 mM and 0.4 mM in the absence and presence of glucose 6-phosphate, respectively. The apparent Ka for glucose 6-phosphate is 0.6 mM. The effect of glucose 6-phosphate on the D form is to enhance the Vmax 7-fold. The I form is also affected by glucose 6-phosphate (Ka, 0.025 mM) but the Vmax is increased only by 20%; apparent Km values for UDP-glucose are 0.4 mM and 0.045 mM in the absence and presence of glucose 6-phosphate, respectively. In addition, two new kinetically distinguishable forms have been observed. The first, designated glycogen synthase Q, arises from an Mg2+ATP-dependent deactivation of the I form. The apparent Km values of glycogen synthase Q for UDP-glucose are identical with those of the I form; however, the apparent Ka for glucose 6-phosphate (0.2 mM) is 8-fold higher than that for the I form and one-third that for the D form. Preparations from fasted or diabetic rats contain a form of glycogen synthase, designated glycogen synthase X, that has a much lower affinity for glucose 6-phosphate than the D form (apparent Ka, 3 mM); the apparent Km values for UDP-glucose are similar to those of the D form (0.7 mM and 0.3 mM in the absence and presence of glucose 6-phosphate, respectively). In preparations from fasted rats a stepwise Mg2+-dependent conversion was demonstrated of synthase X to D to Q to I; this sequential conversion was reversed on incubation with Mg2+ATP. In preparations from fed rats, synthase Q could be generated either by limited activation (from the D form) or, after conversion to the I form, by deactivation with Mg2+ATP. However, even prolonged incubation with Mg2+ATP failed to generate the D (or X) form.

Adipose Tissue