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An analysis of the substrate-induced rate effect in the phosphoglucomutase system.

The rate constant for the catalytic transfer of the active-site PO3 group from rabbit muscle phosphoglucomutase to the hydroxyl group of a water molecule is about 3 x 10(-8) s-1 under optimal reaction conditions, but in the absence of the normal substrate, viz., at pH 7.5 and 30 degrees C, in the presence of saturating Mg2+; the corresponding constant for transfer to the 6-hydroxyl group of glucose 1-phosphate under analogous conditions, about 1000 s-1, is larger than this by some 3 x 10(10)-fold. Since no single factor appears to be capable of providing a rationale for a majority of this "substrate-induced rate effect" (Ray, jr., W.J., and Long, J.W. (1976), Biochemistry, the preceding paper in this issue), the change in the PO3-transfer rate produced by binding various parts of the phosphoglucosyl moiety to the enzyme, both separately and concurrently, was investigated. The rate of PO3 transfer to water is increased by up to 1000-fold by binding entities that provide the active site with a second PO3 group, e.g., ethyl phosphate or inorganic phosphite. Using an alcoholic acceptor further increases transfer efficiency (in the presence of bound phosphite): increase with methanol, about 2000-fold on a molar basis. The reactivities of ten other primary aliphatic alcohols vary by nearly 600-fold as the acidity of the PO3 acceptor is varied over a 4000-fold range. Although no straightforward relationship is observed between the efficiency of an alcohol as an acceptor and its acidity - presumably because of complications due to steric effects, for example - an increased transfer rate of 100-fold, relative to the water reaction, is estimated for a simple primary alcohol with a pKa similar to that expected for the 6-hydroxyl group of glucose 1-phosphate, when the alcohol is present at a concentration of 1 M. Joining an alcoholic acceptor and a PO3 group via five apparently inert bridging units changes PO3 transfer to an intramolecular process; in the case of 1,4-butanediol monophosphate the rate of transfer also increases by 240-fold, relative to the analogous reaction in the presence of 1 M propanol and bound inorganic phosphite. Comparable values also are obtained in comparisons of PO3 transfer rates for trans- 1,4-butenediol and 1,4-butynediol monophosphates relative to 1 M allyl and propargyl alcohols, respectively, in the presence of bound phosphite. An increased rate of transfer also is produced by binding the xylosyl part of the glucose ring, either when the acceptor is an hydroxyl group attached to the ring or when it is the hydroxyl group of a water molecule, e.g., as in the water reaction facilitated by bound xylose 1-phosphate. These and other results suggest that most of the differences between the rates of the water reaction and the glucose 1-phosphate reaction can be rationalized in terms of four fairly discrete factors whose approximate values are as follows: the PO4 factor, 1000-fold; the C-OH/H-OH factor, 100-fold; the nucleophile-binding factor, 250-fold; and the (CHOH)3-bridging factor, 200-fold...

Binding Sites↗

The thermodynamic and structural differences among the catalytically active complexes of phosphoglucomutase: metal ion effects.

When the identity of the metal ion activator, M, is changed within the series, Zn2+, Co2+, Mg2+, Ni2+, Mn2+, and Cd2+, the equilibrium distribution among the central complexes in the phosphoglucomutase system is markedly altered. (The central complexes are Ep-M-Glc-6-P, ED-M-Glc-1,6-P2, and Ep-M-Glc-1-P, where Ep and ED are the phospho and dephospho forms of the enzyme). This altered distribution is caused by a metal-specific change in the equilibrium constant for transfer of the enzymic PO3 group to bound glucose monophosphates: 65-fold as M is varied from Zn2+ to Cd2+. This change in equilibrium is related to metal-specific differences in chemical potential of the phosphate group in the Ep-M complex; these differences in chemical potential remain in the Ep-M-Glc-1-P and Ep-M-Glc-6-P complexes, but essentially disappear in the ED-M-Glc-1,6-P2 complex. If glucose monophosphates are considered as substrates, and glucose bisphosphate as the product, there is a direct relationship between the equilibrium concentration of enzyme-substrate and enzyme-product complexes (when these are varied by changing the identity of the bound metal ion) and the ultraviolet spectrum of the equilibrium mixture of complexes, as assessed by difference spectroscopy (Peck, E.J., Jr., and Ray, W.J., Jr. (1969), J. Biol, Chem. 244, 3754). These spectral changes apparently are caused by an alteration in the conformation of the enzyme during transfer of a PO3 group between the enzyme and the glucose phosphate moiety, or as the result of it. The extent to which conformational changes accompany group-transfer processes in other enzymic systems is not clear, but it is possible that analogous changes may help to account for the "half-of-the-sites reactivity" observed with a number of multimeric enzymes.

Binding Sites↗

Catalytic cycling in beta-phosphoglucomutase: a kinetic and structural analysis.

Lactococcus lactis beta-phosphoglucomutase (beta-PGM) catalyzes the interconversion of beta-d-glucose 1-phosphate (beta-G1P) and beta-d-glucose 6-phosphate (G6P), forming beta-d-glucose 1,6-(bis)phosphate (beta-G16P) as an intermediate. Beta-PGM conserves the core domain catalytic scaffold of the phosphatase branch of the HAD (haloalkanoic acid dehalogenase) enzyme superfamily, yet it has evolved to function as a mutase rather than as a phosphatase. This work was carried out to identify the structural basis underlying this diversification of function. In this paper, we examine beta-PGM activation by the Mg(2+) cofactor, beta-PGM activation by Asp8 phosphorylation, and the role of cap domain closure in substrate discrimination. First, the 1.90 A resolution X-ray crystal structure of the Mg(2+)-beta-PGM complex is examined in the context of previously reported structures of the Mg(2+)-alpha-d-galactose-1-phosphate-beta-PGM, Mg(2+)-phospho-beta-PGM, and Mg(2+)-beta-glucose-6-phosphate-1-phosphorane-beta-PGM complexes to identify conformational changes that occur during catalytic turnover. The essential role of Asp8 in nucleophilic catalysis was confirmed by demonstrating that the D8A and D8E mutants are devoid of catalytic activity. Comparison of the ligands to Mg(2+) in the different complexes shows that a single Mg(2+) coordination site must alternatively accommodate water, phosphate, and the phosphorane intermediate during catalytic turnover. Limited involvement of the HAD family metal-binding loop in Mg(2+) anchoring in beta-PGM is consistent with the relatively loose binding indicated by the large K(m) for Mg(2+) activation (270 +/- 20 microM) and with the retention of activity found in the E169A/D170A double loop mutant. Comparison of the relative positions of cap and core domains in the different complexes indicated that interaction of cap domain Arg49 with the "nontransferring" phosphoryl group of the substrate ligand might stabilize the cap-closed conformation, as required for active site desolvation and alignment of Asp10 for acid-base catalysis. Kinetic analyses of the specificity of beta-PGM toward phosphoryl group donors and the specificity of phospho-beta-PGM toward phosphoryl group acceptors were carried out. The results support a substrate induced-fit mechanism of beta-PGM catalysis, which allows phosphomutase activity to dominate over the intrinsic phosphatase activity. Last, we present evidence that the autophosphorylation of beta-PGM by the substrate beta-G1P accounts for the origin of phospho-beta-PGM in the cell.

Bacteroides↗

High-energy intermediate or stable transition state analogue: theoretical perspective of the active site and mechanism of beta-phosphoglucomutase.

A recent crystal structure of beta-phosphoglucomutase from Lactococcus lactis is reported to contain a five-coordinate phosphorus with five oxygen ligands that is a high-energy reaction intermediate during the phosphoryl transfer in the isomerization of beta-glucose 1-phosphate to beta-glucose 6-phosphate. Subsequently, it has been suggested that this structure is a transition state analogue with a five-coordinate magnesium with two oxygen and three fluorine ligands. Two layer ONIOM(B3LYP:PM3MM) calculations have been performed to address the nature of this intermediate and the mechanism of the phosphoryl transfer. These calculations provide evidence that (1) the observed crystal structure is consistent with a five-coordinate magnesium (a stable transition state analogue), not a five-coordinate phosphorus (a phosphorane) as a high-energy intermediate, (2) the active site is stabilized by the extensive hydrogen-bonding network, (3) the transfer of the phosphoryl group proceeds through a moderate barrier (14 kcal mol-1) five-coordinate phosphorus without a stable phosphorane or metaphosphate intermediate, (4) this concerted transition state is directly coupled to a proton transfer from the oxygen of glucose to the carboxylic group of aspartate 10, and (5) a stable glucose 1,6-bis-phosphoglucose intermediate is formed.

Binding Sites↗

Chemical confirmation of a pentavalent phosphorane in complex with beta-phosphoglucomutase.

This communication reports the X-ray crystal structure of the alpha-d-galactose-1-phosphate complex with that of Lactococcus lactis beta-phosphoglucomutase (beta-PGM) crystallized in the presence of Mg2+ cofactor and the enzyme-to-phosphorus ratio determined by protein and phosphate analyses of the crystalline complex. The 1:1 ratio determined for this complex was compared to the 1:2 ratio determined for the crystals of beta-PGM grown in the presence of substrate and Mg2+ cofactor. This result verifies the published structure assignment of this latter complex as the phosphorane adduct formed by covalent bonding between the active site Asp8 carboxylate to the C(1)phosphorus of the beta-glucose 1,6-bisphosphate ligand and rules out the proposal of a beta-PGM-glucose-6-phosphate-1-MgF3- complex.

Galactosephosphates↗

Isoenzymes of hexokinase, 6-phosphogluconate dehydrogenase, phosphoglucomutase and lactate dehydrogenase in uterine cancer.

Electrophoresis of cytosol prepared from normal and malignant tissue samples of uterine cervix and endometrium revealed interesting differences which may be relevant to the characteristic alterations in glucose metabolism associated with tumour development. Hexokinase II was detected in 30% of the cancer material from both sources, but in none of the samples of normal cervix. A duplet band of 6-phosphogluconate dehydrognease was seen in the majority of the cancer samples but in no sample of normal cervix; it appeared to be partly due to ageing of the sample, and is not phenotypically related to the malignant process. Analysis of genetic variance for phosphoglucomutase at the PGM1 locus revealed a highly significant excess of the PGM1-1 phenotype in patients with cancer of the endometrium, which may reflect susceptibility to endometrial cancer in patients with this phenotype. At the PGM2 locus, samples of malignant cervix were deficient in "Band f" compared with normal cervix samples, all of which showed this band. Conversely, gene products of the PGM3 locus were found in most samples of malignant cervix and a small minority of normal cervix samples. Compared with the isomorphic distribution of lactate dehydrogenase enzymes in normal uterine tissue, cancers showed a shift towards either a more anodal or a more cathodal pattern. The former may be associated with tumours enjoying a good oxygen supply, and the latter with tumours which, because of their depth or poor blood supply have to function under less aerobic conditions.

Electrophoresis, Polyacrylamide Gel↗

Latitudinal relationships of esterase-6 and phosphoglucomutase gene frequencies in Drosophila melanogaster.

Geographic variation in Esterase-6 (Est-6) and Phosphoglucomutase (Pgm) gene frequencies in Australasian populations of Drosophila melanogaster are compared with analogous data collated from 16 previous reports for North America and Europe/Asia. A large-scale latitudinal cline is found on all three zoogeographic zones for Est-6 and overall, Est-61.00 frequency increases from about 20 per cent around 20 degrees latitude to about 80 per cent approaching 50 degrees latitude. In contrast, there is no consistent evidence for the latitudinal cline in Pgm gene frequencies in any of the three zones with Pgm1.00 frequency generally about 85 per cent and Pgm1.20 and Pgm0.70 frequencies each between 5 per cent and 10 per cent. The consistent Est-6 clines are attributed to latitudinal selection gradients but not consistent correlations are found between Est-6 gene frequencies and maximum or minimum temperature or rainfall which might be associated with these gradients. The directions of the Est-6 clines in fact run counter to expectations based on the in vitro thermostabilities of the respective allozymes.

Animals↗

Inheritance of duplicated fumarase and phosphoglucomutase loci in lake trout (Salvelinus namaycush).

Two polymorphic, duplicated loci (fumarase-1,2 and phosphoglucomutase-3,4), previously undescribed in salmonids, were examined in lake trout to determine their electrophoretic expression, mode of inheritance, and linkage associations. Both loci appear to be located on chromosomes which show residual tetrasomy. Neither locus pair shows joint segregation with other loci examined or with each other.

Animals↗

Regulation of phosphoglucomutase 1 phosphorylation and activity by a signaling kinase.

We have identified a novel mechanism of cross-talk between cell signaling and metabolic pathways, whereby the signaling kinase p21-activated kinase 1 (Pak1) binds to, phosphorylates and enhances the enzymatic activity of phosphoglucomutase 1 (PGM), an important regulatory enzyme in cellular glucose utilization and energy homeostasis. Pak1 and PGM were colocalized in model cell systems and showed functional interactions in a physiological setting. Strong direct interaction of PGM with Pak1 but not Pak2, Pak3, or Pak4 was observed. PGM binding was within 75-149 amino acids (aa) of Pak1, while Pak1 binding to PGM was in the N-terminal 96 aa. Pak1-mediated phosphorylation of PGM selectively on threonine 466 significantly increased PGM enzymatic activity and could be blocked by transfection with a dominant-negative Pak1 expression vector and by Pak1-specific small inhibitory RNA. Stable transfection of PGM into PGM-deficient K562 leukemia cells further demonstrated the role of Pak1 in regulating PGM activity. The results presented here provide new evidence that the cell signaling kinase Pak1 is a novel regulator of glucose metabolism through its phosphorylation and regulation of PGM activity. These findings suggest a new mechanism whereby growth factor signaling may coordinately integrate metabolic regulation with established signaling functions of cell cycle regulation and cell growth.

Amino Acid Sequence↗

The inhibition of phosphoglucomutase by beryllium.

1. The inhibition of phosphoglucomutase by beryllium has been examined. 2. Inhibition by beryllium does not occur unless a complex-forming agent such as cysteine or imidazole is present. It is therefore similar to activation by magnesium. 3. The inhibition is progressive and the rate follows first-order kinetics, which may be defined by a bimolecular rate constant. 4. In the presence of magnesium the rate of inhibition is less. By using a fixed time for inhibition competition between beryllium and magnesium may be demonstrated. After inhibition has taken place, the addition of magnesium does not reverse it.

Beryllium↗

A tryptic peptide containing a unique serine phosphate residue in rabbit phosphoglucomutase.

(32)P-labelled phosphoglucomutase was digested with trypsin after denaturation and two peptides were isolated that contained the bulk of the radioactivity bound to peptides. Both peptides appeared to derive from an identical section of the molecule. Peptic and subtilisin digests of the tryptic peptides were prepared. The resulting radioactive peptides were purified and their sequences studied. The presence of a single serine [(32)P]phosphate residue was clearly established. Difficulties in purification and low yields, especially of the tryptic peptide, prevented exhaustive sequence studies, but a tentative sequence is proposed as:Ala-Ile-Gly-Gly-Ile-Ile-Leu-Thr-Ala-SerP-His-Asx-Pro-Gly-Gly-Pro-(Asx(2),Gly)-Phe-Gly-Ile-Lys(where SerP represents serine phosphate and Asx represents aspartic acid or asparagine). The results do not support the presence of two serine phosphate residues in the denatured enzyme, but confirm previous results of a unique sequence around a single serine phosphate residue.

Amino Acid Sequence↗

The mechanism of phosphoglucomutase from Micrococcus lysodeikticus.

The mechanism of the phosphoglucomutase from Micrococcus lysodeikticus was investigated. Induced-transport tests at low substrate concentrations (0.15mm) showed co-transport of the (32)P label but no induced transport of the (14)C label, which is in quantitative agreement with a phosphoenzyme mechanism with a rapid isomerization of the phosphoenzyme. The results excluded an intramolecular transfer of phosphate and could only have been compatible with a sequential mechanism if the K(m) for glucose 1-phosphate had been over 20 times smaller than the measured value. The results of induced-transport tests at intermediate concentrations (1mm) with both labels agreed quantitatively with a phosphoenzyme mechanism, and induced-transport tests with (14)C-labelled substrates at high concentrations (26mm) indicated that the rate constants for isomerization of the phosphoenzyme must be greater than about 3x10(6)s(-1). Consistent with these findings is the fact that (14)C label exchanged between the substrates twice as rapidly as the (32)P label at chemical equilibrium. Further, since the (14)C label exchanged between the substrates about ten times more rapidly than between the substrates and glucose 1,6-diphosphate, glucose 1,6-diphosphate is not an obligatory intermediate in the interconversion of the substrates. It is concluded that, contrary to previous evidence, the mechanism of the enzyme from M. lysodeikticus is essentially that of the rabbit muscle enzyme. To account for the rapid isomerization of the phosphoenzyme in both cases a mechanism is proposed in which there is no formal isomerization of the phosphoenzyme.

Animals↗

Mechanism of action of rabbit liver phosphoglucomutase.

Induced-transport tests with comparatively undegraded rabbit liver phosphoglucomutase show that the enzyme possesses a phosphoenzyme mechanism and that any interconversion of phosphoenzyme forms is very rapid. A relatively stable 32P-labelled phosphoenzyme was isolated, which exchanged label rapidly with substrates. The phospho group appears to be bonded to a serine residue on the enzyme.

Animals↗

Phosphoglucomutase 1: a gene with two promoters and a duplicated first exon.

In view of its central role in glycolysis and gluconeogenesis and its polymorphic genetic variability, the phosphoglucomutase 1 (PGM1) gene in man has been the target of protein structural studies and genetic analysis for more than 25 years. We have now isolated genomic clones containing the complete PGM1 gene and have shown that it spans over 65 kb and contains 11 exons. We have also shown that the sites of the two mutations which form the molecular basis for the common PGM1 protein polymorphism lie in exons 4 and 8 and are 18 kb apart. Within this region there is a site of intragenic recombination. We have discovered two alternatively spliced first exons, one of which, exon 1A, is transcribed in a wide variety of cell types; the other, exon 1B, is transcribed in fast muscle. Exon 1A is transcribed from a promoter which has the structural hallmarks of a housekeeping promoter but lies more than 35 kb upstream of exon 2. Exon 1B lies 6 kb upstream of exon 2 within the large first intron of the ubiquitously expressed PGM1 transcript. The fast-muscle form of PGM1 is characterized by 18 extra amino acid residues at its N-terminal end. Sequence comparisons show that exons 1A and 1B are structurally related and have arisen by duplication.

Amino Acid Sequence↗

A 63 kDa phosphoprotein undergoing rapid dephosphorylation during exocytosis in Paramecium cells shares biochemical characteristics with phosphoglucomutase.

We have enriched phosphoglucomutase (PGM; EC 5.4.2.2) approximately 20-fold from Paramecium tetraurelia cells by combined fractional precipitation with (NH4)2SO4, gel filtration and anion-exchange chromatography yielding two PGM peaks. Several parameters affecting PGM enzymic activity, molecular mass and pI were determined. Phosphorylation studies were done with isolated endogenous protein kinases. Like the 63 kDa phosphoprotein PP63, which is dephosphorylated within 80 ms during synchronous trichocyst exocytosis [Höhne-Zell, Knoll, Riedel-Gras, Hofer and Plattner (1992) Biochem. J. 286, 843-849], PGM has a molecular mass of 63 kDa and forms of identical pI. Since mammalian PGM activity depends on the presence of glucose 1,6-bisphosphate (Glc-1,6-P2) (which is lost during anion-exchange chromatography), we analysed this aspect with Paramecium PGM. In this case PGM activity was shown not to be lost, due to p-nitrophenyl phosphate-detectable phosphatase(s) (which we have separated from PGM), but also due to loss of Glc-1,6-P2. Like PGM from various vertebrate species, PGM activity from Paramecium can be fully re-established by addition of Glc-1,6-P2 at 10 nM, and it is also stimulated by bivalent cations and insensitive to chelating or thiol reagents. The PGM which we have isolated can be phosphorylated by endogenous cyclic-GMP-dependent protein kinase or by endogenous casein kinase. This results in three phosphorylated bands of identical molecular mass and pI values, as we have shown to occur with PP63 after phosphorylation in vivo (forms with pI 6.05, 5.95, 5.85). In ELISA, antibodies raised against PGM from rabbit skeletal muscle were reactive not only with original PGM but also with PGM fractions from Paramecium. Therefore, PGM and PP63 seem to be identical with regard to widely different parameters, i.e. co-elution by chromatography, molecular mass, phosphorylation by the two protein kinases tested, pI values of isoforms, and immuno-binding. Recent claims that PP63 ('parafusin') would not be identical with PGM specifically in Paramecium are critically evaluated. Since some glycolytic enzymes are discussed as being associated with the Ca(2+)-release channel in muscle sarcoplasmic reticulum, and since sub-plasmalemmal Ca2+ stores in Paramecium closely resemble sarcoplasmic reticulum, a possible function of PP63/PGM in exocytosis regulation is discussed, particularly since dephosphorylation strictly parallels exocytosis.

Animals↗

Studies on recombinant Acetobacter xylinum alpha-phosphoglucomutase.

The phosphoglucomutase (PGM) from Acetobacter xylinum, which had been cloned and expressed in Escherichia coli, has been studied. After expression, the enzyme was purified from the E. coli in a three-step process consisting of (NH4)2SO4 precipitation, gel filtration and anion-exchange chromatography. The purified enzyme gave one band on gel electrophoresis and was judged essentially free of impurities, although it was unstable when diluted without the addition of 15 microM BSA. The isoelectric point for A. xylinum PGM was 4.8 and the molar absorbance was 3.9 x 10(4) M-1.cm-1. The enzyme was reasonably heat-stable below 50 degrees C and was stable throughout the pH 5.5-7.4 range, but was 70% inactivated at pH 10.0 and completely inactivated after standing for 10 min at pH 3.0 or at pH 12.4. When isolated, the recombinant enzyme was fully active without the addition of extra Mg2+. The Km for glucose 1-phosphate was much higher than that of other PGM species reported, which accords with the production of extracellular cellulose in A. xylinum. Glucose 1,6-diphosphate is not considered to be a substrate or coenzyme but an activating cofactor like Mg2+. The following kinetic constants were determined: Vmax 81.1 units/mg; kcat and the turnover rate 135 s-1; Km (glucose 1,6-diphosphate) 0.2 microM; Km (glucose 1-phosphate) 2.6 mM; kcat/Km (glucose 1-phosphate) 5.2 x 10(4) M-1.s-1. The recombinant enzyme is considered to follow a characteristic substituted enzyme or Ping Pong reaction mechanism.

Anions↗

Phosphoglucomutase and trehalase isoenzymes of Venezuelan simulium vectors of Onchocerca volvulus.

Phosphoglucomutase (PGM) and trehalase (Tre) isoenzymes of five species of Simulium blackflies (Diptera: Simuliidae), vectors of onchocerciasis in Venezuela, were investigated by means of a portable electrophoresis field kit. Tre differed between S. incrustatum and S. oyapockense s.l. Electrophoretic variation of Tre in other members of the S. amazonicum and S. incrustatum groups merit further investigation. PGM appears to be more useful for separating populations within species complexes. Multiple populations and/or seasonal changes in population structure of S. guianense s.l., S. exiguum s.l. and S. metallicum s.l. were inferred from elecrophoretic variation of PGM.

Animals↗

The Haemophilus influenzae HMW1 adhesin is glycosylated in a process that requires HMW1C and phosphoglucomutase, an enzyme involved in lipooligosaccharide biosynthesis.

Non-typeable Haemophilus influenzae is a common respiratory pathogen and an important cause of morbidity in humans. The non-typeable H. influenzae HMW1 and HMW2 adhesins are related proteins that mediate attachment to human epithelial cells, an essential step in the pathogenesis of disease. Secretion of these adhesins requires accessory proteins called HMW1B/HMW2B and HMW1C/HMW2C. In the present study, we investigated the specific function of HMW1C. Examination of mutant constructs demonstrated that HMW1C influences both the size and the secretion of HMW1. Co-immunoprecipitation and yeast two-hybrid assays revealed that HMW1C interacts with HMW1 and forms a complex in the cytoplasm. Additional experiments and homology analysis established that HMW1C is required for glycosylation of HMW1 and may have glycotransferase activity. The glycan structure contains galactose, glucose and mannose and appears to be generated in part by phosphoglucomutase, an enzyme important for lipooligosaccharide biosynthesis. In the absence of glycosylation, HMW1 is partially degraded and is efficiently released from the surface of the organism, resulting in reduced adherence. Based on these results, we conclude that glycosylation is a prerequisite for HMW1 stability. In addition, glycosylation appears to be essential for optimal HMW1 tethering to the bacterial surface, which in turn is required for HMW1-mediated adherence, thus revealing a novel mechanism by which glycosylation influences cell-cell interactions.

Adhesins, Bacterial↗