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Incorporation of N-acetylglucosamine from UDP-N-acetylglucosamine into proteins and lipid intermediates in microsomal and Golgi membranes from rat liver.

Rough and smooth microsomes and Golgi membranes incorporate N-acetylglucosamine from UDP-N-acetylglucosamine into endogenous protein acceptors. A lipid intermediate of the dolichol phosphate type participates in this transfer reaction in the case of both microsomal subfractions, but the nature of lipid glycosylation is different in these two fractions. Glucosamine transfer in Golgi membranes does not appear to involve a lipid intermediate. In contrast to the results obtained under in vivo conditions, no glucosamine label is recovered in nascent ribosomal proteins or on luminal secretory proteins after incubation in vitro. Proteolysis of intact vesicles of the subfractions removes glycosylated dolichol phosphate and protein acceptors to various extents and interferes with transferase activities. This finding suggests the possiblity that glycosylation at the cytoplasmic side of the membrane of the endoplasmic reticulum may involve a system separate from that acting at the luminal side of the same membrane.

Acetylglucosamine

Regulation of N-acetylglucosamine uptake in yeast.

Various yeasts have been investigated for their ability to grow on N-acetylglucosamine as the sole carbon source and only those which are associated with the disease, candidiasis, gave positive results. The yeasts unable to grow on N-acetylglucosamine lacked the capacity to transport the aminosugar across the cell membrane. In pathogenic yeasts, two systems of different affinity for substrate were found to operate in the uptake of N-acetylglucosamine. In glucose-grown cells a constitutive, low affinity uptake system was present, but upon addition of inducer, a specific high affinity uptake system was synthesized. Experiments with the inhibitors of macromolecule synthesis suggested that the synthesis of RNA and protein is necessary for induction whereas the synthesis of DNA is not. In glucose-grown Candida albicans cells which are devoid of N-acetylglucosamine enters into the cells as phosphorylated form using a constitutive uptake system. Uranyl acetate (0.01 mM) which binds to cell membrane-associated polyphosphates, inhibited completely the inducible uptake of N-acetylglucosamine. Labelling experiments, designed to determine the temporal sequence of appearance of N-acetylglucosamine in intracellular free sugar and sugar-phosphate pools, indicated that N-acetylglucosamine first appeared in the cells as pohosphorylated form. Similar results were obtained with Saccharomyces phosphorylated form. Similar results were obtained with Saccharomyces cerevisiae 3059 and some other yeasts which are devoid of N-acetylglucosamine kinase in both uninduced and induced conditions. These results are consistent with the model of van Steveninck that involves phosphorylation during transpost. Furthermore, inhibitors of energy metabolism (arsenate, azide and cyanide), proton conductor (m-chlorocarbonylcyanide phenylhydrazine) and dibenzyl diammonium ion (membrane permeable cation) inhibited the inducible N-acetylglucosamine uptake in C. albicans.

Acetylglucosamine

The dolichol pathway of protein glycosylation in rat liver. Stimulation by GTP of the incorporation of N-acetylglucosamine in endogenous lipids and proteins of rough microsomes treated with pyrophosphate.

Incorporation of N-acetylglucosamine into endogenous lipid and protein acceptors was investigated on heavy microsomes from rat liver, incubated with UDP-N-acetyl[14C]glucosamine and GDP-mannose in the absence of detergent. This subcellular preparation derived for 95% or more from the rough endoplasmic reticulum and was devoid of Golgi components which contain the enzyme that adds the peripheral N-acetylglucosamine units to glycoproteins. The label was found almost exclusively in dolichyl diphosphate N-acetylglucosamine, except when the subcellular preparation was treated with pyrophosphate and subsequently incubated with the nucleotide sugars in the presence of GTP. Then, the incorporation of N-acetylglucosamine was considerably enhanced, and the additional label was associated with dolichyl diphosphate N,N'-diacetylchitobiose, with dolichyl diphosphate oligosaccharides and with proteins. The time-course of N-acetylglucosamine incorporation in these products was compatible with the pathway of dolichyl diphosphate glycoconjugates for the biosynthesis of the core portion of saccharide chains linked to asparagine residues of glycoproteins. The addition of GDP-mannose to the incubation medium was required to produce labeled dolichyl diphosphate oligosaccharides, but not to incorporate N-acetylglucosamine in protein. It is concluded that rough microsomes are capable of assembling dolichol-linked oligosaccharides from exogenous nucleotide precursors and of transferring N,N'-diacetylchitobiose, or its mannosylated derivatives, from the lipid intermediate to endogenous proteins. However, these metabolic activities are hindered in the original subcellular preparation, and in the absence of GTP. Although the earliest perceptible effect produced jointly by the treatment with pyrophosphate and by GTP was the synthesis of dolichyl diphosphate N,N'-diacetylchitobiose, the primary action of these factors remains uncertain. They may stimulate directly the reaction forming dolichyl diphosphate N,N'-diacetylchitobiose from dolichyl diphosphate N-acetylglucosamine, or activate the synthesis of this latter intermediate from a particular pool of dolichyl monophosphate which is readily converted afterwards into disaccharide and oligosaccharide derivatives and glycosylates protein. The requirement for GTP might have a functional meaning, for GTP acted maximally at a concentration distinctly lower than its actual concentration in liver. The detachment of ribosomes from rough vesicles was the major alteration induced by treatment with pyrophosphate. It is suggested that the removal of ribosomes unmasks the membrane sites where GTP acts.

Acetylglucosamine

Glycolipid intermediates involved in the transfer of N-acetylglucosamine to endogenous proteins in a yeast membrane preparation.

A particulate membrane fraction from Saccharomyces cerevisiae contains transferases which catalyze the incorporation of N-acetylglucosamine from UDP-N-acetylglucosamine into a lipid fraction as well as into a protein fraction. The lipid fraction contains two alkali-stable lipids which can be separated on a silica G-60 column. The sugar moieties of these polyprenoid lipids are: N-acetylglucosamine and di-N-acetylchitobiose. The transfer of carbohydrate from isolated glycolipids to endogenous protein has been examined. After separation of protein and saccharide by hydrazinolysis and reacetylation only di-N-acetylchitobiose is found, and also when glycolipid containing only one N-acetylglucosamine is used as substrate. Maximum transfer of saccharides from glycolipids to protein is obtained at a Triton X-100 concentration of 1%. At this Triton X-100 concentration there is practically no transfer of N-acetylglucosamine from UDP-N-acetylglucosamine to the phosphorylated lipid. Therefore, when polyprenyl diphosphate N-acetyl[3H]-glucosamine is incubated together with UDP-N-acetyl[14C]glucosamine with the membrane fraction in the presence of 1% Triton X-100, a doubly labelled di-N-acetylchitobiose linked to lipid is formed with N-acetyl[14C]glucosamine at the non-reducing end of the chain.

Acetylglucosamine

N-Acetylglucosamine-6-sulfate sulfatase from human urine.

N-Acetylglucosamine-6-sulfate sulfatase, which liberates sulfate from the N-acetylglucosamine 6-sulfate residue at the nonreducing terminus of a 3H-labeled trisaccharide prepared from heparan sulfate, was purified 136-fold from human urine. The final N-acetylglucosamine-6-sulfate sulfatase preparation was free of all lysosomal sulfatases known to act on sulfated polysaccharides and gave a single band in polyacrylamide gel electrophoresis. The enzyme appears to be a glycoprotein with a molecular weight of around 97,000 and displays considerable charge heterogeneity. Multiple forms with pI values between 5.4 and 8.3 with a maximum at pH 7.7 were detected. The enzyme acts on the 3H-trisaccharide with a pH optimum at 5.5 and is active towards the sulfated monosaccharides N-acetylglucosamine 6-sulfate and glucose 6-sulfate. Although predominantly in exosulfatase, the enzyme catalyzes hydrolysis of sulfate from internal N-acetylglucosamine 6-sulfate moieties at a low rate. The Km for the 3H-trisaccharide, N-acetylglucosamine 6-sulfate, and glucose 6-sulfate were 0.15, 1.5, and 7.7 mM, respectively. The enzyme is inhibited by albumin, Hg2+, PO43-, SO42-, and CN-. Enzyme activity was highest in kidney and cultured fibroblasts but could be demonstrated in all human tissues tested.

Acetylglucosamine

Effect of nucleotides on UDP-N-acetylglucosamine pyrophosphatase and N-acetylglucosaminyltransferase activities in microsomal membranes.

Rat liver microsomes solubilized by incubating with lysolecithin or Triton X-100 showed very active UDP-N-acetylglucosamine pyrophosphatase activity leading to the hydrolysis of the substrate into N-acetylglucosamine-P and N-acetylglucosamine. ATP, GTP, CDPcholine, and CDPglucose exerted a considerable inhibitory effect on the solubilized membrane pyrophosphatase activity. CDPcholine and CDPglucose, in addition, appeared to stimulate the transfer of N-acetylglucosamine into endogenous and exogenous acceptor proteins. Evidence is also presented of an inhibitory effect of ATP (and to some extent GTP) on N-acetylglucosaminyltransferase activity. This inhibitory effect of ATP and GTP became clearly evident when the pyrophosphatase activity in the membranes was virtually eliminated in the presence of CDP-choline and CDPglucose. The effect of ATP and GTP on the solubilized membrane enzymes indicated that the inhibition of pyrophosphatase activity alone did not determine the rate of transfer of sugar to protein. The results also suggested that the UDP-N-acetylglucosamine pyrophosphatase and N-acetylglucosaminyltransferase activities were controlled independently and the effect of each nucleotide on these enzymes should, therefore, be carefully evaluated to understood its role in glycopolymer biosynthesis. Also, a possible role of choline and its derivatives in glycoprotein synthesis is discussed.

Acetylglucosamine

Metabolism and insulin-releasing capabilities of glucosamine and N-acetylglucosamine in isolated rat islets.

The ability of glucosamine and N-acetylglucosamine to stimulate insulin secretion from perifused rat islets and the suitability of these hexoses to be metabolized in a static incubation was studied under various conditions. N-Acetylglucosamine alone stimulated insulin release with a threshold of 10 mM, with half-maximal effect at approx. 16 mM, and maximally at 20 mM. With higher concentrations stimulation was slightly diminished. Release caused by 20 mM-N-acetylglucosamine was unaffected by 30 mM-mannoheptulose, but was blocked by 2-deoxyglucose or iodoacetate (1 mM). At moderate concentrations, (2.75--20 mM), the metabolism of N-acetyl[1-3H]glucosamine was similar to that of [1-3H]glucose and secretion rates paralleled the corresponding rates of metabolism with these hexoses. Glucosamine (27.5 mM) alone weakly stimulated insulin secretion, which was unaltered by 30 mM-mannoheptulose but blocked by 2-deoxyglucose or iodoacetate. A lower rate of [1-3H]glucosamine metabolism appeared to account for its weaker stimulatory efficacy. Insulin release caused by 27.5 mM-glucosamine or 27.5 mM-N-acetylglucosamine in the presence of basal (2.75 mM) glucose was accurately predicted based on the summed metabolic rates of these compounds. The data strengthen the theory proposing that metabolites or cofactors generated during metabolism are essential for triggering insulin secretion.

Acetylglucosamine

Hepatic receptor that specifically binds oligosaccharides containing fucosyl alpha1 leads to 3 N-acetylglucosamine linkages.

Evidence is presented suggesting that hepatocytes contain a receptor that binds glycoproteins specifically through fucose in alpha1-->3 linkage to N-acetylglucosamine. Human lactoferrin, which contains this type of linkage, is rapidly cleared from the circulation of mice after intravenous injection, and greater than 90% of the injected material is found in hepatocytes. Binding of lactoferrin is mediated through its carbohydrate groups, since its clearance is prolonged after periodate oxidation or after its oligosaccharide groups are extensively degraded with glycosidases. In addition, glycopeptides from lactoferrin inhibit lactoferrin clearance. That lactoferrin clearance is mediated through binding to its fucosyl groups is suggested for several reasons. First, transferrin and asialotransferrin, whose oligosaccharide groups are essentially structurally identical to those of lactoferrin but devoid of fucose, are not cleared on intravenous injection. Second, when fucose is incorporated into asialotransferrin by alpha1-->3 N-acetylglucosamine fucosyl transferase, the resulting fucosylated derivative is cleared rapidly. Neither mannan nor derivatives of orosomucoid that are cleared by binding to receptors for galactose, N-acetylglucosamine, or mannose, inhibit clearance of lactoferrin although clearance is inhibited by fucoidin. Finally, glycoproteins containing fucose in alpha1 --> 2 linkage to galactose or alpha1 --> 6 linkage to N-acetylglucosamine do not inhibit lactoferrin clerance by the liver. Since clearance of other glycoproteins, such as human lactoperoxidase, also appears to be mediated through binding to the same hepatocyte receptor as lactoferrin, it is concluded that the fucose-specific receptor studied here may fulfill other functions than binding lactoferrin. Preliminary studies with liver homogenates and detergent extracts of liver show binding in vitro.

Acetylglucosamine

Uridine diphosphate N-acetylglucosamine stimulates uptake of nutrients by quiescent BALB/C3T3 cells.

Preincubation of quiescent BALB/C3T3 cells with uridine diphosphate N-acetylglucosamine (UDP-GlcNAc) in conditioned medium resulted in a time- and concentration-dependent stimulation of uptake of 2-deoxyglucose, uridine, and alpha-aminoisobutyric acid over that seen in conditioned medium alone. The apparent Km values for 2-deoxyglucose and uridine uptake were the same for cells incubated with or without UDP-GlcNAc, whereas the Vmax values were higher for cells pretreated with the nucleotide sugar. The stimulation of uptake was specific for UDP-GlcNAc, and the other nucleotide sugars tested were ineffective; incubation of UDP-GlcNAc-pretreated cells with N-acetylglucosaminidase abolished the stimulatory effect. In all cases, the extent of stimulation of nutrient uptake was comparable to that seen with serum-stimulated cells. Incubation of quiescent cells in situ with UDP-[3H]GlcNAc led to incorporation of radioactive N-acetylglucosamine into the acid-precipitable fraction; a large fraction of the labeled amino sugar was found on the cell surface acceptors. We interpret these data to mean that the cellular acceptors of quiescent cells are "under-glycosylated," at least in terms of N-acetylglucosamine, and that stimulation of uptake of nutrients may be a consequence of restoration of the amino sugar residues on the oligosaccharide chains of acceptors on the cell surface.

Acetylglucosamine

Purification and some properties of uridine diphosphate N-acetylglucosamine pyrophosphorylase from Neurospora crassa.

Uridine diphosphate N-acetylglucosamine pyrophosphorylase (EC. 2.7.7.23) of Neurospora crassa has been purified approximately 210-fold with dithiothreitol as the stabilizing agent by use of chromatographic techniques. The enzyme preparation appeared to be homogeneous when subjected to electrophoresis. The molecular weight was estimated as approximately 37 000 by gel filtration. The enzyme had an isoelectric point around pH 4.4. Maximum activity of the enzyme was observed at pH 7.5. The enzyme required Mg2+, which may be replaced by other divalent cations such as Mn2+ and Co2+ for lesser degrees of effectiveness. The enzyme was strictly specific for UDP-N-acetylglucosamine as the substrate. The estimated values of Km were 2.2 mM for UDP-N-acetylglucosamine and 5.4 mM for inorganic pyrophosphate. The enzyme activity was highly stimulated by the addition of dithiothreitol or dithioerythritol but was lost by sulfhydryl inhibitory reagents.

Hydrogen-Ion Concentration

Adhesion of chicken hepatocytes to polyacrylamide gels derivatized with N-acetylglucosamine.

Complex carbohydrates on the surfaces of eukaryotic cells are thought to participate in a wide variety of cell-cell interactions. A model system has therefore been developed to study these processes. In the present experiments, the ability of chicken hepatocytes to recognize and adhere to sugars covalently linked to polyacrylamide gels was investigated. The gels were snythesized by two methods. Type I gels were prepared from a co-polymer of an active ester of acrylic acid (N-succinimidyl acrylate), acrylamide, and bisacrylamide. The "activated" polyacrylamide gel was then treated with the desired ligand containing an amino group, such as 6-aminohexyl O- or S-glycoside. Type II gels were formed by treating similar ligands with acryloyl chloride, followed by co-polymerization of the resulting N-substituted acrylamide with acrylamide and N,N'-methylenebisacrylamide. These polyacrylamide derivatives offer many advantages for studies with intact cells. They are not toxic to any cell type studied, can be cast in any desired shape, are transparent and stable over a wide range of pH values, and contain no cationic and low to negligible levels of anionic charge (charged groups can be introduced if desired), and the polyacrylamide matrix is stable to common biological agents such as bacteria and enzymes. In addition, type I gels can be synthesized using a broad range of molecules containing amino groups, such as glycopeptides, proteins, etc. The hepatocytes were prepared by collagenase perfusion of intact chicken livers. The rate and extent of adhesion of the cells to the derivatized gels was determined by measuring lactate dehydrogenase in these cells. This enzyme was also used to assay viability and cell "leakiness." At 37 degrees C, 70 to 100% of the cells adhered within 60 min to gels derivatized with N-acetylglucosamine, i.e. gels derivatized with 6-aminohexyl 2-acetamido-2-deoxy-beta-D-glucopyranoside (or the corresponding thioglycoside). By contrast, less than 5% of the cells adhered to polyacrylamide or to gels derivatized with 6-aminohexanol or the 6-aminohexyl glycosides of beta-D-glucose, beta-D-galactose, alpha-D-mannose, beta-D-maltose, beta-D-melibiose, beta-D-cellobiose, and (alpha or beta)-D-lactose. Kinetic studies with the chicken hepatocytes and N-acetylglucosamine gels showed that cell-gel binding was dependent upon Ca2+ and was decreased at low temperatures. Binding was inhibited by N-acetylglucosamine or by glycosides of this sugar, the most effective inhibitor being orosomucoid (alpha1-acid glycoprotein) pretreated with sialidase and beta-galactosidase. The cell surface receptor(s) involved in this interaction is not known, but may be related or identical to the chicken liver binding protein described by Lunney and Ashwell (Lunney, J., and Ashwell, G. (1976) Proc. Natl. Acad. Sci. U. S. A. 73, 341--343). The present results suggest that this model system should prove useful in delineating cell surface interactions with carbohydrates.

Acetylglucosamine

The incorporation of tritium from tritium-enriched water into UDP-N-acetylglucosamine and UDP-N-acetylmannosamine catalyzed by UDP-N-adetylglucosamine 2-epimerase from Escherichia coli.

Uridine diphosphate N-acetylglucosamine 2-epimerase from Escherichia coli 014 K7 H- catalyzes the reversible epimerization of uridine diphosphate N-acetylglucosamine to uridine diphosphate N-acetylmannosamine. During epimerization, tritium from tritium-enriched water is incorporated into both uridine diphosphate N-acetylglucosamine and uridine diphosphate N-acetylmannosamine. The position of incorporation is C-2 of the N-acetylhexosamine moieties.

Carbohydrate Epimerases

Measurement of 1-aspartamido-beta-N-acetylglucosamine amidohydrolase activity in human tissues.

The activity of 1-aspartamido-beta-N-acetylglucosamine amidohydrolase (aspartylglucosylaminase, EC 3.5.1.26) was measured in normal and diseased human liver, brain and kidney. Organs from patients with aspartylglucosaminuria show very little activity. Crude homogenates of human organs show a reaction catalysed by a complex enzyme system. With homogenate, the formation of product was linear with time up to about 6 h. Reaction times longer than 6-7h resulted in a decrease in the total concentration of product. This phenomenon was not found with the partially purified enzyme fraction. Linearity of the enzyme activity with different protein concentrations was found, independent of the incubation time. Longer incubation of the crude homogenate resulted in the utilization of the product, N-acetylglucosamine. This phenomenon was not observed with the partially purified enzyme fraction. This amidase from human organs differs from that obtained from other sources and apparently represents a rather complex enzyme system.

Acetylglucosamine

The presence of dolichol in a lipid diphosphate N-acetylglucosamine from Saccharomyces cerevisiae (baker's yeast).

The lipid moiety of a lipid diphosphate N-acetylglucosamine, an intermediate in glycosylation of proteins, was studied. Ozonolysis of the compound gave evidence for an alpha-saturated isoprene unit. Alkaline hydrolysis of the glycolipid, followed by high-pressure liquid chromatography, showed the presence of a series of polyprenol homologues identical with those isolated directly from Saccharomyces cerevisiae (baker's yeast). No particular homologue was preferred in the enzymic transfer of N-acetylglucosamine 1-phosphate to endogenous dolichol monophosphate.

Acetylglucosamine

Induction of N-acetylglucosamine-catabolic pathway in spheroplasts of Candida albicans.

Synthesis of N-acetylglucosamine-catabolic enzymes, namely permease (high-affinity uptake system), kinase and deaminase was studied in the spheroplasts of the yeast Candida albicans. The presence of N-acetylglucosamine as inducer is essential for the induced synthesis of these enzymes in the spheroplasts, which were active for at least 8--9 h. However, some of the newly synthesized kinase and deaminase leaked out from the spheroplasts into the medium during induction. Experiments with inhibitors of RNA and protein synthesis indicate that the appearance of new enzyme activities is dependent on concomitant new protein synthesis and the inducer operates at a transcriptional level. However, inhibitors of DNA synthesis, e.g. mitomycin-C and hydroxyurea, had no effect on the synthesis of these enzymes.

Acetylglucosamine