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Intestinal glucose transport: evidence for a membrane traffic-based pathway in humans.

BACKGROUND & AIMS: The presence of glucose transporter 2 (GLUT2) molecules in the basolateral membrane of enterocytes has long been considered to be of major importance for intestinal glucose absorption. The aim of this study was to reevaluate the role of GLUT2 in a patient with congenital GLUT2 deficiency (Fanconi-Bickel syndrome, FBS). METHODS: Oral mono- and disaccharide tolerance tests including gaschromatographic determination of breath hydrogen concentrations were performed in an FBS patient. For comparison, a patient with a microsomal carbohydrate transport defect, glucose-6-phosphate translocase 1 (G6PT1) deficiency, and a control individual were investigated. RESULTS: No increase in breath hydrogen concentration was found in the GLUT2-deficient patient after a glucose load. In G6PT1 deficiency, basal hydrogen concentrations were repeatedly found to be elevated. CONCLUSIONS: From the fact that a GLUT2-deficient patient does not show any impairment of intestinal monosaccharide transport measurable by the hydrogen breath test, we conclude that mechanisms other than facilitative glucose transport by GLUT2 must be involved in the transport of monosaccharides at the basolateral membrane of enterocytes. When relating this observation to the high intestinal expression of human hexokinase, G6PT1, and glucose-6-phosphatase and to our results of oral carbohydrate tolerance tests in a G6PT1-deficient patient, there is evidence that a microsomal membrane traffic-based transport pathway, as recently suggested for GLUT2-deficient animals, also plays a major role in transcellular monosaccharide transport of the human intestine.

Adult↗

Purification of the lysosomal sialic acid transporter. Functional characteristics of a monocarboxylate transporter.

Sialic acid and glucuronic acid are monocarboxylated monosaccharides, which are normally present in sugar side chains of glycoproteins, glycolipids, and glycosaminoglycans. After degradation of these compounds in lysosomes, the free monosaccharides are released from the lysosome by a specific membrane transport system. This transport system is deficient in the human hereditary lysosomal sialic acid storage diseases (Salla disease and infantile sialic acid storage disease, OMIM 269920). The lysosomal sialic acid transporter from rat liver has now been purified to apparent homogeneity in a reconstitutively active form by a combination of hydroxyapatite, lectin, and ion exchange chromatography. A 57-kDa protein correlated with transport activity. The transporter recognized structurally different types of acidic monosaccharides, like sialic acid, glucuronic acid, and iduronic acid. Transport of glucuronic acid was inhibited by a number of aliphatic monocarboxylates (i.e. lactate, pyruvate, and valproate), substituted monocarboxylates, and several dicarboxylates. cis-Inhibition, trans-stimulation, and competitive inhibition experiments with radiolabeled glucuronic acid as well as radiolabeled L-lactate demonstrated that L-lactate is transported by the lysosomal sialic acid transporter. L-Lactate transport was proton gradient-dependent, saturable with a Km of 0.4 mM, and mediated by a single mechanism. These data show striking biochemical and structural similarities of the lysosomal sialic acid transporter with the known monocarboxylate transporters of the plasma membrane (MCT1, MCT2, MCT3, and Mev).

Animals↗

Collectin in a non-mammalian species: isolation and characterization of mannan-binding protein (MBP) from chicken serum.

A chicken serum lectin was isolated by affinity chromatography on TSK-75 beads derivatized with the monosaccharide N-acetyl-D-mannosamine (ManNAc). Serum was applied to the column in a Ca(2+)-containing buffer and proteins were eluted with EDTA. After recalcification, the eluate was passed through a new ManNAc-derivatized column. Bound proteins were eluted with 50 mM ManNAc. Anti-carbohydrate antibodies present in the eluate were removed by passage through a rabbit anti-chicken immunoglobulin derivatized column, and the lectin was further purified by ion-exchange chromatography and gel-permeation chromatography. The purified chicken lectin shows an overall structure similar to mammalian mannan-binding protein (MBP). SDS-PAGE revealed two polypeptides of M(r) 33 and 34 kDa (reduced) with identical sequence for the first 30 NH2-terminal residues. The NH2-terminal sequence shows 43% identity with the human MBP. Like mammalian MBP, the polypeptides of the chicken lectin are degraded by treatment with collagenase. Residues 26-30 (G-L-P(OH)-G-D) are likely to represent the beginning of the collagenous region. Mobilities on SDS-PAGE of the COOH-terminal collagenase-resistant fragment under reduced and non-reduced conditions indicate the presence of intrachain disulphide bonds, as are also found in mammalian MBP. Gel chromatography showed an intact mol. wt of 750 kDa. Binding of the chicken MBP to mannan was inhibited by monosaccharides in the following order of potency: ManNAc > L-fucose > mannose > N-acetylglucosamine. Other monosaccharides inhibited poorly or not at all. Chicken MBP, bound to mannan, activated the classical complement pathway in human serum. Electron micrographs show structures and dimensions resembling human MBP. Overall, the results show that the purified lectin is the chicken homologue to mammalian MBP and indicate the presence of a MBP-like clearance system outside mammals.

Amino Acid Sequence↗

Glycosidic residues involved in human sperm-zona pellucida binding in vitro.

Glycosidic residues of the mammalian zona pellucida (ZP) are known to be involved in sperm binding, suggesting the presence of complementary carbohydrate binding sites on spermatozoa. However, in previous studies, in which sperm suspensions were incubated with monosaccharides, no inhibitory effect was observed. Results of studies in which sperm were treated shortly after swim-up suggest that the use of non-capacitated cells may explain the apparently conflicting results. In the present report, we studied the effect of preincubation of capacitated spermatozoa with different monosaccharides on their ability to bind to ZP. After 5 h under capacitating conditions, spermatozoa were incubated in medium with or without a monosaccharide, resuspended in fresh medium and used for hemizona (HZ) binding assay. When ZH were incubated with spermatozoa treated with N-acetyl-D-glucosamine, D-mannose, D-fucose, L-fucose or D-galactose, a significant decrease in the number of spermatozoa bound was observed (level of inhibition: 62, 58, 82, 68 and 48% respectively) while treatment of spermatozoa with D-glucose produced no inhibition. Sugar treatment neither altered sperm motility nor the rate of acrosome reaction. These results suggest that N-acetylglucosamine, mannose, fucose and galactose residues are involved in human sperm-zona pellucida binding in vitro.

Binding Sites↗

Blood-group A and B determinants are located in different polyglycosyl peptides isolated from human erythrocytes of blood-group AB.

The distribution of blood-group A and B determinants was studied by isolating blood-group ABH-active polyglycosyl peptides from delipidated human blood-group AB erythrocyte membranes after extensive digestion with pronase followed by chromatography on Bandeiraea simplicifolia I (BsI) lectin coupled to Sepharose. 20% of the polyglycosyl peptides were bound to BsI lectin. The glycopeptides bound were further fractionated using the blood-group-A-specific lectin from Vicia cracca (Vc). Approximately half of these were bound to the Vc lectin. The glycopeptides, which were bound to the Vc column, were not bound to the blood-group-B-specific isolectin from B. simplicifolia (BsIB4) whereas the Vc-unbound glycopeptides readily bound. The results indicate that in the polyglycosyl peptides isolated from AB erythrocytes A and B determinants are located in different carbohydrate chains. The polyglycosyl peptides, which did not bind to BsI lectin, were composed on the average of 30 monosaccharide units and those that bound contained on the average 55 monosaccharide units. The sugar composition was similar in both fractions except that N-acetylgalactosamine was found only in the BsI-bound glycopeptides. The substitution patterns of the monosaccharides were quite similar in both fractions except 2,3-O-linked galactose, which was enriched 7.5-fold in the BsI-bound glycopeptides and 3,6-O-linked galactose, which also enriched in the BsI-bound glycopeptides suggesting that these have a more branched structure than the BsI-unbound glycopeptides. Glycopeptides derived from bands 3 and 4.5 were prepared from A1B-blood-group erythrocyte membranes and fractionated as above. 25% of the glycopeptides were bound to BsI-lectin from both samples. 70% of the BsI-bound material from band 3 was bound to Vc lectin and 60% from band 4.5. The results indicate heterogeneity in the glycosylation of these bands.

ABO Blood-Group System↗

Problems in anlysis of faecal sugar.

Significant amounts of sugar were found in 22% of 180 faecal samples from 135 children with acute or chronic diarrhoea. The methods used were the Clinitest method and paper chromatography. There was very good correlation between the results of these methods. Screening by Ph was less reliable. Various di- and monosaccharides were found. However, a disaccharide was never found without the simultaneous finding of its component monosaccharides. In vitro studies showed that the faecal flora has the ability to split disaccharides very rapidly. Within a few minutes much of the disaccharide had been split and no traces could be found after 30 minutes. Since the same process is assumed to take place in the lower gut, children with disacchardase deficency cannot be expected to excrete disaccharide alone in their faeces without the corresponding monosaccharides. The lack of a disaccharide in the faeces does not exclude the possibility of disaccharidase deficiency. Acid hydrolysis of faecal samples in cases of suspected sucrase deficiency seems not to be necessary.

Carbohydrates↗

Differences in glycosylation patterns of heat shock protein, gp96: implications for prostate cancer prevention.

Heat shock protein gp96 induces a tumor-specific protective immunity in a variety of experimental tumor models. Because the primary sequences of the glycoprotein, gp96 are identical between tumor and normal tissues, the peptides associated with gp96 and/or the posttranslational modifications of gp96, determine its immunogenicity. Gp96-associated peptides constitute the antigenic repertoire of the source tissue; thus, purified gp96-peptide complexes have clinical significance as autologous cancer vaccines. However, the role of altered glycosylation and its contribution in the biological as well as immunologic activity of gp96 still remains uncharacterized. We examined the cancer-specific glycosylation patterns of gp96. To this end, monosaccharide compositions of gp96 were compared between normal rat prostate and two cancerous rat prostate tissues, nonmetastatic/androgen-dependent Dunning G and metastatic/androgen-independent MAT-LyLu, as well as two human nonmetastatic prostate cancer cell lines, androgen-dependent LnCaP and androgen-independent DU145. Marked differences were observed between the gp96 monosaccharide compositions of the normal and cancerous tissues. Furthermore, gp96 molecules from more aggressive cellular transformations were found to carry decreasing quantities of several monosaccharides as well as sum total content of neutral and amino sugars. We believe that the unique glycosylation patterns contribute to cellular phenotype and that the posttranslational modifications of gp96 may affect its functional attributes.

Animals↗

New method for determining the sugar composition of glycoproteins, glycolipids, and oligosaccharides by high-performance liquid chromatography.

A new method is reported that can be performed within a single vessel to analyze the composition of aldose, hexosamine, and sialic acid residues of glycoproteins, glycolipids, and oligosaccharides. Glycoconjugates are treated with sialidase or subjected to mild acid hydrolysis, before being treated with N-acetylneuraminic acid aldolase to convert the free sialic acid residues to their corresponding N-acylmannosamines. The reaction mixture is then successively subjected to acid hydrolysis (in order to produce monosaccharides), N-acetylation, and conversion with p-aminobenzoic acid ethyl ester (ABEE). The ABEE-converted monosaccharides are simultaneously determined by reverse-phase high-performance liquid chromatography. Determination of the sugar compositions of bovine fetuin, II3NeuGc alpha-LacCer, and 3'-sialyllactose with this method was found to be highly accurate. Linearity of the peak area vs. the amount of bovine fetuin ranged from 1 to 50 micrograms in all ABEE-converted monosaccharides. With a slight modification to this method, sialic acid residues can be separately determined as NeuAc and NeuGc. This novel method and its modified version are used to demonstrate the sugar compositions of alpha 1-acid glycoproteins from several sources.

Acetylation↗

Primary structure and configuration of tea polysaccharide.

The monosaccharide composition of a tea polysaccharide (TGC) was determined by GC-MS method. Furthermore, the primary structure of tea polysaccharide and its configuration in the aqueous solution were investigated utilizing a combination of classical chemical methods and modern instrumental techniques including GC-MS, Proton NMR, UV and CD. The results indicate that TGC consists of 6 monosaccharides: Rha, Ara, Xyl, Glu, Man and Gal. The configuration of TGC in water solution is proposed to be an ordered helix. The possible primary structure of TGC was outlined as below: the basic structure of the main chain consists of Rha, Glu and Gal units. All three monosaccharides can potentially be connected to branch chains consisting of mainly Ara, and the linkages could be in beta1 --> 2, beta1 --> 3, beta2 --> 3 forms. When branch chain is absent in the basic structure of the main chain the linkage consists of only beta1 --> 3; Xyl exists at the terminal end of either the main chain or the branch chain with beta1 --> linkage.

Biochemistry↗

Isolation of lactose permease mutants which recognize arabinose.

In the present study lactose permease mutants were isolated which recognize the monosaccharide, L-arabinose. Although the wild-type permease exhibits a poor recognition for L-arabinose, seven independent mutants were identified by their ability to grow on L-arabinose minimal plates. When subjected to DNA sequencing, it was found that all seven of these mutants were single-site mutations in which alanine 177 was changed to valine. The wild type and valine 177 mutant were then analyzed with regard to their abilities to recognize and transport monosaccharides and disaccharides. Free L-arabinose was shown to competitively inhibit [14C]-lactose transport yielding a Ki value of 121 mM for the Val177 mutant and a much higher value of 320 mM for the wild-type. Among several monosaccharides, D-glucose as well as L-arabinose inhibited lactose transport in the Val177 mutant to a significantly greater extent, while D-arabinose and D-xylose only caused a slight inhibition. On the other hand, kinetic studies with sugars which are normally recognized by the wild-type permease such as [14C]-galactose and [14C]-lactose revealed that the Val177 mutant and wild-type strains had similar transport characteristics for these two sugars. Overall, these results are consistent with the notion that the Val177 substitution causes an enhanced recognition for particular sugars (i.e. L-arabinose) but does not universally affect the recognition and unidirectional transport for all sugars. This idea is further supported by the observation that site-directed mutants containing isoleucine, leucine, phenylalanine, or proline at position 177 also were found to possess an enhanced recognition for L-arabinose.

Arabinose↗

Analysis of anomeric configurations in glyceroglycolipids and glycosphingolipids by chromium trioxide oxidation.

Acetylation and CrO(3) oxidation in acetic acid (Angyal and James, Aust. J. Chem. 23: 1209-1221, 1970) was applied to 18 different glyceroglycolipids and glycosphingolipids of known structure. The lipids studied contained from one to five pyranosic monosaccharide units including alpha- and beta-linked glucose, galactose, mannose, and N-acetylgalactosamine and beta-linked N-acetylglucosamine. Monosaccharides bound to the lipids through beta-glycosidic linkages reacted to the extent of 80-97 percent, but in the case of alpha-glycosidic linkages the oxidation proceeded only to the extent of 0-6 percent. A partial reaction was observed in lipids in which a given monosaccharide unit was present in both anomeric forms. Therefore, oxidation with CrO(3) allows the determination of anomeric configurations in simple glycolipids. Samples of only 100-300 mug are required.

Bacteria↗

Molecular genetics of nucleotide sugar interconversion pathways in plants.

Nucleotide sugar interconversion pathways represent a series of enzymatic reactions by which plants synthesize activated monosaccharides for the incorporation into cell wall material. Although biochemical aspects of these metabolic pathways are reasonably well understood, the identification and characterization of genes encoding nucleotide sugar interconversion enzymes is still in its infancy. Arabidopsis mutants defective in the activation and interconversion of specific monosaccharides have recently become available, and several genes in these pathways have been cloned and characterized. The sequence determination of the entire Arabidopsis genome offers a unique opportunity to identify candidate genes encoding nucleotide sugar interconversion enzymes via sequence comparisons to bacterial homologues. An evaluation of the Arabidopsis databases suggests that the majority of these enzymes are encoded by small gene families, and that most of these coding regions are transcribed. Although most of the putative proteins are predicted to be soluble, others contain N-terminal extensions encompassing a transmembrane domain. This suggests that some nucleotide sugar interconversion enzymes are targeted to an endomembrane system, such as the Golgi apparatus, where they may co-localize with glycosyltransferases in cell wall synthesis. The functions of the predicted coding regions can most likely be established via reverse genetic approaches and the expression of proteins in heterologous systems. The genetic characterization of nucleotide sugar interconversion enzymes has the potential to understand the regulation of these complex metabolic pathways and to permit the modification of cell wall material by changing the availability of monosaccharide precursors.

Amino Acid Sequence↗

[Comparative study of Glycyrrhiza glabra L. and Glycyrrhiza echinata L. of different origin. Medicinal plant polysaccharides III].

Comparative study was carried out among the polysaccharides of Chinese, Lithuanian and Hungarian origin Glycyrrhiza glabra L. as well as the Hungarian origin Glycyrrhiza echinata L. Monosaccharide composition, measured as alditol acetates, of Chinese and Hungarian G. glabra was very similar, but the Lithuanian G. glabra and the G. echinata were quite different. The monosaccharides of polysaccharides isolated from root and stem of G. echinata show significant differences (Table II.). All investigated samples contain glucuronic acid, the G. echinata contains also galacturonic acid (Table II.). Some fractions with higher uronic acid content and the acidic polysaccharides isolated from these fractions were studied and their monosaccharide composition was determined (Table III. and IV.).

China↗

The effect of saccharides on the post-thaw recovery of cane toad (Bufo marinus) spermatozoa.

The effect of monosaccharides (glucose, fructose) and disaccharides (maltose, sucrose, trehalose) as diluents, in cryoprotective additives containing 15% (v/v) DMSO or glycerol as cryoprotectants, were investigated on the recovery of sperm motility after cryopreservation of cane toad (Bufo marinus) spermatoazoa at low (approximately 5 degrees C/min(-1)) and high cooling rates (approximately 35 degrees C/min(-1)). The results show that: 1. recovery of percentage motility was higher with slow cooling than with high cooling rates (37.0 +/- 2.5%, 15.3 +/- 1.6%, P<0.001, respectively), 2. disaccharides were more effective than monosaccharides in protecting spermatozoa with slow cooling (43.9 +/- 1.2%, 26.8 +/- 2.5%, P<0.02, respectively), 3. glycerol was more effective than DMSO with fast cooling (18.3 +/- 2.2%, 12.6 +/- 2.3%, P<0.02, respectively), 4. trehalose with glycerol was the most effective cryoprotective additive with fast cooling (31.0 +/- 3.2%, P<0.05), and 5. overall the recovery of degree (vigour) of motility (range, 1.9 - 3.2) was more resilient to cryopreservation than recovery of percentage motility (range, 8.9 - 51.5 %). Comparison of post-thaw percentage and vigour of sperm motility up to 24 minutes after activation showed disaccharides supported greater duration sperm motility than monosaccharides This result and the recovery of spermatozoa immediately after freeze-thaw, show the main effect of saccharides are as cryoprotectants and not as exogenous energy substrates.

Animals↗

Plasma insulin, carbohydrate, and free fatty acid changes in newly born infants of diabetic and non-diabetic mothers after loading with glucose, fructose, and galactose.

Changes in the concentration of blood glucose, fructose and galactose and their disappearance rate, concentration of plasma insulin, free fatty acids, blood lactate and pyruvate after intravenous glucose, fructose and galactose loads (1 g/kg) were studied in 23 infants of insulin treated diabetic mothers (IDM). The control group consisted of 42 infants of healthy mothers (IHM). The disappearance rate of these monosaccharides was higher in IDM that in IHM (P less than 0.01). All monosaccharides enhanced plasma insulin levels, but the plasma insulin concentration varied considerably. The highest insulin response with difference between IDM and IHM occurred after loading with glucose. Fructose was the least effective insulin stimulator which did not increase glucose levels. All monosaccharides decreased free fatty acid levels. Lactate levels and lactate:pyruvate ratio in IHM were increased after fructose loading. The results of this study suggest that galactose is of some physiological importance for maintaining glucose levels and that the islet apparatus of newborns of diabetic mothers is less loaded with galactose than with glucose.

Blood Glucose↗

The binding of fucose-containing glycoproteins by hepatic lectins. The binding specificity of the rat liver fucose lectin.

The parameters that affect the interaction of ligands with a fucose-binding lectin from rat liver have been examined. 125I-Fucosyl-bovine serum albumin (Fuc-BSA) containing 50 residues of fucose/molecule was used as the standard ligand. At low initial concentrations of ligand (10 ng/ml) and lectin (140 ng/ml), the reaction reaches equilibrium at pH 7.8, 23 degrees C, within 40 min. The binding of ligands is Ca2+ dependent with half-maximal binding occurring at 54 microM Ca2+; of several metal ions tested, only Sr2+ partially replaced Ca2+. Binding was maximal between pH 7.6 and 8.6, fell slightly up to pH 10, but fell markedly below pH 7. The lectin-ligand complexes dissociated at low pH, on removal of Ca2+, or in the presence of a large excess of competing ligand. The apparent association constant (Ka) for Fuc-BSA was 1.75 X 10(8) M-1. The fucose content of the Fuc-BSA also influenced binding, with little apparent binding below 24 fucose residues/molecule and maximal binding from 40 to 50 fucose residues/molecule. With knowledge of the parameters influencing binding, sensitive reproducible assays for the lectin were developed. The binding specificity of the lectin was examined by measuring the inhibition of 125I-Fuc-BSA binding by neoglycoproteins, monosaccharides, and glycosides or by direct binding of neoglycoproteins. Galactosides and beta-linked fucosides were the best ligands among the neoglycoproteins, with much weaker binding by mannosyl- or N-acetylglucosaminyl-BSA. On the basis of the pattern of inhibition of Fuc-BSA binding by various monosaccharides and glycosides, it is possible to propose the conformations of saccharides that best fit the lectin-binding site. The C1 conformation of N-acetyl-D-galactosamine fits best, although other not obviously related monosaccharides such as L-fucose, L-arabinose, and D-mannose can also assume conformations that permit them to be effective inhibitors. The pattern of binding of neoglycoproteins to the lectin differs from that of other pure hepatic lectins. Thus, the fucose lectin has a high affinity for Fuc-BSA and galactosyl-BSA but a low affinity for N-acetylglucosaminyl-BSA. The galactose lectin binds only galactosyl-BSA and shows little binding with either N-acetylglucosaminyl-BSA or Fuc-BSA. In contrast, the mannose/N-acetylglucosamine lectin binds N-acetylglucosaminyl-BSA and Fuc-BSA but not galactosyl-BSA.

Acetylglucosamine↗

[The use of theoretical conformation analysis in the study of the mechanism of interaction of carbohydrate components of cardiac glycosides with receptor].

The conformational possibilities for sugar components of cardiac monoglycosides have been analyzed. A comparison of spatial disposition of oxygen atoms in the energetically allowed conformations of these residues permitted unambiguous determination of 1) monosaccharide bioactive conformations; 2) their functional groups involved in the receptor binding; 3) coordinates of the region wherein the oxygen atom should be accomodated in order to be bound to the receptor. It was shown that the conformational lability and the presence of several oxygen-containing groups in the first monosaccharide residue underlie the possibility for coexistance of several productive conformations. The rules for qualitative predictions of the carbohydrate contribution into biological activity of cardiac glycosides were formulated. A number of monosaccharide residues were distinguished that should have either favorable or unfavorable effects on the biological activity of cardenolides.

Cardiac Glycosides↗

Experimental chiroptical verification of linkage flexibility in methyl 3-O-(alpha-d-mannopyranosyl)-alpha-d-mannopyranoside.

Vacuum UV CD spectra of methyl 3-O-(alpha-D-mannopyranosyl)-alpha-D- mannopyranoside in D2O and as a cast film were obtained in the 145-200 nM region. The disaccharide solution CD per residue is nearly identical to that of the monosaccharide solution CD, and to the monosaccharide film CD. Conversely, the disaccharide film spectrum exhibits a strong positive CD linkage contribution in the 160-170 nm range, which is consistent with the known crystal conformation under the aegis of previously determined sector rules. The close similarity between the monosaccharide and disaccharide solution spectra, therefore, reflects conformational averaging in which the net linkage contribution is approximately zero. The present observation of significant solution linkage flexibility confirms previous conclusions based on optical rotation, as well as conclusions of others based on nmr data. Moreover, when combined with those earlier results, the present work demonstrates the population of at least three distinct potential energy wells on the disaccharide phi,psi potential energy surface.

Carbohydrate Conformation↗