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Purification and properties of a beta-mannosidase from Aspergillus niger.

A beta-mannosidase (beta-D-mannoside mannohydrolase, EC 3.2.1.25) was purified to apparent homogeneity from the culture filtrate of the fungus, Aspergillus niger. The enzyme had an estimated molecular weight of about 120,000 and was a glycoprotein. Radioactive enzyme was prepared by growing the fungus in [14C]fructose, and this enzyme was used for the preparation of 14C-glycopeptides. The glycopeptides were purified on Sephadex G-25 and G-50 and were then hydrolyzed for sugar analysis. Two radioactive sugars were found in the glycopeptides and these were identified as mannose and glucosamine in a ratio of 2.5 or 3:1. Based on susceptibility of the enzyme to alkaline treatment and the formation of [3H]glucosaminitol in the presence of NaB3H4, the oligosaccharide is apparently attached to the protein in a GlcNAc-asparagine linkage. The beta-mannosidase had good activity on p-nitrophenyl-beta-D-mannoside but was inactive on p-nitrophenyl-alpha-D-mannoside as well as on other p-nitrophenyl glycosides. It also showed good activity on the beta(1 leads to 4)-linked trisaccharide of mannose and somewhat lower activity of the corresponding disaccharide. With each of these substrates the Km was about 1 mM, whereas with the p-nitrophenyl-beta-D-mannoside the Km was about 2 mM. The beta-mannosidase also released [14C]mannose from the Man-GlcNAc-GlcNAc trisaccharide isolated from the lipid-linked oligosaccharides of aorta and released mannose from the disaccharides, Man-(beta1 leads to 4)GlcNAc and Man-(beta1 leads to 4)ManNAc. The pH optimum for the enzyme was about 3.5 to 4.0 in glycine or acetate buffer.

Aspergillus↗

Genetic expression of beta-mannosidase activity in different tissues of mice.

Beta-Mannosidase activity of liver, kidney, and spleen of two inbred strains of mice and their crosses has been assayed with the synthetic aubstrate p-nitrophenyl-beta-d-mannoside. Activity is low in C57BL/Kl mice and high in DBA/2/Kl mice. Hybrid animals have intermediate levels of beta-mannosidase activity. Segregation of enzyme activities occurs in the F-2 and backcross generations, and there are good correlations between acitities in the three tissuses of F-2 and backcross animals. Some evidence points to a single gene difference in crosses between C57BL and DBA with respect to this mannosidase variation. Curves for enzyme activities at different substrate concentrations and pHs obtained with preparations from DBA and C57BL mice show some differences. These are interpreted as a possible strain variation in a structural gene for this enzyme.

Animals↗

Glycosidases in human skin fibroblast cultures. Alpha-fucosidase, alpha-galactosidase, alpha-glucosidase, beta-mannosidase, and N-acetyl-alpha-glucosaminidase.

Five glycosidases, alpha-fucosidase, alpha-galactosidase, alpha-glucosidase, beta-mannosidase and N-acetyl-alpha-glucosaminidase were studied in human skin fibroblast cultures. The pH-dependency, kinetic properties of the enzymes and results of isoelectric focusing and ion exchange chromatography are presented. Techniques suitable for diagnosing inborn lysosomal diseases in skin fibroblast cultures are defined.

Adolescent↗

beta-Mannosidase from the mushroom Polyporus sulfureus.

beta-D-Mannosidase (EC 3.2.1.25), a useful tool for the structural studies of heterosaccharide chains, has been isolated in a highly purified form from the fruiting bodies of the mushroom Polyporus sulfureus. This mushroom is unique among reported sources of this enzyme in that it has the advantage of being almost free of alpha-mannosidase activity. The purification procedure involves ammonium sulfate fractionation followed by Sephadex G-100 filtration and chromatography on columns of DEAE-cellulose and hydroxylapatite. The final enzyme preparation gives essentially a single band on disc gel electrophoresis. The purified enzyme liberates the beta-D-mannopyranosyl unit from various natural substrates such as the core glycopeptide, Man(GlcNAc)2-Asn isolated from ovalbumin, from Taka-amylase A, and from human alpha1-acid glycoprotein. It also hydrolyzes (Man)2-GlcNAc from the urine of an alpha-mannosidosis patient, 1,4-D-mannobiose and mannotriose isolated from ivory nut mannan, 4-O-beta-D-mannopyranosyl-L-rhamnose, 6-O-beta-D-mannopyranosyl-D-galactose and 4-O-beta-D-mannopyranosyl-N-acetylglucosamine. The molecular weight of this enzyme is estimated to be about 64,000 by gel filtration. For p-nitrophenyl-beta-D-mannopyranoside, the pH optimum is between 2.4 and 3.4 and the Km is 1.6 mM.

Basidiomycota↗

Glycosidases of the retinal pigment epithelium.

The pH optima and apparent Km and Vmax values were determined for nine glycosidases of the retinal pigment epithelium (RPE) of the calf. In terms of micromoles of substrate cleaved per milligram protein per hour, the following relative order of enzymatic activities was observed: beta-N-acetylglucosaminidase greater than alpha-glucosidase = beta-N-acetylgalactosaminidase greater than alpha-mannosidase greater than beta-galactosidase greater than beta-glucosidase greater than alpha-fucosidase greater than alpha-galactosidase greater than beta-glucuronidase. The pH optimum of each of these enzymes was in the acidic range (below pH 6). All these findings refer to enzymatic activities of bovine RPE preparations obtained by the brushing procedure of Glocklin and Potts and washing as described by Berman and Feeney. Thus they may relate to those activities associated with particulate components of the RPE cell and not to the more soluble glycosidases. The distribution of the glycosidases between the washes of the cells and the final pellet of bovine RPE cells was examined. The activities of 10 glycosidases in the RPE of the embryonic chick were also examined. Neither beta-mannosidase nor beta-fucosidase activities could be detected in washed bovine RPE cells, although beta-mannosidase was detected in RPE of the embryonic chick. The presence of isoenzymes of beta-glucuronidase in bovine RPE was indicated. Specificity by beta-glucuronidase of bovine RPE for synthetic substrates was observed.

Acetylgalactosamine↗

Caprine beta-mannosidosis: regional differences in deficits of CNS myelin proteins.

Caprine beta-mannosidosis is an autosomal recessive disorder characterized by marked deficiency of beta-mannosidase activity, accumulation of oligosaccharides, and pathologic changes involving prominent dysmyelination. The myelin deficits show marked regional variation, with spinal cord mildly affected and many brain regions severely affected by morphologic criteria. In this study, levels of myelin basic protein (MBP) and proteolipid protein (PLP) were measured by immunoblotting in samples prepared from spinal cord, brainstem and cerebral hemispheres of normal and affected goats at 2-4 days (newborns) and 2-4 weeks of age. In affected goats, total levels of MBP in spinal cord were normal, while PLP levels were 60-70% of normal at both ages. In contrast, PLP and MBP in brainstem and cerebral hemispheres were severely decreased at both ages, with levels of PLP 10-13% and MBP 25-29% of normal in newborns, and generally more reduced at 2-4 weeks. When myelin fractions were isolated on 0.32/0.85 M sucrose gradients, yields were about 38 and 25% of normal in spinal cord at the two ages, but less then 3% of normal in brainstem. Yields of myelin-like fraction were decreased as well, but to lesser extents than yields of myelin. Myelin from spinal cord had a normal composition with regard to PLP and MBP content, while the myelin fraction from brainstem was markedly deficient in both proteins. This suggests formation of myelin with a very abnormal composition in brainstem, or inclusion of large amounts of membranes other than myelin in this fraction. The more severe deficits in brainstem and cerebral hemispheres compared to spinal cord are consistent with morphologic observations.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Studies on xylanase from Basidiomycetes. Selection of strains for the production of xylanase.

Formation of extracellular xylanase was studied in 10 strains of wood-destroying fungi belonging to Basidiomycetes during their submerged cultivation with willow sawdust. The highest enzyme activity was found in the fungus Trametes hirsuta (Wulf.) Pilát. The effect of sources of carbon and nitrogen, cultivation time and initial pH of the cultivation solution on the formation of xylanase by the fungus Trametes hirsuta was investigated. The highest production of the enzyme was reached during cultivation in the presence of willow sawdust, asparagine and at the initial pH of 5.0. The presence of xylanase, cellulase, mannanase and amylase as well as of beta-xylosidase, beta-glucosidase, beta-mannosidase and beta-galactosidase was demonstrated in the enzyme preparation obtained after a 10-day submerged cultivation of Trametes hirsuta under optimal conditions.

Ammonium Sulfate↗

Purification and properties of beta-mannanases I and II from the germinated seeds of Trifolium repens. Mode of galactomannan degradation in vitro.

Two beta-mannanases (beta-mannosidases, EC 3.2.1.25) purified from the germinated seeds of Trifolium repens by a procedure that included chromatography on hydroxyapatite, gel filtration on acrylamide/agarose (Ultragel 5/4) and preparative polyacrylamide-gel-electrophoresis. The final purification step completely resolved two beta-mannanases with distinct specificities, which were termed beta-mannanase I and beta-mannanase II. beta-Mannanase I was purified 1400-fold and beta-mannanase II 1000-fold. The purified enzymes showed a single protein band when examined by polyacrylamide-gel disc electrophoresis. beta-Mannanase I, apparent mol.wt. 43 000, accounted for 49% of the total activity recovered from the final step of purification. beta-Mannanase II, apparent mol.wt. 38 000, accounted for the remaining 51% of activity. Molecular-weight determinations were by sodium dodecyl sulphate/polyacrylamide-gel electrophoresis and by the electrophoretic method of Hendrick & Smith [(1968) Arch. Biochem. Biophys. 126, 155-164]. The substrate specificities of both enzymes were examined with the galactomannans of T. repens and of Medicago sativa, as well as with manno-oligosaccharides. The pH optimum was between pH 5.1 and 5.6 for both enzymes.

Enzyme Activation↗

Characterization of beta-galactosidase from a special strain of Aspergillus oryzae.

beta-Galactosidase [EC 3.2.1.23] was isolated from a partially purified preparation obtained from cultured cells of a special strain of Aspergillus oryzae, RT 102 (FERM-P1680). The enzyme preparation gave a single protein band on polyacrylamide gel electrophoresis and was free from alpha-galactosidase, alpha- and beta-mannosidase, alpha- and beta-N-acetylhexosaminidase, and protease activities. The beta-galactosidase was capable of acting on aryl beta-galactosides, lactose, and lactosides. It also hydrolyzed beta-galactosyl linkages in urinary glycoasparagines and asialo alpha1-acid glycoprotein. The enzyme was rather stable in aqueous solution, retaining full activity at 4 degrees for at least several months. At pH 4.5, the optimum pH for the enzyme activity, and 37 degrees, full activity was maintained for several days.

Asparagine↗

Purification and properties of alpha-mannosidase from bakers' yeast.

The yeast alpha-mannosidase [EC 3.2.1.24] was purified 1160-fold from the crude extract of the autolysate. The purified preparation was practically free from alpha-glucosidase, beta-glucosidase, alpha-galactosidase, beta-galactosidase, beta-mannosidase, and beta-N-acetylhexosaminidase activities. After the separation of yeast mannan during the purification procedures the enzyme became unstable but could be stored at 5 degrees C for three weeks with 50% loss of activity. The purified enzyme hydrolyzed both aryl and alkyl mannosides, but hydrolysis of yeast mannan proceeded slowly. Yeast mannan and Zn2+ increased the enzyme catalyzed hydrolysis of p-nitrophenyl mannoside, whereas NaN3, monoiodoacetate and methyl alpha-D-mannoside acted as inhibitors. The molecular weight was estimated to be 450,000 by gel filtration.

Glycoside Hydrolases↗

Sequence analysis of lactosamine type glycans of individual membrane proteins of Semliki Forest virus.

3H-fucose and 14C-glucosamine labelled glycopeptides of the individual membrane proteins E1, E2 and E3 of Semliki Forest virus could be sequentially digested with alpha-neuraminidase, beta-galactosidase, N-acetyl-beta-glucosaminidase, alpha- and beta-mannosidase, N-acetyl-beta-hexosaminidase and finally with alpha-fucosidase. The degradations of the virus glycopeptides proceeded in the same way as stepwise digestions of reference glycopeptides of the lactosamine type obtained from IgG and alpha 1-acid glycoprotein. This suggests that all three membrane glycoproteins of Semliki Forest virus contained glycans with a monosaccharide sequence characteristic for lactosamine type oligosaccharides. The number of both distal and proximal N-acetyl-glucosamine residues was estimated to be usually two. According to exo- and endo-glycosidase digestions, fucose seemed to be attached to the innermost N-acetyl-glucosamine unit.

Acetylglucosamine↗

Hydrolytic enzymes of Euglena gracilis: characterization and activity as a function of culture age and carbon deprivation.

Optimal assay conditions are described for 8 hydrolases of Euglena gracilis var. bacillaris, SM-L1 (streptomycin-bleached) strain, 7 of which have an acid pH-optimum. Acid-phosphatase, beta-galactosidase, beta-glucosidase, b-fucosidase, cathepsin D, RNase, DNase, and an esterase are active in cell homogenates. Amylase has very low activity, and beta-glucuronidase, arylsulfatase, beta, N-acetyl-glucosaminidase, alpha-fucosidase, and alpha- and beta-mannosidase are inactive.

Acetates↗

Mannosyl transfer by membranes of Aspergillus niger: mannosylation of endogenous acceptors and partial analysis of the products.

A smooth membrane fraction of Aspergillus niger catalyzed the transfer of mannose from GDP-mannose to endogenous lipid and protein acceptors. The mannolipid was acidic, as judged by diethylaminoethyl-cellulose chromatography, and had a mobility similar to ficaprenyl phosphate on thin-layer chromatograms. Mannose transfer occurred optimally at pH 6.5 to 7.5 and required Mn(2+) for use of the protein as acceptor, but either Mn(2+) or Mg(2+) with the lipid as acceptor. Glycopeptides of the mannosylated protein ([(14)C]gly) and of an alpha-glucosidase (alpha-glu) secreted by the organism were produced by Pronase digestion and separation of the products on Sephadex G-25. Because ovalbumin has a carbohydrate composition similar to that of alpha-glu and because the carbohydrate structure of ovalbumin is known, ovalbumin glycopeptides (Ov) were similarly obtained and used as standards in determining carbohydrate structures. Oligosaccharide chains of [(14)C]gly, alpha-glu, and Ov were obtained by treatment of the respective glycopeptides with endo-beta-N-acetylglucosaminidase, reduction with NaBT(4), and concanavalin A-Sepharose chromatography. The (3)H-labeled oligosaccharides obtained were subjected to the following treatments: (i) digestion with alpha- and beta-mannosidases, (ii) Smith degradation, and (iii) acetolysis. Subsequently, changes in paper chromatographic mobilities were detected. Also, alpha-glu was permethylated, and the partially methylated alditol acetates were analyzed by gas-liquid chromatography. The resultant proposed structure shows that the oligosaccharide chain of alpha-glu is almost identical to that of an Ov chain, while [(14)C]gly has a structure which is probably the same as that of alpha-glu. It is suggested that the transferase(s) involved in [(14)C]gly synthesis in vitro may be responsible for glycosylation of secreted enzymes.

Aspergillus niger↗

A lipid-linked oligosaccharide intermediate in glycoprotein synthesis in oviduct. Structural studies on the oligosaccharide chain.

The structure of the oligosaccharide chain of the lipid-linked oligosaccharide that serves as a donor of oligosaccharide chain to proteins of hen oviduct membranes has been investigated. A [Man-14C]glycopeptide fraction was prepared from membrane glycoproteins labeled with GDP-[14C]mannose. Reductive alkaline cleavage of this glycopeptide yielded a reduced oligosaccharide that, by four criteria, was identical with reduced [Man-14C]oligosaccharide prepared from [Man-14C]oligosaccharide-lipid. The structure of the oligosaccharide chain of the [Man-14C]glycopeptide was investigated by cleavage with a specific endo-beta-N-acetylglucosaminidase, followed by treatment of the released oligosaccharide with purified al alpha-and beta-mannosidases. By this procedure it was possible to establish the structure of the cleavage product as (alpha-Man)n-beta-Man-(1 leads to 4)-GlcNAc. Similar studies were performed on the [GlcNAc-14C]oligosaccharide prepared by hydrolysis of [GlcNAc-14C]oligosaccharide-lipid. The results indicate that the structure of the intact oligosaccharide is (alpha-Man)n-beta-Man-(1 leads 4)-beta-GlcNAc-(1 leads to 4)-GlcNAc. These experiments, coupled with earlier enzymatic studies on synthesis of the glycoproteins from the lipid-linked oligosaccharide, provide strong evidence that the structure of the oligosaccharide intermediate and the oligosaccharide chain of the glycoprotein product contain the same core structure found in many secretory glycoproteins.

Animals↗

Structure of the altered oligosaccharide present in glycoproteins from a clone of Chinese hamster ovary cells deficient in N-acetylglucosaminyltransferase activity.

Clone 15B cells, derived from Chinese hamster ovary cells and deficient in a specific UDP-N-acetylglucosamine:glycoprotein N-acetylglucosaminyltransferase activity, synthesize glycoproteins with altered oligosaccharide units. Glycopeptides prepared from these glycoproteins contain large quantities of a glycopeptide with the composition (Man)5(GlcNAc)2-Asn whereas parent cells have only small amounts of this glycopeptide. The structure of the glycopeptide was determined by the combination of methylation analysis, acetolysis, Smith periodate degradation, and alpha- and beta-mannosidase digestion. Its complete structure is Manalpha 1 leads to 6[Manalpha1 leads to 3]-Manalpha1 leads to 6[Manalpha 1 leads to 3]-Manbeta1 leads to 4 GlcNAcbeta1 leads to 4 GlcNAc leads to Asn-peptide. The structures of two other glycopeptides found in smaller quantities in clone 15B but not detected in the parent cells were determined and are Manalpha 1 leads to 6 [Manalpha 1 leads to 3]-Manalpha1 leads to 6Manbeta 1 leads to 4 GlcNAcbeta 1 leads to 4GlcNAc-Asn-peptide and Manalpha 1 leads to 3 Manalpha 1 leads to 6[Manalpha 1 leads to 3] Manbeta 1 leads to 4GlcNAcbeta 1 leads to 4GlcNAc-Asn-peptide. It is proposed that the (Man)5(GlcNAc)2-Asn unit is the physiologic acceptor for the particular N-acetylglucosaminyltransferase which is deficient in clone 15B cells and that this reaction is necessary for complex oligosacchari-e biosynthesis.

Clone Cells↗

Structural studies of the major high mannose oligosaccharide units from Chinese hamster ovary cell glycoproteins.

The major high mannose-type glycopeptides present in Chinese hamster ovary cells have the compositions (Man)9(GlcNAc)2-Asn, (Man)8(GlcNAc)2-Asn, and (Man)6(GlcNAc)2-Asn. The structures of these glycopeptides were determined by the combination of methylation analysis, acetolysis, Smith periodate degradation, and alpha- and beta-mannosidase digestion. Their complete structures are: manalpha1 leads to 2Manaalpha1 leads to 6(Manalpha1 leads to 2Manalpha1 leads to 3)Manalpha1 leads to 6(Manalpha1 leads to 2Manalpha1 leads to 2Manalpha1 leads to 3)Manbeta1 leads to 4GlcNAcbeta1 leads to 4GlcNAc-Asn, Manalpha1 leads to 2Manalpha1 leads to 6(Manalpha1 leads to 3)Manalpha1 leads to 6(Manalpha1 leads to 2Manalpha1 leads to 2Manalpha1 leads to 3)Manbeta1 leads to 4GlcNAcbeta1 leads to 4GlcNAc-Asn, and Manalpha1 leads to 6(Manalpha1 leads to 3)Manalpha1 leads to 6(Manalpha1 leads to 2Manalpha1 leads to 3)Manbeta1 leads to 4GlcNAcbeta1 leads to 4GlcNAc-Asn. These structures are compared with the structures of the peptide-bound oligosaccharide intermediates that are processed to form complex-type oligosaccharides. From these results, it is proposed that the high mannose-type oligosaccharides are a product of "incomplete" processing of the protein-bound oligosaccharide along the same pathway which leads ultimately to the formation of a complex-type oligosaccharide.

Animals↗

Characterization of mannose-labeled glycopeptides from human diploid cells and their growth-dependent alterations.

Mannose-labeled glycopeptides were prepared from human diploid fibroblasts harvested by brief pronase digestion. Combined use of endo-beta-N-acetylglucosaminidase H and D converted most of the mannose-label into arrays of oligosaccharides. They were separated by paper chromatography and were characterized by Sephadex G-25 column chromatography, by affinity column chromatography on concanavalin A-Sepharose, and by successive digestion with alpha-mannosidase and beta-mannosidase. The results indicated that mannose residues existed as clusters of various sizes, which we refer to as "oligomannosyl cores". The large oligomannosyl cores (approximately 7 to 8 mannosyl residues) were predominant in the glycopeptides from growing cells and were preferentially associated with neutral glycopeptides, similar to Unit A glycopeptides of thyroglobulin (mannose-N-acetylglucosamine unit). In glycopeptides from nongrowing cells, the ratio of the large oligomannosyl cores decreased, accompanying the increase of a small oligommanosyl core consisting of 3 mannosyl residues. The small core was preferentially associated with acidic glycopeptides.

Acetylglucosaminidase↗