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[Purification and properties of two beta-glycosidases from Cicer arietinum L. with preferential specificity for biochanin A 7-beta-apiosylglucoside (author's transl)].

Four different beta-glycosidases have been separated from leaves of chick pea plants, Cicer arietinum L., by DEAE-cellulose chromatography. One is specific for isoflavone 7-beta-glucosides and has been described elsewhere. Two others showed very similar protein properties and identical catalytic activities. They have been further purified and both appeared as single, homogeneous protein bands after alkaline disc electrophoresis as well as isoelectric focusing. Isoelectric points are at pH 4.35 and 4,45, respectively. Both beta-glycosidases have molecular weights of 120000-140000 and have two subunits with identical molecular weights of 65 000. Both beta-glycosidases preferentially catalyze hydrolysis of diglycosides like biochanin A 7-beta-apiosyl(1 leads to 2)glucoside (Km=1.5 X 10(-4) M; V=10 mumol X min-1 X mg-1). The apiosylglucoside unit is liberated as an intact disaccharide. beta-Glucosides like biochanin A 7-beta-glucoside or 2-nitrophenyl glucoside are also efficiently hydrolyzed. These beta-glycosidases also possess transferase activity, but only when measured with isoflavone aglycones as acceptors. Transfer of the intact apiosylglucoside unit of biochanin A 7-beta-apiosylglucoside could be demonstrated. The enzymes have a pH optimum of 5.5. The beta-glycosidates are strongly inhibited by p-hydroxymercuribenzoate and Bromocondurite. Glucono-1,5-lactone, Ag and Hg2 showed only weak inhibition and Condurit B epoxide had no effect at all. A fourth beta-glycosidase activity from chick pea leaves shows no preferential activity for isoflavone 7-glycosides.

Electrophoresis, Disc↗

[Phylogenetic analysis of alpha-galactosidases of the GH27 family].

Amino acid sequence analysis of alpha-galactosidases and other proteins of glycoside hydrolase family 27 (GH27) allowed isolation of three major subfamilies, 27a-27c. Unique isomalto-dextranase of Arthrobacter globiformis clustered separately. Eukaryotic proteins formed five clusters on a phylogenetic tree of the family. Bacterial GH27 proteins, which are relatively few, did not form stable clusters. A monophyletic origin of the GH27 family was demonstrated with the use of related proteins of the GH36 family. The structure of the active center and evolution of alpha-galactosidases are discussed.

Amino Acid Sequence↗

[Application of glycosyl fluorides in the study on glycosidases].

Glycosyl fluorides are becoming increasingly important molecules for the study on glycosidases. Firstly, glycosyl fluorides act as substrates for glycosidases hydrolysis. Scecondly, the installation of fluorine elsewhere on the carbohydrate ring modifies the properties of the glycosyl fluoride so that the resultant compounds act as mechanism-based inhibitors to label enzymes in the active site, allowing identification of the catalytic nucleophile. Furthermore, glycosyl fluorides also act as donors for transglycosylation by retaining glycolides. Finally, glycosyl fluorides of the wrong anomeric configuration could be used by retaining glycosidase mutants such as glycosynthases and thioglycosynthases to synthesize carbohydrate with high yields(normally 60% to approximately 90%). Fundamental and applied research in biology, glycobiology and nanobiotechnology would benefit from the possibility of synthesizing tailor-made oligo-/poly-saccharides.

Animals↗

[Conditions for splitting protodioscine--the main glycoside from Tribulus terrestris L. by the enzymatic preparation from Aspergillus niger BKMt-33].

The conditions for splitting protodioscine--the main steroid saponine isolated from Tribulus terrestris L. by the enzymic preparation of Aspergillus niger str. BKMt-33 were investigated. The optimal conditions were found to be as follows: pH 4-5, temperature 30-37 degrees (the substrate concentration--5 mg%, concentration of the enzymic preparation--1%). Under these conditions the enzymolysis continued 24 hours. Mg+2 and K+ ions accelerated the reaction twice. As a result of the enzymic hydrolysis dioscine and trilline were obtained. This indicates beta-glucosidase and alpha-rhamnosidase activities of the enzymic complex isolated from Aspergillus niger str. BKMt-33.

Aspergillus↗

4-Trifluoromethylumbelliferyl glycosides as new substrates for revealing diseases connected with hereditary deficiency of lysosome glycosidases.

The following glycosides of 4-trifluoromethylumbelliferone: alpha-D-mannopyranoside, alpha-L-fucopyranoside, alpha-D-glucopyranoside, beta-D-glucopyranoside, alpha-D-galactopyranoside, beta-D-galactopyranoside, alpha-L-iduronide and beta-D-glucuronide were studied. 4-Trifluoromethylumbelliferyl glycosides were shown to be substrates for glycosidases. Some of them were cleaved even better than the corresponding methylumbelliferyl glycosides. 4-Trifluoromethylumbelliferyl glycosides were applied for revealing the corresponding enzyme deficiencies upon diagnosis of Gaucher and Hurler diseases as well as GM1 gangliosidosis and alpha-mannosidosis. 4-Trifluoromethylumbelliferone released after enzymatic hydrolysis of 4-trifluoromethylumbelliferyl glycosides exhibits more contrast yellow fluorescence in UV-light than the blue one of methylumbelliferone upon exposure of enzyme activity on solid supports. Therefore 4-trifluoromethylumbelliferyl glycosides are convenient substrates for revealing glycosidase activity directly in tissue samples, e.g. in placenta, and thus for fast prenatal diagnosis of lysosomal diseases.

Clinical Enzyme Tests↗

Indoxyl alfa-D-galactoside as the temporarily last substrate for glycosidase histochemistry. The present state of the art in histochemical glycosidase research using indoxyl glycosidas.

Initiated by the recently published histochemical method for the investigation of alfa-D-galactosidas with an indoxyl substrate, the current state of this group of synthetic compounds in light and electron microscopic histochemical glycosidase research is evaluated whereby historical, functional, methodological and applied aspects are considered. Beginning with the introduction of indoxyl acetate for non-specific esterase in 1951 and 1952 numerous other indoxyl substrates and mostly substituted in the 5- and 4-position of the indol ring by Br and Cl were developed to study histochemically non-specific phosphatases and glycosidases and frequently used in indigogenic, azoidoxyl, tetrazolium salts and metal salt techniques for catalytic (activity) histochemical and less often for immunohistochemical, affinity histochemical and hybridohistochemical purposes. The last substrate which became available and was validated for activity histochemistry was 5-Br-4-Cl-3-indoxyl alfa-1-galactoside for alfa-1-galactosidase. At present, the indoxyl glycosides are more widely used than 5-Br-4-Cl-3-indoxyl acetates and phosphates when compared with the alternative synthetic (artificial) naphthol, 6-Br-2-naphthol or ternative synthetic (artificial) naphthol, 6-Br-2-naphthol AS substrates, and among the indoxyl glycosides those for the oxoglycosidases lactase, maltase-glucoamylase, glucoamylase, acid beta-D-galactosidase, neuroaminidase and alfa-D-galactosidase are superior to other artificial compounds. When one considers in addition, electron microscopic catalytic glicosidase histochemistry (ultracytochemistry, 5-Br-4-Cl-3-indoxyl is the only suitable moiety for this purpose. These glycosidase can mostly be localized in plasma membranes or lysosomes and also measured there in tissue sections but are also found in secretion granules, endoplasmic reticulum and organ lumina.

Animals↗

2-Deoxy-2-fluoro-D-glycosyl fluorides. A new class of specific mechanism-based glycosidase inhibitors.

Mechanism-based glycosidase inhibitors are of considerable use in studies of enzyme mechanism, in studies of glycoprotein processing, and possibly therapeutically in control of sugar uptake. This paper describes a new general approach to mechanism-based inactivation of glycosidases which involves trapping a covalent glycosyl enzyme intermediate. This is achieved by use of 2-deoxy-2-fluoro-D-glycosyl fluorides, for which the rate of hydrolysis of the fluoroglycosyl enzyme intermediate is extremely slow, resulting in accumulation of the intermediate. Eleven different glycosidases were tested with their corresponding 2-deoxy-2-fluoro-D-glycosyl fluorides. Eight of the eleven were inactivated, four of them according to pseudo first-order kinetics and four according to a more complex kinetic scheme. The specificity of these inhibitors was investigated by assaying for inhibition of one enzyme with four different 2-deoxy-2-fluoro-D-glycosyl fluorides. Large differences in inactivation rate were observed which paralleled previously observed substrate specificities.

Alcaligenes↗

Biosynthesis of the major human red cell sialoglycoprotein, glycophorin A. O-Glycosylation.

The biosynthesis of the major human red cell sialoglycoprotein, glycophorin A, was studied in the erythroleukemia cell line K562 with emphasis on O-glycosylation. The cells were pulse-chase labeled with [35S] methionine, and either directly immune precipitated with anti-glycophorin A antiserum or detergent-solubilized extracts first passed through columns containing the N-acetylgalactosamine-specific lectin from Helix pomatia or the glucose/mannose specific lectin from lentil beans. From the sugar-eluted fractions anti-glycophorin A antiserum was used to identify precursor molecules. After 5 min of labeling the first glycophorin A precursors were seen. The largest had an apparent molecular weight of 37,000, and bound to lentil lectin-Sepharose, but not to H. pomatia lectin-Sepharose. The lentil lectin-reactive glycophorin A molecules increased to Mr = 39,000 during chase and obtained sialic acids after 9 min of chase reflecting terminal N- and O-glycosylation. After 5-6 min of labeling two H. pomatia-interacting glycophorin A precursors with apparent molecular weights of 24,000 and 30,000 were obtained. These did not bind to lentil lectin-Sepharose. During chase also these molecules increased in size to Mr = 39,000. The immune precipitation of all antiglycophorin A-reactive precursor molecules was inhibited by purified red cell glycophorin A. The carboxylic ionophore, monensin, caused the accumulation of incompletely O-glycosylated glycophorin A molecules, which bound to H. pomatia lectin-Sepharose. These were degraded by treatment with endo-beta-N-acetylglucosaminidase H reflecting incomplete processing of the N-glycosidic oligosaccharide.

Cell Line↗