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1.
Electron. j. biotechnol ; 7(2): 115-123, Aug. 2004. ilus, tab, graf
Article in English | LILACS | ID: lil-387552

ABSTRACT

The influence of N-glycosylation on the kinetic and catalytical properties of a bacterial fructosyltransferase (LsdA) produced in Pichia pastoris was studied. The glycosylated enzyme behaved similarly to non-glycosylated LsdA when substrate specificity, fructo-oligosaccharide (FOS) production, sucrose hydrolysis or levan formation reactions were carried out under different experimental conditions. The kinetic parameters for native or yeast-expressed LsdA determined at 60ºC, condition for the highest hydrolytic activity, followed a conventional Michaelis-Menten kinetics. Synthase activity of this levansucrase increased in water-restricted environments by addition of salt or organic solvent to the reaction mixtures.


Subject(s)
Fructose/metabolism , Gluconacetobacter/enzymology , Hexosyltransferases/metabolism , Oligosaccharides/metabolism , Pichia , Catalysis , Glycosylation , Hydrolysis , Kinetics , Substrate Specificity , Yeasts
2.
Braz. j. med. biol. res ; 32(4): 435-42, Apr. 1999. ilus, graf
Article in English | LILACS | ID: lil-231735

ABSTRACT

Sucrose:sucrose fructosyltransferase (SST) and fructan:fructan fructosyl-transferase (FFT) activities from crude extracts of tuberous roots of Viguiera discolor growing in a preserved area of cerrado were analyzed in 1995-1996. SST activity was characterized by the synthesis of 1-kestose from sucrose and FFT activity by the production of nystose from 1-kestose. The highest fructan-synthesizing activity was observed during early dormancy (autumn), when both (SST and FFT) activities were high. The increase in synthetic activity seemed to start during the fruiting phase in the summer, when SST activity was higher than in spring. During winter and at the beginning of sprouting, both activities declined. The in vitro synthesis of high molecular mass fructans from sucrose by enzymatic preparations from tuberous roots collected in summer showed that long incubations of up to 288 h produced consistently longer polymers which resembled those found in vivo with respect to chromatographic profiles.


Subject(s)
Asteraceae/metabolism , Fructans/chemical synthesis , Hexosyltransferases/metabolism , Fructans/analysis , Sucrose
3.
Indian J Biochem Biophys ; 1990 Dec; 27(6): 386-95
Article in English | IMSEAR | ID: sea-26820

ABSTRACT

Six different glycosyltransferases that are active with glycosphingolipid substrates have been purified from Golgi-membranes after solubilization with detergents. It appears that GalT-4(UDP-Gal:GlcNAc-R1 beta 1-4GalT), GalNAcT-2(UDP-Gal:Gal alpha-R2 beta 1-3GalNAcT) and FucT-2(GDP-Fuc:Gal beta GlcNAc-R3 alpha 1-2FucT) are specific for oligosaccharides bound to ceramide or to a protein moiety. These are called CARS (carbohydrate recognition sites) glycosyltransferases (GLTs). On the other hand, GalT-3(UDP-Gal:GM2 beta 1-3GalT), GalNAcT-1(UDP-GalNAc:GM3 beta 1-4GalNAcT) and FucT-3 (GDP-Fuc:LM1 alpha 1-3FucT) recognize both hydrophobic moieties (fatty acid of ceramide) as well as the oligosaccharide chains of the substrates. These GLTs are called HY-CARS (hydrophobic and carbohydrate recognition sites). D-Erythro-sphingosine (100-500 microM) modulates the in vitro activities of these GLTs. Modulation depends on the binding of D-sphingosine to a protein backbone, perhaps on more than one site and beyond transmembrane hydrophobic domains. Control of GLTs by free D-sphingosine was suggested with the concomitant discovery of ceramide glycanase in rabbit mammary tissues. The role of free sphingosine as an in vivo homotropic modulator of glycosyltransferases is becoming apparent.


Subject(s)
Animals , Binding Sites , Carbohydrate Metabolism , Carbohydrate Sequence , Carbohydrates/chemistry , Cattle , Ceramides/chemistry , Detergents , Fatty Acids/chemistry , Galactosyltransferases/metabolism , Golgi Apparatus/enzymology , Guinea Pigs , Hexosyltransferases/metabolism , Humans , Kinetics , Mice , Molecular Sequence Data , Rabbits , Solubility , Sphingosine/chemistry
4.
Indian J Biochem Biophys ; 1988 Feb-Apr; 25(1-2): 106-11
Article in English | IMSEAR | ID: sea-27183
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