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Regulation and extracellular glucosyltransferase production and the relationship between extracellular and cell-associated activities in Streptococcus mutans.

The regulation of extracellular glucosyltransferase production in Streptococcus mutans GS-5 has been studied using a chemically defined medium. Most of the glucosyltransferase activity produced by cells grown in the chemically defined medium was extracellular, in contrast with the distribution between cell-associated and extracellular glucosyltransferase activity when cells were grown in complex medium. The production of extracellular glucosyltransferase activity coincided with the logarithmic growth phase, and further accumulation ceased when glucose was exhausted from the medium. Accumulation of extracellular glucosyltransferase activity was inhibited immediately by chloramphenicol and rifamycin, added either at the beginning of growth or during mid-logarithmic growth. Low concentrations of chloramphenicol inhibited both cellular protein synthesis and the accumulation of extracellular glucosyltransferase activity to the same extent, indicating a close coupling between glucosyltransferase synthesis and secretion. Experiments using cell lysates showed that no intracellular accumulation of glucosyltransferase activity occurred in the presence of the inhibitors and that the intracellular activity is very low relative to the cell-surface activity. The utilization of cells depleted of cell-associated glucosyltransferase activity indicated that most of the cell-associated glucosyltransferase activity does not act as a precursor for the extracellular enzyme. Sugar analogue inhibitors of glycoprotein synthesis did not have any specific effects on the synthesis or secretion of extracellular glucosyltransferase activity.

Bacterial Proteins

Production of extracellular and cell-associated glucosyltransferase activity by Streptococcus mutans during growth on various carbon sources.

The production of extracellular and cell-associated glucosyltransferase activity by Streptococcus mutans strain GS-5 was examined during growth on various carbon sources in a chemically defined medium. S. mutans cells produced glucosyltransferase activity only during logarithmic growth when glucose, fructose, mannitol, or sorbitol was the sole carbon source. Cells growing on mannitol or sorbitol produced approximately half as much extracellular glucosyltransferase activity as cells growing on glucose, although the proportions of the glucosyltransferase activity capable of synthesizing insoluble glucans were similar. Cells growing on fructose produced slightly more extracellular glucosyltransferase activity than cells grown on glucose, yet the proportion of the glucosyltransferase activity capable of synthesizing insoluble glucans was again similar to glucose cultures. S. mutans cells growing in the presence of both glucose and mannitol displayed diauxic growth and initial preferential utilization of glucose. Glucosyltransferase enzyme production occurred only during the phases of cell growth in the presence of the two carbon sources. The cell-associated glucosyltransferase activities of glucose-, fructose-, mannitol-, and sorbitol-grown cells were relatively low, yet all the cells were capable of adherence to glass in the presence of sucrose. When glucose-containing cultures of S. mutans were supplemented with sucrose, extracellular glucosyltransferase activity first became cell associated and then appeared to become inactivated, presumably due to the accumulation of insoluble glucans.

Carbohydrate Metabolism

Effect of Tween 80 on glucosyltransferase production in Streptococcus mutans.

Glucan production from sucrose by Streptococcus mutans OMZ 176 was stimulated approximately threefold in the presence of 0.1% Tween 80. When OMZ 176 was grown in a medium containing glucose, the glucosyltransferase level in the medium was also increased about fivefold in the presence of 0.1% Tween 80. The glucosyltransferase level increased in proportion to the logarithm of the concentration of Tween 80 in the glucose medium. Tween 80 affected neither bacterial growth nor the activity of glucosyltransferase. The appearance of glucosyltransferase in the glucose medium was inhibited immediately by chloramphenicol and actinomycin D and, after a lag, by rifampin as well. It was observed that the fatty acid composition of the cells grown with Tween 80 was altered. These results suggest that Tween 80 stimulates glucosyltransferase synthesis either directly, or indirectly by promoting glucosyltransferase secretion.

Chloramphenicol

Uridine diphosphate glucose-sterol glucosyltransferase and nucleoside diphosphatase activities in etiolated pea seedlings.

1. UDP-glucose-sterol glucosyltransferase and nucleoside diphosphatases were isolated in a particulate fraction from 7-day-old etiolated pea seedlings. The glucosyltransferase and UDPase (uridine diphosphatase) are stimulated by Ca2+ cation, less so by Mg2+ cation, and inhibited by Zn2+. 2. Each activity has a pH optimum near 8. 3. The glucosyltransferase is specific for UDP-glucose as the glucosyl donor and is inhibited by UDP. Partial recovery from UDP inhibition is effected by preincubation of the enzyme. 4. Freeze-thaw treatment and subsequent sucrose-density-gradient centrifugation of the particulate fraction shows the glucosyltransferase to be widely distributed among cell fractions but to be most active in particles with a density of 1.15 g/ml. UDPase is most active in particulate material with a density of over 1.18 g/ml but an activity peak also appears at 1.15 g/ml. Of several nucleoside diphosphatase activities, UDPase activity is most enhanced by the freeze-thaw and sucrose-density-gradient-fractionation procedures. 5. Detergent treatment with 0.1% sodium deoxycholate allows the partial solubilization of the glucosyltransferase and UDPase. The two activities are similarly distributed between pellet and supernatant after high-speed centrifugation for two different time intervals. 6. A role for UDPase in the functioning of glucosylation reactions is discussed.

Acid Anhydride Hydrolases

Cellular adherence, glucosyltransferase adsorption, and glucan synthesis of Streptococcus mutans AHT mutants.

Streptococcus mutans AHT mutants M1, M2, and M13 failed to adhere to a glass surface, whereas mutants M9 and M35 exhibited decreased and increased adherence, respectively, as compared with the parent strain, when grown in sucrose broth. Extracellular glucosyltransferase prepared from glucose-grown cultures of the adherent strains (wild type, M9, and M35) induced adherence of heat-killed cells of the homologous and heterologous streptococcal strains as well as of Escherichia coli K-12 and uncoated resin particles. The glucosyltransferase was adsorbed on all the streptococcal cells and glucan-coated resins, but not on E. coli cells and the uncoated resins. Glucosyltransferase from the nonadhering mutants (M1, M2, M13) neither was significantly adsorbed on nor induced adherence of any of the cells and resins. Cell-free enzymes from the glucose-grown adherent strains produced water-soluble and water-insoluble glucans, whereas those from the nonadhering mutants produced only water-soluble glucans. Small amounts of alkali-soluble, cell-associated glucan were recovered from the sucrose-grown nonadhering mutants. Thus, the relative proportions of glucosyltransferase isozymes elaborated by the S. mutans mutants, insofar as they affect the physico-chemical properties of the glucans produced, seem to determine the adherence abilities of the cells. The adsorption of glucosyltransferase on glucan molecules on the cell surface is not required for the adherence of S. mutans, but de novo glucan synthesis is important in the adherence process.

Adhesiveness

Preparation of glucosyltransferase from Streptococcus mutans by elution from water-insoluble polysaccharide with a dissociating solvent.

Glucosyltransferase (EC 2.4.1.5) was obtained by dissociation from water-insoluble polysaccharide in the presence of 6 M guanidine-hydrochloride. Water-insoluble polysaccharide was synthesized by cell-free culture supernatants from Streptococcus mutans strain 6715. Gel filtration of the glucosyltransferase on a column of 8% agarose in phosphate buffer, followed by filtration on a column of 4% cross-linked agarose in 6 M guanidine-hydrochloride, gave a 23-fold enrichment of the enzyme. The enriched glucosyltransferase preparation contained 22% carbohydrate and eluted at a position corresponding to a molecular weight of 422,000. Polyacrylamide gel (5%) electrophoresis of this preparation revealed two regions which stained for protein, formed water-insoluble polysaccharide in the presence of sucrose, and precipitated with antisera directed to crude glucosyltransferase preparations. The guanidine-eluted enzyme could be primed by 5 X 10(-5) M dextran T10 (molecular weight, 10,000). High-molecular-weight glucan and a possible glucan-binding protein were also obtained after the final gel filtration step (4% cross-linked agarose) in addition to glucosyltransferase.

Chromatography, Gel

Effect of oral administration of glucosyltransferase antigens on experimental dental caries.

The effect of oral administration of soluble antigen preparations containing glucosyltransferase on dental caries in hamsters was studied. Immunization was accomplished by feeding glucosyltransferase for 21 to 27 consecutive days. This immunization regimen resulted in the formation of salivary antibody, which was detected by functional inhibition of enzymatic activity and by a modified enzyme-linked immunosorbent assay. A serum response also occurred in two of the three experiments performed. After infection with cariogenic Streptococcus mutans strain 6715, glucosyltransferase-fed hamsters had significantly fewer S. mutans cells recoverable from molar surfaces on six of nine occasions, compared with buffer-fed control groups. Hamsters orally immunized with glucosyltransferase also always had lower mean caries scores and mean numbers of lesions than comparably infected sham-immunized groups. The results of this study suggest that significant protection from experimental dental caries can be accomplished by oral administration of soluble antigen preparations containing glucosyltransferase.

Animals

Identification and properties of UDP-glucose: cyanidin-3-O-glucosyltransferase isolated from petals of the red campion (Silene dioica).

An enzyme catalyzing the transfer of the glucosyl moiety of UDP-glucose to the 3-hydroxyl group of cyanidin has been demonstrated in petal extracts of Silene dioica mutants with cyanidin-3-O-glucoside in the petals. This transferase activity was also present in young rosette leaves and calyces of these plants. The highest glucosyltransferase activity was found in petals of opening flowers of young plants. The enzyme was purified ninetyfold by PVP and Sephadex chromatography. The glucosyltransferase had a pH optimum of 7.5, had a "true Km value" of 4.1 x 10(-4) M for UDP-glucose and 0.4 x 10(-4) M for cyanidin chloride, and was not stimulated by divalent metal ions. Both p-chloromercuribenzoate and HgCl2 inhibited the enzyme activity. Pelargonidin chloride and delphinidin chloride at reduced rates also served as substrates. The enzyme did not catalyze the glucosylation of the 3-hydroxyl group of flavonols or the 5-hydroxyl group of anthocyanins. ADP-glucose could not serve as a glucosyl donor. The results of Sephadex G150 chromatography suggest that the glucosyltransferase can exist as dimer of about 125,000 daltons and as active monomers of 60,000 daltons. The genetic control of the glucosyltransferase activity is discussed.

Anthocyanins

Studies on the collagen glucosyltransferase activity present in platelets and plasma.

1. Collagen glucosyltransferase was demonstrated to be associated with pig platelets by using a specific assay for the synthesis of [(14)C]glucosylgalactosylhydroxylysine. 2. This enzyme from pig platelets required denatured collagen as substrate and the reaction was not inhibited by the presence of triple-helical collagen. These observations indicate that the platelet enzyme cannot form either an enzyme-substrate complex or an enzyme-inhibitor complex with triple-helical collagen. 3. Platelets were fractionated by sucrose-density-gradient centrifugation after either lysis by a glycerol-loading technique or homogenization. Assays of subcellular fractions for collagen glucosyltransferase activity indicated that the enzyme was localized predominantly in the cytosolic fraction and less than 5% of the activity was associated with the membrane fractions. 4. Enzyme assays were carried out on platelet-rich plasma and platelet-poor plasma prepared from pig and human blood. These analyses indicated that most of the collagen glucosyltransferase activity of platelet-rich plasma was in a soluble form and only about 10% was associated with platelets. 5. Comparative studies on the enzyme activity in plasma and platelets of various animal species revealed marked variation, with the guinea pig exhibiting the highest activity. In most cases there was a correlation between the activity found in platelets and plasma, but little species variation was noted in enzyme amounts detected in bone-marrow preparations. 6. The results described here are discussed in the context of the proposal that collagen glucosyltransferase might play a role in mediating collagen-platelet adhesion.

Animals

Identification, properties, and genetic control of UDP-glucose: cyanidin-3-rhamnosyl-(1 leads to 6)-glucoside-5-O-glucosyltransferase isolated from petals of the red campion (Silene dioica).

An enzyme catalyzing the transfer of the glucosyl moiety of UDP-glucose to the 5-hydroxyl group of cyanidin-3-rhamnosyl-(1 leads to 6)-glucoside has been demonstrated in petal extracts of Silene dioica plants. This glucosyltransferase activity was not detectable in green parts of these plants. The enzyme activity is controlled by a single dominant gene M; no glucosyltransferase activity could be demonstrated in petals of m/m plants. The enzyme was purified eightyfold by PVP and Sephadex G50 chromatography. The glucosyltransferase had a pH optimum of 7.4, had a molecular weight of about 55,000, was stimulated by divalent metal ions, and had a "true Km" values of 0.5 x 10(-3) M for UDP-glucose and 3.6 x 10(-3) M for cyanidin-3-rhamnosylglucoside. Pelargonidin-3-rhamnosylglucoside also could serve as acceptor. The enzyme did not catalyze the glucosylation of the 5-hydroxyl group of cyanidin-3-glucoside, although in petals of M/- n/n mutants cyanidin-3,5-diglucoside is present. ADP-glucose could not serve as a glucosyl donor.

Anthocyanins

Age-related changes in human skin collagen galactosyltransferase and collagen glucosyltransferase activities.

Collagen galactosyltransferase and collagen glucosyltransferase activities were assayed in human skin specimens of about 100 mg wet weight. The assay of the glucosyltransferase activity was found to be highly specific. The assay of the galactosyltransferase activity was somewhat less specific, but there was no difference in specificity between the foetal and adult human skin samples. The activities of the two collagen glycosyltransferases in human skin extract were found to vary with age, being highest in foetal skin, and higher in the skin of young children that in that of adults. The galactosyltransferase and glucosyltransferase activities in foetal skin were respectively about 4 times and 6 times those in adult skin. The magnitudes of the changes with age in the two collagen glycosyltransferase activities were smaller than those occurring in the activities of the two other intracellular enzymes of collagen biosynthesis namely prolyl and lysyl hydroxylase. This difference suggests that the four intracellular enzyme activities of collagen biosynthesis are not regulated in an identical manner.

Adolescent

Comparison of the action of glucoamylase and glucosyltransferase on D-glucose, maltose, and malto-oligosaccharides.

The action patterns of glucoamylase (amyloglucosidase) and glucosyltransferase (transglucosylase) on D-[1-14C]glucose, [1-14C]maltose, and [1-14C]malto-oligosaccharides (labeled at position 1 of the D-glucose group at the reducing end) have been investigated by paper-chromatographic and oligosaccharide-mapping techniques. Under the conditions of the experiments, the extent of conversion of D-glucose and of maltose into new oligosaccharides was 2.2 and 1.9% with glucoamylase, and 5.7 and 33% with glucosyltransferase. The major oligosaccharides produced by both enzymes were isomaltose (6-O-alpha-D-glucopyranosyl-alpha-D-glucose), panose (O-alpha-D-glucopyranosyl (1 leads to 6)-O-alpha-D-glucopyranosyl-(1 leads to 4)-alpha-D-glucose), and nigerose (3-O-alpha-D-glucopyranosyl-alpha-D-glucose). The glucosyltransferase also synthesized oligosaccharides from malto-oligosaccharides of higher molecular weight to yield compounds having alpha-(1 leads to 6)-linked D-glucosyl groups at the non-reducing ends. Glucoamylase exhibited little, if any, such activity on malto-oligosaccharides.

Glucan 1,4-alpha-Glucosidase

Immunogenic properties of the glucosyltransferase from Streptococcus sanguis OMZ 9: kinetic study of inhibition by antibodies.

An anti-glucosyltransferase serum was prepared against a pure enzyme preparation from Streptococcus sanguis OMZ 9, which synthesized both soluble and insoluble dextran. Sera, crude gamma globulins, and antibody fractions obtained after gel filtration on a Bio-Gel P200 column were used to study enzyme-antibody interactions. A strong inhibition of glucosyltransferase activity was obtained only with the purified antibody fraction. Kinetics studies showed that the anti-glucosyltransferase antibodies acted as noncompetitive inhibitors with respect to the substrate (sucrose). The addition of primer dextran in the reaction mixture during preincubation produced a diminution of the inhibition, and the antibodies acted as mixed type inhibitors with respect to dextran. The simultaneous addition of dextran and antibodies can protect the enxyme against antibody inhibition.

Antibodies, Bacterial

Cloning of genes for bacterial glycosyltransferases. I. Selection of hybrid plasmids carrying genes for two glucosyltransferases.

A method of identifying plasmids containing genes responsible for synthesis of nucleotide sugar:lipopolysaccharide glycosyltransferases is described. Hybrid ColE1 plasmids containing random fragments of the chromosome of Escherichia coli K12 were introduced into an indicator strain of Salmonella typhimurium which lacks UDP-glucose:lipopolysaccharide glucosyltransferase I due to an rfaG mutation. Plasmids capable of correcting the transferase defect were identified by their ability to convert the bacteriophage sensitivity pattern of the recipient strain from Ffm-sensitive to Ffm-resistant. Analysis of the lipopolysaccharide of the S. typhimurium/ColE1 hybrid strains and assay of cell extracts defined the new enzyme activities. Two plasmids were identified which carried the rfaG+ gene; one of these plasmids also contained genetic information for a second glucosyltransferase, the E. coli glucosyltransferase II, which normally is not present in S. typhimurium.

DNA, Recombinant

A modified assay system for collagen glucosyltransferase.

A simplified assay procedure has been developed for the determination of collagen glucosyltransferase activity in tissue extracts. Using degraded gelatine as acceptor it was possible to isolate the reaction product by precipitation on to a glass fibre disc. Under our conditions degraded gelatine is glucosylated with a reaction rate which is 3--4 times lower compared with the glucosylation of basement membrane derived glycopeptides. Good reproducibility is demonstrated by the coefficient of variation of 4% in the same assay and an interassay variation coefficient below 8%. As the assay allows the testing of large numbers of samples in a few hours, it should prove a useful tool to determine the enzyme level in the tissue of diabetic animals. In humans the activity of the glucosyltransferase could provide a biochemical parameter related to diabetic microangiopathy.

Amino Acids

Gene-dependent flavonoid glucosyltransferase in maize.

A direct relationship between a specific gene and a specific enzyme involved in flavonoid biosynthesis is reported for the gene Bz and uridine diphosphoglucose: quercetin glucosyltransferase in maize pollin, seedlings, and seeds. Ratios are presented for specific activities of the glucosyltransferase from pollen, seed, and seedling tissues homozygous and heterozygous for Bz and homozygous for bz.

Flavonoids

Affinity chromatography of collagen glucosyltransferase on a UDP-glucose derivative coupled to agarose.

UDP-glucuronic acid from the carboxyl group was coupled to agarose via a six-carbon atom spacer, and columns prepared from this material were used in an affinity chromatography of collagen glucosyltransferase. The enzyme was found to have a high affinity for such columns in the presence of Mn2+ in the buffer, whereas a considerably lower affinity was noted in the absence of such ions. The enzyme could be eluted from the column with either EDTA, UDP-glucose, or small peptides prepared from collagen, the peptides being the most effective eluting agent. After elution the enzyme was separated from the peptides by gel filtration. With this procedure a collagen glucosyltransferase putification of about 3000-fold was obtained from extract of chick embryos by relatively simple steps. Collagen galactosyltransferase was found to have no affinity for the column, suggesting that the binding was not only due to the UDP moiety, but that the uronic acid derivate of glucose also contributed to its specificity.

Animals

Characterization of human platelet UDPglucose-collagen glucosyltransferase using a new rapid assay.

A rapid and specific assay has been developed for UDPglucose-collagen glucosyltransferase (UDPglucose: 5-hydroxylysine-collagen glucosyltransferase, EC 2.4.1.66) using galactosylhydroxylysine (Gal-Hyl) as acceptor. Studies with intact human platelets and isolated plasma membranes indicated that about 5--10% of the total activity was surface bound and the rest was of cytoplasmic origin. The two forms of the enzyme had similar broad pH optima (6.5--8.0), Km values for UDPglucose (5 muM) and Gal-Hyl (approx. 4 mM) and for optimal manganese concentrations (25 mM). The soluble form of the enzyme was purified 80-fold. The reaction mechanism was determined as being rapid equilibrium random BiBi + dead end complex or ordered BiBi with UDPglucose being the first substrate to bind. Using Gal-Hyl bound in purified alpha 1 chain of chick skin collagen, a Km value three orders of magnitude less (2 muM) was found than for free Gal-Hyl and the manganese requirement decreased to 2 mM. These results suggest that the binding to the enzyme of Gal-Hyl in the collagen molecule is enhanced by the presence of the protein portion so that the enzyme may be capable of recognizing not only the carbohydrate side chains but also the primary structure of collagen.

Animals