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Multiple glucan-binding proteins of Streptococcus sobrinus.

Several proteins from culture supernatants of Streptococcus sobrinus were able to bind avidly to Sephadex G-75. The proteins could be partially eluted from the Sephadex by low-molecular-weight alpha-1,6 glucan or fully eluted by 4 M guanidine hydrochloride. Elution profiles were complex, yielding proteins of 16, 45, 58 to 60, 90, 135, and 145 kDa, showing that the wild-type strain possessed multiple glucan-binding proteins. Two mutants of Streptococcus sobrinus incapable of aggregation by high-molecular-weight alpha-1,6 glucan were isolated. One mutant was spontaneous, from a cell suspension to which glucan had been added, whereas the other was induced by ethyl methanesulfonate. Both mutants were devoid of a 60-kDa protein, as shown by gel electrophoresis of culture supernatants and whole cells. Amino acid analysis showed that the 58- to 60-kDa protein and the 90-kDa protein were distinct, although both were N-terminally blocked. Both mutants retained their ability to adhere to glass in the presence of sucrose and to ferment mannitol and sorbitol. Both mutants retained their glucosytransferase activities, as shown by activity gels. Western blots (immunoblots), employing antibody against a glucan-binding protein of Streptococcus mutans, failed to reveal cross-reactivity with S. sobrinus proteins. The results show that even though S. sobrinus produces several proteins capable of binding alpha-1,6 glucans, the 60-kDa protein is probably the lectin needed for glucan-dependent cellular aggregation.

Amino Acids↗

A DNA probe specific to Streptococcus sobrinus.

Three DNA fragments (SSB-1, -2 and -3) in the dextranase gene (dex) of Streptococcus sobrinus were amplified by polymerase chain reaction and used as DNA probes. The probes were examined for the specificity and the sensitivity of hybridization with DNA of oral streptococcal species. While probes SSB-1 and SSB-2 were specific to both S. sobrinus and Streptococcus downei, SSB-3 was specific only to S. sobrinus. SSB-3 was able to detect 5 ng of chromosomal DNA purified from S. sobrinus NIDR6715 and DNA extracted from 1 x 10(5) cells of the strain. In addition, SSB-3 could differentiate clinical isolates of S. sobrinus from Streptococcus mutans. These results suggest that SSB-3 is an effective DNA-probe to detect and to identify S. sobrinus.

Bacterial Proteins↗

Longitudinal study of dental caries incidence associated with Streptococcus mutans and Streptococcus sobrinus in pre-school children.

Streptococcus mutans and Streptococcus sobrinus are known to be associated with the development of dental caries. In this study these bacteria were detected in pre-school children (each with primary dentition, age range 3-5 years, n = 60) using a PCR method, and then their presence was compared with the incidence of dental caries over a 1-year period. Plaque samples were collected from all erupted tooth sites using a sterile toothbrush. Dental examinations at the beginning of the study (baseline) and after 1 year were also performed to determine decayed, missing, filled teeth (dmft) scores using WHO caries diagnostic criteria. The prevalences of S. mutans and S. sobrinus across all the subjects were 61.7% and 56.6%, respectively; 13 subjects (21.7%) were positive for S. mutans alone, 10 (16.6%) were positive for S. sobrinus alone and 24 (40.0%) were positive for both S. mutans and S. sobrinus, whereas 13 (21.7%) were negative for both S. mutans and S. sobrinus. dmft scores of subjects positive for both S. mutans and S. sobrinus at baseline and after 1 year were significantly higher than of those positive for S. mutans alone at the same stages (P < 0.01 and P < 0.001, respectively). The caries incremental increase was also significantly greater in those with both bacteria detected (P < 0.05). Our results indicate that pre-school children harbouring both S. mutans and S. sobrinus have a significantly higher incidence of dental caries than those with S. mutans alone.

Child, Preschool↗

Some properties of an endodextranase inhibitor from continuous cultures of Streptococcus sobrinus.

Cell-free filtrates of Streptococcus sobrinus, cultured at low growth rate in the chemostat, contain a dextranase inhibitor that can completely inhibit the activity of S. sobrinus endodextranase. The range of conditions under which inhibition occurs, and the situations in which enzyme activity can reappear, have been examined in continuous cultures of strain 6715-13WT and the dextranase-deficient mutant 6715-13-201. A purified preparation of the inhibitor was specific for S. sobrinus dextranase, having no action on dextranases from other oral streptococci. The percentage inhibition of S. sobrinus dextranase varied with the enzyme concentration, and the complete inhibition of low amounts of enzyme indicated a very tight bond between the inhibitor and the enzyme.

Chromatography↗

Influence of growth rate on the relative activities of free and bound dextranase and dextranase inhibitor in continuous cultures of Streptococcus sobrinus.

The rate of growth of Streptococcus sobrinus was a major factor governing the activity of free dextranase and free dextranase inhibitor in continuous culture filtrates. Depending on the growth conditions, a variable proportion of dextranase and dextranase inhibitor was combined in a tightly bound enzyme-inhibitor (EI) complex. Dissociation of the EI complexes revealed that the total productivity (free + bound) of both the enzyme and the inhibitor increased with growth rate, and that the activities of the enzyme and inhibitor released from the EI complex greatly exceeded their free activities, when the dilution rate (D) was high (D, 0.45 h-1). At low growth rate (D, 0.05 h-1), all the enzyme was bound to the inhibitor, and no free dextranase could be determined in culture filtrates; by contrast, at high growth rate (D, 0.45 h-1), all the inhibitor was bound to dextranase in the active EI complex, leaving active dextranase but no free inhibitor.

Bacterial Proteins↗

[A study of tarnish induced by Streptococcus sobrinus serotype g on Co-Cr, Ni-Cr and casting titanium alloys].

OBJECTIVE: The objective of this study was to investigate the tarnish induced by Streptococcus sobrinus serotype g on Co-Cr, Ni-Cr and casting titanium alloys. METHODS: Co-Cr, Ni-Co and casting titanium alloys were respectively machined into a size of 10 mm x 10 mm x 1 mm in tablets, and totally 90 specimens with 30 of each were prepared for the test. The 30 specimens of each alloy were randomly and equally divided into three subgroups, including the blank control group, the media control group and the inoculated media group. Under the aerobic condition, the surfaces of the sucrose agar media were inoculated with Streptococcus sobrinus serotype g. The labeled sterile specimens were placed on the surface of the media for 10 weeks. The specimens were changed to a new sucrose media with bacteria each week. The specimens were removed after 10 weeks of incubation, immersed in 0.05% glutaraldehyde solution to eliminate AaY4, rinsed with distilled water. After 2 weeks, the specimens were removed and observed visually or examined by MINOLTA CR-100 color apparatus. RESULTS: Compared with the blank control, the control media without bacteria did not influence the alloy specimens (P > 0.05). Streptococcus sobrinus serotype g caused tarnish on specimens. There was significant difference between the control media group and the blank control group with inoculated media group on all the specimens (P < 0.05). CONCLUSION: Streptococcus sobrinus serotype g affects the color of Co-Cr, Ni-Cr and casting titanium alloys, but the color does not change from yellow-green range to red-yellow range.

Chromium Alloys↗

Size and subdomain architecture of the glucan-binding domain of sucrose:3-alpha-D-glucosyltransferase from Streptococcus sobrinus.

Mild trypsin proteolysis of Streptococcus sobrinus sucrose:3-alpha-D-glucosyltransferase (GTF-I) reduced most of the enzyme to small products but left a few large fragments undigested. The digest had no glucosyl transfer activity, but several digestion products had an affinity for glucan equivalent to that of the native enzyme. The glucan-binding fragments ranged in size from 17 to 60 kilodaltons (kDa), with a particularly prominent 42-kDa fragment. The largest of these (60 kDa) appears to be the full extent of the domain since it increases in abundance when the enzyme is protected with glucan during proteolysis. The presence of smaller fragments with glucan-binding function and intact tertiary structure indicates that the full domain must be built on glucan-binding subdomains. Among the range of glucan-binding fragments, only the 42-kDa segment could be satisfactorily purified. It was subjected to N-terminal sequence analysis and, because of some ambiguity, was also subjected to chymotrypsin digestion and sequence of several chymotryptic peptides. The sequence data established that the 42-kDa domain fragment is initiated approximately two-thirds into the 170-kDa enzyme in a region previously identified as a segment of the gene that includes the glucan-binding domain (J. J. Ferretti, M. L. Gilpin, and R. R. B. Russell, J. Bacteriol. 169:4271-4278, 1987). The site is approximately 60 kDa from the C terminus and covers a region characterized by extensive amino acid sequence repeats. The data are discussed in the context of the size range of the glucan-binding fragments and subdomain architecture of the full glucan-binding domain.

Amino Acid Sequence↗

Fluoride inhibits the glucan-binding lectin of Streptococcus sobrinus.

The glucan-binding lectins of Streptococcus cricetus AHT and Streptococcus sobrinus 6715 were reversibly inhibited by sodium fluoride. Fluoride was superior to chloride, bromide, iodide and thiocyanate in preventing glucan-mediated aggregation of the bacteria. Fluoride was also an effective inhibitor of the sucrose-dependent adhesion of S. sobrinus to glass surfaces. The inhibition of glucan-binding lectin activities may be one of the mechanisms of action of fluoride in preventing dental disease.

Bacterial Adhesion↗

Stabilization of the glucan-binding lectin of Streptococcus sobrinus by specific ligand.

Cell suspensions of Streptococcus sobrinus can be aggregated by high molecular-weight alpha-1,6 glucans. The aggregation depends on the fidelity of a cell wall-bound, glucan-binding lectin (GBL). It is thought that the lectin may play a part in the sucrose-dependent accretion of streptococci in dental plaques. Results showed that the anionic detergent, sodium dodecyl sulphate (SDS) was a potent inhibitor of the lectin. When cells were incubated in SDS and washed to remove the detergent, lectin activity was diminished. Following incubation of the cells with SDS in the presence of glucan T-10, a low molecular-weight alpha-1,6 glucan, the loss of activity was less pronounced, suggesting that the glucan afforded partial protection against denaturation. Urea and guanidine hydrochloride were good inhibitors of the lectin, but, unlike SDS, were not able to inhibit it irreversibly, except at very high concentrations. Cationic detergents, such as cetylpyridinium bromide (and chloride), also irreversibly denatured the streptococcal lectin, but were not as effective as SDS in abolishing its activity. The results suggest that alpha-1,6 glucan stabilizes the GBL of S. sobrinus, rendering it more resistant to the effect of chaotropes. This may be one reason why dental plaques tend to resist detergents in dentrifices.

Anti-Bacterial Agents↗

Sequence analysis of scrA and scrB from Streptococcus sobrinus 6715.

The complete nucleotide sequences of Streptococcus sobrinus 6715 scrA and scrB, which encode sucrose-specific enzyme II of the phosphoenolpyruvate-dependent phosphotransferase system and sucrose-6-phosphate hydrolase, respectively, have been determined. These two genes were transcribed divergently, and the initiation codons of the two open reading frames were 192 bp apart. The transcriptional initiation sites were determined by primer extension analysis, and the putative promoter regions of these two genes overlapped partially. The gene encoding enzyme IIScr, scrA, contained 1,896 nucleotides, and the molecular mass of the predicted protein was 66,529 Da. The hydropathy plot of the predicted amino acid sequence indicated that enzyme IIScr was a relatively hydrophobic protein. The gene encoding sucrose-6-phosphate hydrolase, scrB, contained 1,437 nucleotides. The molecular mass of the predicted protein was 54,501 Da, and the encoded enzyme was hydrophilic. The predicted amino acid sequences of the two open reading frames exhibited approximately 45 and 70% identity with those encoded by scrA and scrB, respectively, from Streptococcus mutans GS5. Homology also was observed between the N-terminal region of the S. sobrinus 6715 enzyme IIScr and other enzyme IIs specific for the glucopyranoside molecule, all of which generate glucopyranoside-6-phosphate during translocation and phosphorylation of the respective substrates. The sequence of the C-terminal domain of the S. sobrinus 6715 enzyme IIScr shared significant homology with enzyme IIIGlc from Escherichia coli and Salmonella typhimurium and with the C-terminal domain of enzyme IIBgl from E. coli, indicating that the two functional domains, enzyme IIScr and enzyme IIIScr, were covalently linked as a single polypeptide in S. sobrinus 6715. The deduced amino acid sequence of the gene product of S. sobrinus scrB shared strong homology with sucrase from Bacillus subtilis, Klebsiella pneumoniae, and Vibrio alginolyticus, suggesting conservation based on the physiological roles of these proteins.

Amino Acid Sequence↗

Identification of Streptococcus sobrinus with monoclonal antibodies.

Identification of Streptococcus sobrinus is often difficult to perform because of the great resemblance of the organism to other oral streptococcal species. Therefore, monoclonal antibodies were prepared which were shown to be highly specific for S. sobrinus. Cross-reactivity with other oral microorganisms has not been observed in an enzyme-linked immunosorbent assay and an immunofluorescence assay. These monoclonal antibodies belonged to the subclass immunoglobulin G2b. To be certain that the strains used in cross-reactivity tests were S. sobrinus, their DNA base composition was measured as a golden standard. Additional tests like colony morphology and sugar fermentation with the API 20 Strep system (Analytab Products, Montalieu-Vercieu, France) were performed. These additional tests turned out to be necessary because 100% correct identification could not be obtained by separate tests. Immunological characterization with the clones OMVU10 and OMVU11 proved to be discriminative between S. sobrinus and other streptococcal species.

Antibodies, Monoclonal↗

Chemical and structural studies of serotype polysaccharide antigens of Streptococcus sobrinus 6715.

The g antigen of Streptococcus sobrinus 6715 was previously shown to consist of polysaccharides of various molecular weights. In this study, two such polysaccharides, LII and LIII, were purified by gel filtration and affinity chromatography procedures. By a double immunodiffusion analysis, fraction LII was found to contain a region in the serotype-specific g site not present in the serospecific g site of fraction LIII. This region was designated x. In addition to the serotype-specific g site, the cross-reactive sites, g-a, g-d, and g-(a-d), were all present on a single molecule of fractions LII and LIII. Polysaccharides LII and LIII were composed of galactose, glucose, and rhamnose. Analysis of inhibition of the precipitin reaction suggested that the serotype g site of fraction LII (the putative form of g antigen) may consist of two immunodominant regions, one a galactose-containing region (region x) and the other a glucose-containing region, while the serotype g site of fraction LIII appeared to have one immunodominant region containing a glucose determinant. The methylation and 13C nuclear magnetic resonance analyses of LII and LIII fractions provided information on the linkage and the anomeric structures of the sugar components of the polysaccharides.

Antigens, Bacterial↗

Enolase from Streptococcus sobrinus is an immunosuppressive protein.

A strategy of Streptococcus sobrinus, a major agent of dental caries, to survive and colonize the host consists of the production of a protein that suppresses the specific antibody responses. We have cloned the gene coding for a protein with immunosuppressive activity. It contains an open reading frame of 1302 base pairs encoding a polypeptide with 434 amino acid residues and a molecular mass of 46910 Da. The gene product is homologous to enolases from several organisms. The polypeptide was expressed in Escherichia coli as a hexahistidine-tagged protein and purified in a fluoride-sensitive enzymatically active form. Pretreatment of mice with the S. sobrinus recombinant enolase suppresses a primary immune response against T-cell dependent antigens. This immunosuppressive effect is specific to the antigen used in the immunization, as it is not observed when the immune response against other antigens is analysed. Furthermore, the S. sobrinus recombinant enolase stimulates an early production of interleukin-10, an anti-inflammatory cytokine, and not the pro-inflammatory cytokine IFN-gamma. These observations indicate that enolase acts in the suppression of the specific host immune response against S. sobrinus infection.

Amino Acid Sequence↗

Simple and rapid detection of Streptococcus mutans and Streptococcus sobrinus in human saliva by polymerase chain reaction.

Streptococcus mutans and Streptococcus sobrinus are major pathogens causing dental caries in humans. A simple and rapid method to detect these species in human saliva simultaneously was developed using the polymerase chain reaction (PCR). Chromosomal DNA was extracted by boiling bacterial cells in lysis solution containing 1% Triton X-100. Oligonucleotide primers specific for portions of the glucosyltransferase genes (gtfB of S. mutans and gtfI of S. sobrinus) were designed. After PCR using two sets of these primers, S. mutans and S. sobrinus were specifically identified. The method was capable of amplifying DNA fragments specific for these species from chromosomal DNA extracted from 1 x 10(3) cells, or from 10 microliters of clinical saliva samples containing 1 x 10(3) colony-forming units of either streptococcal species. A second PCR, using the first PCR product as a template with newly designed internal primers, made it possible to detect 1 x 10(2) colony-forming units of either streptococcal species in 10 microliters of saliva samples. These results indicate that the PCR method developed in this study is useful for detecting S. mutans and S. sobrinus in saliva and that it can be used in epidemiological studies to evaluate the prevalence level of these organisms.

Adult↗

Tonsillar application of formalin-killed cells of Streptococcus sobrinus reduces experimental dental caries in rabbits.

Living Streptococcus sobrinus cells were orally inoculated into nonimmune rabbits and rabbits immunized with formalin-killed cells of S. sobrinus through tonsillar application to examine the anticaries potential of this method of immunization. The living S. sobrinus cell numbers and the caries areas in the rabbits immunized by tonsillar application decreased to a level one-fifth of that in nonimmune rabbits.

Administration, Oral↗

Cloning and DNA sequencing of the dextranase inhibitor gene (dei) from Streptococcus sobrinus.

Some dextranase-deficient (Dex-) mutants of Streptococcus sobrinus UAB66 (serotype g) synthesize a substance which inhibits dextranase activity (S.-Y. Wanda, A. Camilli, H. M. Murchison, and R. Curtiss III, J. Bacteriol. 176:7206-7212, 1994). This substance produced by the Dex- mutant UAB108 was designated dextranase inhibitor (Dei) and identified as a protein. The Dei gene (dei) from UAB108 has been cloned into pACYC184 to yield pYA2651, which was then used to generate several subclones (pYA2653 to pYA2657). The DNA sequence of dei was determined by using Tn5seq1 transposon mutagenesis of pYA2653. The open reading frame of dei is 990 bp long. It encodes a signal peptide of 38 amino acids and a mature Dei protein of 292 amino acids with a molecular weight of 31,372. The deduced amino acid sequence of Dei shows various degrees of similarity with glucosyltransferases and glucan-binding protein and contains A and C repeating units probably involved in glucan binding. Southern hybridization results showed that the dei probe from UAB108 hybridized to the same-size fragment in S. sobrinus (serotype d and g) DNA, to a different-size fragment in S. downei (serotype h) and S. cricetus (serotype a), and not at all to DNAs from other mutans group of streptococci.

Amino Acid Sequence↗

[MGB probes detect Streptococcus mutans and Streptococcus sobrinus in real time].

OBJECTIVE: To detect and distinguish Streptococcus mutans (S. mutans) and Streptococcus sobrinus (S. sobrinus) quickly in epidemiology and investigate the distribution of S. mutans in the oral of children with rampant caries. METHODS: Designed minor groove binder (MGB) probes according to the gtf gene of S. mutans and S. sobrinus. Detected 9 reference strains of Streptococcus mutans group by MGB probes in real time and after cultivation. Evaluated the results of these two methods. 92 dental plaques from pre-school children with rampant caries were detected in real time with MGB probes. RESULTS: The primers could amplify the target sequences specificity and distinguished S. mutans and S. sobrinus from each other using MGB probes. Though the fluorescence occurred earlier in S. mutans than in S. sobrinus, they had the same results in nature. In 92 children with rampant caries, the detective ratio of S. mutans was 96.7% and that of S. sobrinus was 32.6%. All the samples which could detect S. sobrinus were positive for S. mutans. CONCLUSION: The primers and probe designed from gtf genes of S. mutans and S. sobrinus can amplify the target sequence and distinguish them from each other in real time.

Child↗

Early formation of Streptococcus sobrinus biofilm on various dental restorative materials.

OBJECTIVES: To examine the formation of dental biofilm by Streptococcus sobrinus on different types of restorative materials, using a model consisting of host and bacterial constituents. METHODS: The adsorption pattern of saliva to the restorative material was determined by means of gel electrophoresis coupled with computerized densitometry techniques. The amount of salivary proteins adsorbed onto the surfaces was measured using the Bradford method. Sucrose-dependent bacterial adhesion to the saliva-coated restorative material was tested by radioactive-labelled Streptococcus sobrinus, and viable counts of these bacteria in the biofilm was determined using bacterial culture techniques. RESULTS: Different adsorption patterns by salivary proteins to restorative materials were recorded. Durafil and acrylic dental materials demonstrated the most affinity to salivary proteins. A surface dependent adhesion profile was recorded, showing a high affinity of albumin and amylase to Acrylic and Durafil materials. Bacterial accumulation was the highest with Fuji LC and Fuji GC, which also demonstrated the highest bacterial viability. CONCLUSIONS: Our study demonstrates the specificity of biofilm formation on different brands of dental restorative materials. Formation of a variety of dental biofilms has a significant impact on the progression of dental diseases in the oral cavity.

Acrylic Resins↗