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I van de Rijn

Publications and source records attributed to I van de Rijn.

At least 19 recordsLinked to original sources

Characterization of a two-component system in Streptococcus pyogenes which is involved in regulation of hyaluronic acid production.

Hyaluronic acid production by group A streptococci is regulated by transcriptional control. In this study, transposon mutagenesis of an unencapsulated strain yielded an encapsulated mutant. Two genes homologous to sensors and response regulators of bacterial two-component systems were identified downstream of the transposon insertion. Inactivation of the putative sensor gene, csrS, in three different unencapsulated strains yielded encapsulated mutant strains. Electrophoretic mobility shift assays determined factor(s) in a cytoplasmic extract of an unencapsulated group A streptococcal strain was binding to a double-stranded DNA fragment derived from the has operon promoter. In contrast, similarly prepared cytoplasmic extracts from a csrS deletion mutant did not shift the fragment. The putative response regulator, CsrR, was partially purified and was shown to bind the has operon promoter fragment. The affinity and specificity of CsrR for the fragment were increased significantly after incubation with acetyl phosphate. DNase I footprinting determined that the acetyl phosphate-treated CsrR was binding to key sequences in the promoter and the coding region of hasA. Therefore, a two-component system is repressing the production of hyaluronic acid in group A streptococci using a phosphorylation-dependent binding interaction between the response regulator CsrR and the promoter region of the has operon.

Alleles↗

Characterization of emb, a gene encoding the major adhesin of Streptococcus defectivus.

Streptococcus defectivus is one of the nutritionally variant streptococci, a class of viridans group streptococci first isolated from patients with endocarditis and otitis media. In previous studies, NVS-47, a clinical isolate of S. defectivus, was shown to bind to the extracellular matrix. A high-molecular-weight surface protein was identified and proposed to be responsible for mediating this binding. In the present study, the gene encoding this protein was identified by transposon mutagenesis and characterized. The gene (emb) was found to be larger than 14 kb and was partially sequenced. It encodes a protein containing at least 50 repeats of 77 amino acids predicted to assume an alternating coiled-coil conformation. The domain responsible for extracellular matrix binding was mapped to the N terminus of the protein. From sequence analysis, Emb is proposed to be the prototype of a new family of streptococcal fibrillar proteins.

Adhesins, Bacterial↗

Synthesis of 5-azido-UDP-N-acetylhexosamine photoaffinity analogs and radiolabeled UDP-N-acetylhexosamines.

Nuleotide sugar photoaffinity analogs have proven to be useful in the identification and characterization of glycosyltransferases. A radioenzymatic synthesis of [32P]5-azido-UDP-N-acetylglucosamine has been accomplished using 5-azido-UTP, [gamma-32P]ATP, porcine N-acetylgalactosamine kinase, and Escherichia coli UDP-N-acetylglucosamine pyrophosphorylase, GlmU. This general enzymatic scheme was useful for the synthesis of [32P]5-azido-UDP-N-acetylgalactosamine and high-specific-activity [3H] or [32P]UDP-N-acetylhexosamines. A new chemical synthesis method for generating 5-azido-uridine compounds was also developed. [32P]5-Azido-UDP-N-acetylglucosamine was functionally characterized using different soluble and membrane-associated glycosyltransferases which utilize UDP-GlcNAc as a substrate. Site-specific photoincorporation was observed for partially purified GlmU and porcine UDP-GlcNAc pyrophosphorylase. The photoprobe also effectively photoincorporated into the alpha- and beta-subunits of purified bovine UDP-N-acetylglucosamine:lysosomal enzyme N-acetylglucosamine-1-phosphotransferase. Lastly, the photoprobe was also effective at photolabeling Streptococcus pyogenes hyaluronate synthase in membrane preparations.

Animals↗

Properties and kinetic analysis of UDP-glucose dehydrogenase from group A streptococci. Irreversible inhibition by UDP-chloroacetol.

UDP-glucuronic acid is used by many pathogenic bacteria in the construction of an antiphagocytic capsule that is required for virulence. The enzyme UDP-glucose dehydrogenase catalyzes the NAD+-dependent 2-fold oxidation of UDP-glucose and provides a source of the acid. In the present study the recombinant dehydrogenase from group A streptococci has been purified and found to be active as a monomer. The enzyme contains no chromophoric cofactors, and its activity is unaffected by the presence of EDTA or carbonyl-trapping reagents. Initial velocity and product inhibition kinetic patterns are consistent with a bi-uni-uni-bi ping-pong mechanism in which UDP-glucose is bound first and UDP-glucuronate is released last. UDP-xylose was found to be a competitive inhibitor (Ki, 2.7 microM) of the enzyme. The enzyme is irreversibly inactivated by uridine 5'-diphosphate-chloroacetol due to the alkylation of an active site cysteine thiol. The apparent second order rate constant for the inhibition (ki/Ki) was found to be 2 x 10(3) mM-1 min-1. Incubation with the truncated compound, chloroacetol phosphate, resulted in no detectable inactivation when tested under comparable conditions. This supports the notion that uridine 5'-diphosphate-chloroacetol is bound in the place of UDP-glucose and is not simply acting as a nonspecific alkylating agent.

Chromatography, Gel↗

Molecular characterization of hasC from an operon required for hyaluronic acid synthesis in group A streptococci. Demonstration of UDP-glucose pyrophosphorylase activity.

Hyaluronic acid is a high molecular weight glycosaminoglycan composed of repeating subunits of glucuronic acid and N-acetylglucosamine. It is synthesized by the group A streptococcal membrane-associated enzyme hyaluronate synthase. In previous reports, the locus required for expression of hyaluronic acid, the has operon, was identified and found to consist of two genes, hasA and hasB encoding hyaluronate synthase and UDP-glucose dehydrogenase, respectively. Since a transcription terminator was not found at the end of hasB, it was the aim of this study to identify the remaining gene(s) in the has operon. By utilizing the Tn1000 method of DNA sequencing and inverse polymerase chain reaction, hasC, the third gene in the has operon was shown to be 915 base pairs in length (304 amino acids) and located 192 base pairs downstream of hasB. Sequence similarities to other genes suggested that hasC encodes UDP-glucose pyrophosphorylase. Overexpression of hasC using isopropyl-1-thio-beta-D-galactopyranoside induction of the T7 promoter in the pET translation system allowed for the production of bacterial extracts from Escherichia coli that possessed increased UDP-glucose pyrophosphorylase activity as compared to nondetectable levels in extracts with vector alone. In addition, expression of HasC resulted in a protein of approximately 36 kDa as shown by SDS-polyacrylamide gel electrophoresis. These data as well as complementation analysis of hasC in an E. coli galU mutant confirmed that hasC encodes UDP-glucose pyrophosphorylase. Finally, since sequence analysis identified a potential rho-independent transcription terminator at the 3-prime terminus of the gene, hasC is the third and probably the final gene in the has operon.

Amino Acid Sequence↗

Hyaluronic acid synthesis operon (has) expression in group A streptococci.

The has operon is composed of three genes, hasA, hasB, and hasC that encode hyaluronate synthase, UDP-glucose dehydrogenase, and presumptively UDP-glucose pyrophosphorylase, respectively. Expression of the has operon was shown to be required for the synthesis of the hyaluronic acid capsule in group A streptococci. Previous studies indicated that some group A and group C streptococcal strains produce the hyaluronic acid capsule, while others do not. In addition, it was observed that encapsulated strains cultured in stationary phase of growth lose the hyaluronic acid capsule. Therefore, the molecular mechanisms controlling the expression of the hyaluronic acid capsule in group A streptococci was investigated. In this study, it was determined that all encapsulated and unencapsulated strains of group A streptococci as well as encapsulated group C streptococci analyzed possess the has operon locus. The acapsular phenotype was accounted for by the absence of hyaluronate synthase activity in the membrane and not the production of extracellular hyaluronidase. A has operon mRNA transcript was not expressed by unencapsulated strains of group A streptococci, whereas encapsulated strains of group A streptococci grown to mid to late exponential phase produced the hyaluronate capsule, as well as has operon mRNA. However, as the streptococci entered the stationary phase of growth, they became acapsular and this was concomitant with the loss of has operon mRNA transcript. These results were confirmed by primer extension analyses of RNA isolated from encapsulated and unencapsulated strains of group A streptococci as well as RNA prepared from encapsulated strains cultured in exponential and stationary phases of growth. Thus, the loss of has operon mRNA in unencapsulated group A streptococci, as well as growth phase regulation occurs at the previously mapped has operon promoter. These data suggested that the synthesis of the hyaluronic acid capsule for group A streptococci may be controlled by transcriptional mechanisms.

Bacterial Capsules↗

Molecular characterization of hasA from an operon required for hyaluronic acid synthesis in group A streptococci.

The mechanism by which group A streptococci produce the antiphagocytic hyaluronate (hyaluronic acid) capsule is incompletely understood. Enzymes known to be essential for synthesis of this polysaccharide include the membrane-associated hyaluronate synthase as well as those required for production of the substrate sugars UDP-N-acetylglucosamine and UDP-glucuronic acid. In this study, a Tn916 insertion that inactivates hyaluronate synthetic activity was localized to a gene designated hasA in the hyaluronic acid synthesis operon. This gene has recently been preliminarily identified as the group A streptococcal hyaluronate synthase. The DNA sequence and transcription start site of hasA were determined, and the predicted HasA protein was shown to have characteristics of a membrane protein. Amino acid sequence homology suggests that HasA is related to a family of proteins involved in polysaccharide production and cell differentiation. Finally, in addition to the loss of hyaluronate synthase activity, the hasA::Tn916 insertion was demonstrated to correlate with a loss of UDP-glucuronic acid dehydrogenase activity. These results suggest that the genes required for hyaluronate synthase activity and production of the UDP-glucuronic acid substrate are transcribed as a unit in group A streptococci.

Amino Acid Sequence↗

Molecular characterization of hasB from an operon required for hyaluronic acid synthesis in group A streptococci. Demonstration of UDP-glucose dehydrogenase activity.

The membrane-associated hyaluronate synthase produces capsular hyaluronate in group A streptococci by the alternate addition of UDP-N-acetylglucosamine and UDP-glucuronic acid. Previous studies identified a locus required for hyaluronate synthase activity and suggested that a gene involved in the production of UDP-glucuronic acid (UDP-glucose dehydrogenase) also mapped to the locus. In the present study the putative UDP-glucose dehydrogenase gene (hasB) was cloned and the DNA sequence determined. The hasB gene product was shown to have global similarity with AlgD, a dehydrogenase, which catalyzes the production of GDP-mannuronic acid for the alginate capsule of Pseudomonas aeruginosa. Regions of local homology have been identified which apparently correspond to the NAD-binding and enzyme active sites of HasB and AlgD. In order to show that hasB expression correlated with UDP-glucose dehydrogenase activity, the hasB gene was cloned under control of the T7 promoter. Hyperexpression of hasB resulted in a protein of approximately 47 kDa and high levels of UDP-glucose dehydrogenase activity were observed. These data demonstrate that hasB encodes the UDP-glucose dehydrogenase of group A streptococci.

Amino Acid Sequence↗

Identification of the surface component of Streptococcus defectivus that mediates extracellular matrix adherence.

Bacterial attachment to host tissue is considered to be a crucial primary step in pathogen infection. Previous studies have shown that Streptococcus defectivus adheres specifically to cell-secreted extracellular matrix (ECM). Though generally not exposed in vivo, this host tissue is exposed at endothelial cell junctions and sites of tissue injury. In this report, we identify a ca. 200-kDa surface protein of S. defectivus involved in ECM adherence. Nitrous acid-derived mutant strains that were unable to bind ECM and which failed to adsorb adhesin-specific antibody from polyclonal inhibitory sera were isolated. A surface protein (ca. 200 kDa) was absent from ECM-nonadherent mutants, indicating its involvement in ECM attachment. Additionally, affinity-purified antibody to the ca. 200-kDa protein inhibited whole-cell S. defectivus ECM attachment, whereas antibody to the same region of the nonadherent mutant cell wall-associated protein profile did not. Furthermore, solubilized cell wall-associated protein extracts of parent but not mutant strains bound ECM, confirming the significance of this protein in ECM adherence. Therefore, we propose that the ca. 200-kDa protein is the major S. defectivus surface component that mediates the ECM attachment of these organisms.

Adhesins, Bacterial↗

Analysis of the streptococcal hyaluronic acid synthase complex using the photoaffinity probe 5-azido-UDP-glucuronic acid.

The mucopolysaccharide, hyaluronic acid, is an important component of both mammals and pathogenic streptococci. This high molecular weight polymer is synthesized by a membrane-associated, multisubunit hyaluronate synthase which utilizes UDP-glucuronic acid and UDP-N-acetylglucosamine as substrates. Using the photoaffinity probe, [beta-32P]5-azido-UDP-glucuronic acid, three streptococcal membrane proteins (42, 33, and 27 kDa) specifically photoincorporated this probe. Labeling of these proteins was enhanced in the presence of UDP-N-acetylglucosamine, whereas UDP-galactose or UDP-glucose had no effect on incorporation. UDP-glucuronic acid inhibited the labeling of the three proteins in a dose-dependent manner. Detergent-solubilized membrane proteins from transposon-inactivated hyaluronic acid capsule mutants no longer incorporated the probe. This was also the case when membranes from stationary phase organisms were tested. Finally, glucuronic acid no longer was incorporated into high molecular weight hyaluronic acid with either the mutant or stationary phase preparations. Further biochemical analysis will be required to demonstrate the exact role each of the proteins play in hyaluronic acid biosynthesis.

Affinity Labels↗

Molecular characterization of a locus required for hyaluronic acid capsule production in group A streptococci.

To characterize the production of hyaluronate capsule by the membrane-associated enzyme hyaluronate synthase (HAS), group A streptococci from a recent outbreak of acute rheumatic fever were mutagenized via Tn916 insertion. Acapsular transconjugants harboring multiple, nontandem copies of the transposon were identified and found to lack HAS activity (less than 1% of wild-type levels). Generalized transduction was then performed to determine which Tn916 insertion was responsible for the HAS- phenotype. These marker exchange experiments resulted in the isolation of two distinct classes of acapsular transductants, designated WF61 and WF62. Both transductants also lacked significant HAS activity, and excision of the transposon from WF62 restored capsular hyaluronate production. Southern analysis of WF61 DNA demonstrated a large deletion of genomic DNA adjacent to the Tn916 insertion. This deletion event is presumably responsible for the observed stability of the acapsular phenotype of WF61. Further analyses of transductant whole-cell DNA indicated that the transposon insertions of WF61 and WF62 were separated by 2.5 kb. These studies define a locus required for hyaluronate capsule production in group A streptococci. Further genetic analysis of this locus has identified a gene required for HAS activity which wasd inactivated by TN916 in WF62 and deleted in WF61.

Bacterial Capsules↗

Characterization of the Streptococcus adjacens group antigen structure.

Serological classification of bacteria requires the presence of an antigen unique to the organism of interest. Streptococci are serologically differentiated by group antigens, many of which are carbohydrates, although some are amphiphiles. This report describes the chemical characterization of the Streptococcus adjacens group antigen structure. Previous studies demonstrated that the amphiphile contained phosphorus, ribitol, galactose, galactosamine, alanine, and fatty acids. Phosphodiester bonds present in the purified group antigen were identified as part of a poly(ribitol phosphate), since ribitol phosphate was the only organic phosphate detected after acid hydrolysis. Hydrofluoric acid cleavage of the phosphodiester bonds generated oligosaccharide repeating units. Gas chromatography-mass spectrometric analysis of the methylated, acetylated oligosaccharide suggested that the repeating unit is a trisaccharide of Galp beta 1-3Galp beta 1-4GalNac with N-acetylgalactosamine attached in beta-linkage to either the number two or the number four carbon of ribitol. The lipid- and carbohydrate-substituted poly(ribitol phosphate) of the S. adjacens group antigen therefore is a unique amphiphile structure, differing in its repeating-unit structure from the polyglycerophosphate structure of the more common gram-positive amphiphile lipoteichoic acid.

Alanine↗

Infectious crystalline keratopathy. Role of nutritionally variant streptococci and other bacterial factors.

Infectious crystalline keratopathy (ICK) is a chronic corneal infection characterized by interlamellar plaques of gram-positive coccal bacteria in the absence of inflammatory cells. It generally occurs within a corneal graft. Viridans streptococci are usually isolated, but the clinical response to antibiotics is poor and disparate with the in vitro antimicrobial sensitivities. These features suggest the possibility of unusual bacterial factors in pathogenesis. Four cases caused by nutritionally variant viridans streptococci are described. The organisms were fully characterized. They have a rare nutritional requirement for pyridoxal and require defined culture conditions and specific identification. Nutritional variant streptococci (NVS) are principally described as causing endocarditis, another infection involving an avascular collagenous tissue, and exhibiting similar biologic behavior. Electronmicrographic evidence is also adduced that suggests the possible importance of intracorneal glycocalyx deposition. Such factors might explain the anomalous clinical characteristics of this condition.

Adult↗

Purification and characterization of Streptococcus adjacens (nutritionally variant Streptococcus serotype II) group antigen.

Nutritionally variant streptococci (NVS) possess amphiphiles which are serologically distinct from lipoteichoic acid and which serve as group-specific antigens for NVS. The objective of this study was to purify and characterize the NVS serotype II (Streptococcus adjacens) amphiphile. Amphiphile was isolated from stationary-phase culture supernatants of NVS strain 81 (NVS serotype II). Phenol-water extracts of culture supernatants were subjected to hydrophobic interaction chromatography and gel filtration chromatography. A homogeneous preparation of amphiphile (22 mg; 8.5 x 10(6) hemagglutination units) was recovered, and its approximate molecular size (23,000 to 24,000 Da) and chemical composition were determined. Purified S. adjacens amphiphile contained phosphorus, ribitol, galactose, galactosamine, alanine, and fatty acids in molar ratios of 1.00:0.88:1.39:1.10:0.08:0.24. Since ribitol, galactose, and galactosamine were the primary carbohydrate components, the amphiphile may exist as a polyribitol phosphate with galactose and galactosamine substituents. Preliminary structural analysis demonstrated the presence of phosphodiester bonds within the amphiphile structure. Finally, the amphiphile serves as the S. adjacens group antigen.

Animals↗

Analysis of adherence of Streptococcus defectivus and endocarditis-associated streptococci to extracellular matrix.

Pathogenesis of nutritionally variant streptococcal (NVS) endocarditis initiates with bacterial attachment to and colonization of the damaged heart valve surface. Underlying extracellular matrix (ECM) exposed to the environment during damage to cardiac endothelium provides additional receptors that could be involved in bacterial adherence. The ability of NVS and endocarditis-associated streptococci to bind ECM was investigated by using an enzyme-linked immunosorbent assay system that incorporated ECM secreted by baby hamster kidney and human umbilical vein endothelial cells in culture. Streptococcus defectivus, the major species isolated from NVS endocarditis cases, bound ECM of fibroblasts and endothelial cells, indicating that the ECM molecule involved in the binding was a common constituent of diverse matrices. The specific binding of S. defectivus to ECM was demonstrated by saturation binding and specific antibody inhibition studies. Of the 15 S. defectivus strains analyzed, 13 bound ECM, whereas Streptococcus adjacens and NVS serotype III strains were unable to bind the matrix. This selective binding suggested that S. defectivus binds to heart valves through a mechanism different from those of other NVS in subacute bacterial endocarditis. A survey of non-NVS streptococcal endocarditis isolates demonstrated that S. mutans, S. mitis, S. sanguis, and S. faecalis also bound ECM, whereas other viridans species were unable to bind the matrix.

Animals↗

Inverse correlation in nutritionally variant streptococci between the production of bacteriolytic activity and sensitivity to a Streptococcus pyogenes bacteriocinlike inhibitory substance.

Nineteen strains of nutritionally variant streptococci (NVS) were tested for bacteriolytic activity and for their production of and sensitivity to streptococcal bacteriocinlike inhibitory substances (BLIS). None appeared to produce BLIS. An inverse relationship was found between the sensitivity to BLIS and the production of bacteriolytic activity against Micrococcus luteus. All but one of the 14 Streptococcus defectivus isolates were sensitive to the BLIS of S. pyogenes P5, and these isolates were nonlytic. The five S. adjacens isolates were not sensitive to any BLIS tested, and all of these isolates displayed bacteriolytic activity. Sensitivity to the BLIS of S. agalactiae P3 separated the nonlytic S. defectivus strains into two categories.

Bacteriocins↗