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The effect of some divalent cations on extracellular polysaccharide synthesis in Streptococcus salivarius.

The amount of extracellular insoluble polysaccharide produced by Streptococcus salivarius can be effected by some divalent cations. Calcium at concentrations of 1 X 10(-3) and 10(-4) M caused a reduction in polysaccharide synthesis. Magnesium at 1 X 10(-3) M inhibited extracellular polysaccharide production but at 1 X 10(-4) M had little effect. Manganese was without effect on polysaccharide synthesis. Zinc at 1 X 10(-3) and 1 X 10(-4) M caused a substantial increase in extracellular polysaccharide synthesis.

Calcium

Outer membrane protein a and other polypeptides regulate capsular polysaccharide synthesis in E. coli K-12.

capR (lon) mutants of Escherichia coli K-12 are mucoid on minimal agar because they produce large quantities of capsular polysaccharide. When such mutants are transformed to tetracycline resistance by plasmid pMC44, a hybrid plasmid that contains a 2 megadalton (Mdal) endonuclease EcoR1 fragment of E. coli K-12 DNA joined to the cloning vehicle-pSC101, capsular polysaccharide synthesis is inhibited and the transformed colonies exhibit a non-mucoid phenotype. Re-cloning of the 2 Mdal EcoR1 fragment onto plasmid pHA105, a min-colE1 plasmid, yielded plasmid pFM100 which also inhibited capsular polysaccharide synthesis in the capR mutants. A comparison of the polypeptides specified by both plasmids pFM100 and pMC44 in minicells demonstrated that seven polypeptide bands were specified by the 2 MDal DNA, one of which was previously demonstrated to be outer membrane protein a; also known as 3b or M2 (40 kilodaltons, Kdal). Plasmid mutants no longer repressing capsular polysaccharide synthesis were either unable to specify the 40 Kdal outer membrane protein a or were deficient in synthesis of 25 Kdal and 14.5 Kdal polypeptides specified by the 2 Mdal DNA fragments. Studies with a minicell-producing strain that also contained a capR mutation indicated that the capR gene product regulated processing of at least one normal protein, the precursor of outer membrane protein a.

Bacterial Proteins

Polysaccharide synthesis operon modulates Rickettsia-endothelial cell interactions.

Pathogenic Rickettsia species target vascular endothelial cells and cause systemic vasculitis. As obligate intracellular bacterial pathogens, Rickettsia must secure nutritional resources within the cytoplasm of endothelial cells while simultaneously subverting the innate immune defense system. With advances in rickettsial and host genetics, recent studies have identified novel molecular mechanisms involved in the complex interactions between Rickettsia and endothelial cells. However, it remains unclear how Rickettsia shields pathogen-derived immune stimulants, such as lipopolysaccharides (LPS) and peptidoglycan fragments, from immune recognition during intracellular replication. Prior work described two Rickettsia conorii variants with kkaebi transposon insertions in the polysaccharide synthesis operon (pso). Biochemical and immunological analyses revealed that pso is responsible for the biosynthesis of O-antigen (O-Ag) and the proper assembly of surface proteins. In the present work, we document that pso variant HK2 exhibits reduced capacities to adhere to and invade microvascular endothelial cells. Despite the low intracellular abundance, HK2 induced significantly higher levels of proinflammatory cytokines and chemokines, leading to premature cell death. Notably, HK2 exhibited defective intracellular survival in bone marrow-derived macrophages. This inability to dampen endothelial cell-mediated immune stimulation and resist macrophage-induced bactericidal activities resulted in the rapid elimination of viable Rickettsia in the mouse model of spotted fever. Further, when tested as a live-attenuated vaccine, HK2 elicited robust protective immunity against lethal spotted fever pathogenesis. Our work highlights the crucial role of pso in enabling Rickettsia to evade immune surveillance during intracellular replication within endothelial cells, ultimately delaying pathogen-induced programmed cell death and escaping immune defense mechanisms.

Operon

Variation in internal polysaccharide synthesis among Streptococcus mutans strains.

Five strains, representative of Streptococcus mutans genetic group III antigenic group d, synthesized and degraded less intracellular polysaccharide (IPS) then 17 strains representative of other S. mutans groups. The strains that synthesize IPS degraded it rapidly. The production of acid in titratable amounts from endogenous IPS was usually complete within 1 h. IPS synthesis in S. mutans increased abruptly at culture glucose concentrations between 0.2 and 0.5% and was quantitated as both iodine-and glucose oxidase-positive material in cell hyrolysates. IPS degradation was measured by acid production in a pH-stat maintained at 7. The existence within group III d of a strain recently shown to be cariogenic in experimental animals suggest that IPS may not be a prerequisite for virulence in these cariogenic bacteria.

Acids

Bacterial polysaccharide synthesis: an experiment for the dental biochemistry laboratory.

A simple experiment is described for demonstrating the formation of a high molecular-weight polysaccharide from sucrose by a bacterial enzyme. The polysaccharide confers high viscosity on solutions. Dental students are encouraged to consider this as a component of the system leading to the formation of dental plaque and the initiation of carious lesions.

Biochemistry

Cell-cell recognition in Saccharomyces cerevisiae: regulation of mating-specific adhesion.

Mating-specific adhesion between haploid yeast cells of opposite mating type (a and alpha) was studied by using a quantitative agar plate assay. Washed a and alpha cells that had not previously been exposed to their respective opposite mating type ("naive" cells) adhered relatively weakly. In water, only 5 to 10% of the a cells stuck tightly enough to alpha cells to give rise subsequently to diploid clones on the assay plates. Under optimum conditions (pH 6 to 7, at least 0.1 M Nacl or 0.01 M Mg(2+)), there was about 20% adhesion. Nevertheless, this weak binding defined a mating type-specific interaction because, even under optimum conditions, the homologous interactions (a with a and alpha with alpha) yielded only 3 to 5% cohesion. In contrast to these results, washed cells that had been preincubated in the cell-free culture medium of their opposite mating type ("preconditioned" cells) adhered quite strongly. The degree of adhesion between preconditioned cells (40 to 50%) was essentially unaffected by extremes of ionic strength, pH, and temperature and by the absence of divalent cation. This strong interaction was also mating type specific since cohesion between preconditioned cells of like mating type was only about 5%. The increase in agglutinability was obtained if only the a cells were preconditioned and could be induced by highly purified preparations of natural or synthetically prepared alpha-factor, an oligopeptide pheromone released by the alpha cells. The appearance of increased adhesiveness was blocked by an inhibitor of RNA synthesis and by an inhibitor of protein synthesis, but not by an inhibitor of polysaccharide synthesis. Adhesion between preconditioned cells could be inhibited by pretreatment with functionally univalent succinylated concanavalin A or with extracts from preconditioned cells of the opposite mating type. These results confirm in a quantitative manner that the recognition between conjugating cells of S. cerevisiae is a developmentally regulated event that is under the control of the mating type locus.

Adhesiveness

The T2T genome assembly of watershield (Brasenia schreberi) unveils genomic insights into aquatic adaptation.

Watershield (Brasenia schreberi), belonging to Cabombaceae within the order Nymphaeales, represents one of the early-diverged angiosperm lineages. This perennial floating leaf freshwater aquatic plant features submerged juvenile leaves enveloped in a thick layer of transparent gelatinous mucilage, aiding in its resistance to aquatic stress. However, the evolutionary history of the mechanisms underlying its specific phenotype remains unclear. In this study, we present the telomere-to-telomere level genome of B. schreberi, unveiling that it underwent two rounds of whole-genome duplications (WGDs) and a recent whole-genome triplication, with the most ancient WGD being shared by Nymphaeaceae. WGD and dispersed duplication significantly contributed to the expansion of gene families, which are primarily associated with environmental adaptation. Additionally, we discovered that mature leaves primarily conduct photosynthesis and may transport nutrients to underwater juvenile leaves for polysaccharide synthesis. We also identified an ancestral broad expression pattern of ABC genes, and the similar expression of anthocyanin biosynthesis genes across all flower organs resulted in entirely purple flowers. Our findings deepen the understanding of the evolution of this specific aquatic plant phenotypes.

Genome, Plant

Changes in the rate of synthesis of wall polysaccharides during the cell cycle of yeast.

Reevaluation and comparison of seemingly contradictory literature data on the mode of synthesis of wall polysaccharides during the cell cycle of Saccharomyces cerevisiae explained the source of discrepancies and demonstrated their general consonance in the following points: 1. The rate of synthesis of glucan and mannan is not constant and does not increase continuously throughout the entire cell cycle. 2. The rate of synthesis of both polysaccharides is considerably reduced at the time of cell division and in the prebudding phase.

Cell Cycle

Changes in enzymic activities of nucleoside diphosphate sugar interconversions during differentiation of cambium to xylem in pine and fir.

A protein fraction [precipitate obtained between 40 and 65% (NH4)2SO4 satn.] prepared from cambial cells, differentiating xylem cells and differentiated xylem cells of pine and fir trees contained all the enzymes required for the nucleoside diphosphate sugar interconversions. By using UDP-D-[U-14C]glucose or UDP-D-[U-14C]galactose, UDP-D-[U-14C-]glucuronic acid and UDP-D-[U-14C]xylose as substrates, the activities of UDP-D-galactose 4-epimerase (DC 5.1.3.2), UDP-D-xylose 4-epimerase(EC 5.1.3.5), UDP-D-glucose dehydrogenase (EC 1.1.1.22) and UDP-D-glucuronate 4-epimerase (EC5.1.3.6), UDP-d-glucuronate decarboxylase (EC 4.1.1.35) were measured at different stages of cell-wall development. The specific activities and the activities per cell of these enzymes varied during differentiation of cambium to xylem according to the type polysaccharide synthesized. Variations were also found between the two species investigated. These data, compared with those obtained in out previous work on angiosperms [see the preceding paper, Dalessandro & Northcote (1977) Biochem. J. 162, 267-279], suggest that some control of polysaccharide synthesis operates at the level of the formation of the precursors of pectin and hemicellulose syntheses.

Carbohydrate Epimerases

Effect of insulin on ultrastructure and glycogenesis in primary cultures of adult rat hepatocytes.

Insulin in the presence of high concentrations of glucose has a beneficial trophic effect on the development of primary cultures of hepatocytes. Compared to the situation observed in hormone-free control cultures, the flattening of the reaggregated hepatocytes is enhanced, and the reconstituted cell trabeculae are enlarged and tend to form a confluent monolayer after 3 days; the survival time is prolonged from 3 to 5 or 6 days. Ultrastructural modifications are also initiated by insulin; numerous glycogen particles appear after 24 h, in between the cisternae of the proliferated smooth endoplasmic reticulum. After 48 h, large amounts of glycogen are stored, and numerous polysomes are present. A small number of cells showed an increased synthesis of lipid droplets in the lumen of the smooth endoplasmic reticulum and form liposomes at the same time. After 72 h, cytolysomes filled with glycogen develop, simulating glycogenosis type II. Simultaneously, microtubules and microfilaments, closely related to numerous polysomes, appear in cytoplasmic extensions constituting undulating membranes. The biochemical data demonstrate that, in the absence of insulin, a high concentration of glucose stimulates glycogenesis and hinders glycogenolysis. This effect of glucose on polysaccharide synthesis is progressively lost. The addition of insulin to the culture induces after 48 and 72 h, a three- to fivefold increase of the glucose incorporation into glycogen, as compared to the controls. The presence of insulin is required to maintain the hepatocyte's capacity to store glycogen. Glycogen synthetase is converted into its active form under the influence of glucose. Insulin increases the rate of activation.

Cells, Cultured

Biochemical basis of the serological cross-reactions between Brucella abortus and Yersinia enterocolitica serotype O:9.

A method based on the inhibition of agglutination is described that may be used for the differential serological diagnosis between B. abortus and Y. enterocolitica serotype O:9. An antigen with high immunological capacity was isolated from Brucella. This antigen inhibited both homologous and heterologous agglutination by Brucella antiserum, but only the heterologous agglutination by Yersinia antiserum. It proved to be constitued of a polysaccharide (N-acetylglucosamine, glucose, mannose and 2-keto-3-deoxyoctonic acid), a protein and a phosphoglycerid moiety. Lipid A was absent from the Brucella antigen. Incomplete polysaccharide synthesis of the Brucella antigen, with concomitant loss of serological specificity by the rough mutant has been described. Oligosaccharides containing N-acetylgalactosamine, glucose and galactose were isolated from the specific side chain of Yersinia lipopolysaccharide. Lipid A constituents were also identified in the latter.

Acetylglucosamine

Bacteriophage-resistant mutants of Escherichia coli K12. Location of receptors within the lipopolysaccharide.

A series of mutants of Escherichia coli K12 resistant to lipopolysaccharide (LPS)-specific bacteriophages were isolated, and examined with regard to their general properties, phage typing, chemical analysis of their LPS, and genetic analysis. Fourteen classes of mutants were distinguished on the basis of phage typing and sensitivity to bile salts. Three of the mutant classes are sensitive to phages to which the parent is resistant. Mutants which are sensitive to bile salts generally lack heptose in their LPS, but two mutant classes are exceptions to this rule. Analyses of the sugars in the purified LPS of all mutant classes indicated that mutants were obtained which are blocked at most stages in core polysaccharide synthesis. On the basis of the chemical analysis, in conjunction with phage typing data and other known properties of the mutants, it is deduced which residue(s) is involved as a receptor for each of the phages used and which residues hinder these receptors. Some of the mutant classes do not seem to be changed in their LPS structure. Many of the mutations map in or near the rfa locus, but some are far removed from this region.

Bacteriophage Typing

Phage vB_KpnM_NB cocktail synergizing with amikacin in inhibiting persister cells of Klebsiella pneumoniae.

UNLABELLED: The emergence of multidrug-resistant Klebsiella pneumoniae (KPN) and antibiotic-tolerant persister cells poses a significant challenge to existing anti-infection therapies. Given the urgent need for sustainable alternatives to antibiotics, phage cocktails are emerging as a promising alternative to control K. pneumoniae infections. We isolated three lytic phages vB_KpnM_NB (1-3) from Ningbo environmental samples, classified them into the Drexlerviridae family, and determined the biological characteristics of two representative phages. Genomic analysis confirmed that these phages are closely related and lack resistance and virulence genes, ensuring biosafety. Subsequently, a stable KPN persister model was established using amikacin, with a biphasic killing pattern observed during treatment. At a multiplicity of infection of 10, the phage cocktail eliminated 99.00% of persister cells, while individual phages were less effective. The phage cocktail also inhibited persister-derived biofilm formation, showing improved results when combined with amikacin. This combination significantly reduced capsule polysaccharide production in persisters, weakening the outer membrane barrier. These findings demonstrate that the phage cocktail-amikacin combination effectively targets planktonic cells, persister cells, and biofilms, providing a promising strategy against persisters and recurrent K. pneumoniae infections. IMPORTANCE: This study fills the critical gap in understanding how phage cocktails synergize with amikacin against K. pneumoniae persister cells. By constructing a highly specific phage vB_KpnM_NB cocktail, establishing a stable persister model, and performing in vitro bactericidal and biofilm assays, we demonstrate that the cocktail effectively eliminates planktonic cells, persisters, and biofilms. We clarify the core synergistic mechanism: inhibiting capsular polysaccharide synthesis, improving phage adsorption, and disrupting the bacterial outer membrane barrier. These findings provide experimental evidence for the prevention and control of multidrug-resistant and carbapenem-resistant K. pneumoniae persister infections, establishing a safe and effective phage-antibiotic combination therapy. The results are crucial for addressing antibiotic tolerance and controlling chronic, recurrent infections. They hold significant theoretical and translational value for the treatment of refractory infections in clinical settings and offer new insights into the development of novel antimicrobial strategies.

Klebsiella pneumoniae

Identification, separation, and preliminary characterization of invertase and beta-galactosidase in Actinomyces viscosus.

The initial step of disaccharide dissimilation by Actinomyces viscosus serotype 2 strain M-100 was studied. Sucrase activity was found in the 3,000 X g particulate fraction and the 37,000 X g soluble fraction of the cells, whereas lactase activity was found almost exclusively in the 37,000 X g soluble fraction. Neither sucrase nor lactase activity was appreciable in the culture liquor. Sucrose phosphorylase, alpha-glucosidase, and polysaccharide synthesis activities were not observed in the soluble cell fraction. The sucrase was identified as invertase (EC 3.2.1.26; beta-D-fructofuranoside fructohydrolase). The lactase was identified as beta-galactosidase (EC 3.2.1.23; beta-D-galactoside galactohydrolase). The enzymes in the 37,000 X g soluble fraction were separable by diethylamino-ethyl-cellulose chromatography, giving one beta-galactosidase peak and one major and one minor invertase peak. Acrylamide gel electrophoresis showed different electrophoretic mobilities of the enzymes. The molecular weight of the beta-galactosidase is about 4.2 X 10(5) and that of invertase is about 8.6 X 10(4). The beta-galactosidase has a Km for lactose of about 6 mM and a pH optimum between pH 6.0 and 6.5. The major invertase component has a Km for sucrose of about 71 mM and a pH optimum between pH 5.8 and 6.3.

Actinomyces

Accurate serotype identification of Streptococcus pneumoniae using nanopore Cas9-targeted serotype identification (nCATSerotyping).

Streptococcus pneumoniae (pneumococcus) is a leading cause of community-acquired pneumonia and invasive diseases, particularly among children and the elderly. The introduction of pneumococcal conjugate vaccines has significantly reduced invasive pneumococcal disease, but the prevalence of non-vaccine serotypes and newly emerging serotypes is increasing globally. Thus, accurate serotyping is essential for epidemiological surveillance and the development of next-generation multivalent pneumococcal vaccines. Conventional serotyping methods, including multiplex polymerase chain reaction (mPCR), monoclonal antibody (mAb) assays, and Quellung reaction using rabbit antisera, are limited by serotype coverage and cross-reactivity, making the detection of new or emerging serotypes challenging. In this study, we developed a nanopore Cas9-targeted serotyping (nCATSerotyping) platform, which employs Cas9-mediated enrichment of the capsular polysaccharide synthesis locus followed by Oxford Nanopore sequencing. Applying this method to 276 clinical pneumococcal isolates collected in South Korea (2018-2020), we achieved a serotyping success rate of 97.10% (268/276), significantly outperforming conventional methods such as mAb and mPCR, which identified only 76.45% (211/276) of isolates. Whole-genome sequencing of the remaining eight non-typeable isolates revealed them to be non-pneumococcal (oral streptococci), confirming 100% accuracy for S. pneumoniae serotyping. Importantly, our method identified emerging and underrepresented serotypes, including serotype 13 and null capsule clade strains. nCATSerotyping offers a rapid, accurate, and comprehensive solution for pneumococcal serotyping, with significant advantages in identifying novel and non-typeable strains. This scalable platform will be a valuable tool for global serotype surveillance and next-generation multivalent pneumococcal vaccine development.IMPORTANCEAccurate pneumococcal serotyping is critical for vaccine development and epidemiological surveillance, particularly as non-vaccine serotypes emerge following widespread pneumococcal conjugate vaccine implementation. Current serotyping methods face significant limitations in coverage and accuracy, identifying around 76% of pneumococcal isolates and failing to detect emerging serotypes like serotype 13 and null capsule clades. The nanopore Cas9-targeted serotyping platform addresses these critical gaps by achieving 100% serotyping accuracy for confirmed Streptococcus pneumoniae isolates while identifying previously undetectable strains that conventional methods missed. This comprehensive approach is essential for monitoring vaccine effectiveness, understanding serotype replacement patterns, and informing next-generation vaccine development strategies. Furthermore, the identification of misclassified oral streptococci highlights the diagnostic precision needed for accurate pneumococcal surveillance, ensuring that epidemiological data accurately reflect true pneumococcal disease burden and serotype distribution patterns.

Streptococcus pneumoniae

By comparing the effects of Lactobacillus paracasei KL1 and BK56 strains on yogurt quality, the optimal consumption time for 2 compound fermented yogurts was determined.

This study investigated the effects of 2 Lactobacillus paracasei strains, KL1 and BK56, on the physicochemical properties, microstructure, texture characteristics, and sensory quality of a compound fermented yogurt system (GK107: L. paracasei KL1, Leuconostoc mesenteroides G12S, Chr. Hansen Commercial Starter Culture; G56107: L. paracasei BK56, L. mesenteroides G12S, Chr. Hansen Commercial Starter Culture), and further integrated genomic and metabolomic analyses to infer their shelf-life and optimal consumption period. The results showed that GK107 yogurt maintained stable quality throughout the 28-d storage period (at d 28: pH 4.07; titratable acidity 93.25 °T; exopolysaccharide content 0.31 g/L; water-holding capacity 53.05%; sensory score 83), and rapidly formed a stable gel structure that persisted for an extended duration. In contrast, the quality of G56107 yogurt deteriorated during the later stage of storage (at d 28: pH 4.0; titratable acidity 98.4 °T; exopolysaccharide content 0.31 g/L; water-holding capacity 51.3%; sensory score 67). Genomic analysis revealed that, compared with the L. paracasei KL1 strain, the L. paracasei BK56 strain carried loss-of-function mutations in multiple key genes associated with flavor synthesis, polysaccharide metabolism, and proteolysis, including alsS, prtP, glpO, AWC33_RS01450, AWC33_RS00855, AWC33_RS01070, and AWC33_RS01805. These mutations may have played a role in the gradual flavor deterioration, and weak post-acidification control observed in G56107 yogurt during prolonged storage. Based on the above results, it is reasonable to suggest that GK107 yogurt is suitable for long-term storage with an optimal consumption period of 14 to 28 d, whereas G56107 yogurt is more suitable for short-term storage and recommended for consumption within the first 14 d.

Genomics