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Biomedical subjects

I Ofek

Publications and source records attributed to I Ofek.

At least 73 records · Page 4Linked to original sources

Membrane glycoproteins of human polymorphonuclear leukocytes that act as receptors for mannose-specific Escherichia coli.

Type 1 fimbriated (mannose-specific) Escherichia coli cells bind to mannose residues on human polymorphonuclear leukocytes (PMN); this leads to phagocytosis of the bacteria. To identify the mannose-containing receptors on the PMN, the cells were surface labeled with 125I and lysed in 0.5% Nonidet P-40, and the lysate was fractionated by affinity chromatography on a column of Sepharose-bound fimbriae. Analysis by sodium dodecyl sulfate-polyacrylamide gel electrophoresis and autoradiography of the material eluted from the column with 500 mM methyl-alpha-mannoside revealed two radioactive bands of Mr 70,000 to 80,000 (gp70-80) and 100,000 (gp100). Another weak band of Mr 150,000 (gp150) was observed after prolonged exposure of the gel. Upon blotting of the glycoproteins separated by polyacrylamide gel electrophoresis and overlaying of the blots with concanavalin A, gp150 appeared as the major band. Membrane preparations of the PMN were enriched in gp70-80, gp100, and gp150, in comparison with the cell homogenates, further suggesting that these glycoproteins are surface components. Fractionation of the membrane preparations on the immobilized fimbriae followed by concanavalin A overlay of blots of the methyl-alpha-mannoside-eluted material revealed that gp150 was the major component in this fraction. The eluted fraction, obtained from a cell lysate (4.4 micrograms/ml), inhibited by 70% the agglutination of yeasts by the intact bacteria. Our results suggest that the three surface glycoproteins isolated by us serve as receptors for mannose-specific E. coli on PMN and may be involved in the lectin-mediated phagocytosis of the bacteria.

Bacterial Adhesion↗

Growth advantage and enhanced toxicity of Escherichia coli adherent to tissue culture cells due to restricted diffusion of products secreted by the cells.

This study was undertaken to examine whether Escherichia coli adherent to tissue cells gain advantages over nonadherent bacteria due to their proximity to the cells. We used tissue culture cells and isogenic derivatives of a proline auxotrophic strain of E. coli that were fimbriated (Fim+) or nonfimbriated (Fim-), and were heat-labile enterotoxin producing (Tox+) or toxin nonproducing (Tox-). We found that the Fim+ bacteria; which were capable of adhering to tissue culture cells, initiated growth much sooner than did nonadherent Fim- bacteria; the adherent bacteria used tissue cell-derived proline, which was available at high concentrations only in the zone of bacterial adherence. Likewise, cyclic AMP secreted by adherent (Fim+) bacteria was maintained at high concentration on the tissue cell surfaces. As few as 2 X 10(5) adherent Fim+ Tox+ bacteria exert toxic activity upon Y1 adrenal cells, whereas toxin secreted in the medium by 6 X 10(6) Fim- Tox+ bacteria was undetectable. The results suggest that the growth advantage and enhanced toxicity of adherent E. coli is due to restricted diffusion of products secreted by the tissue culture and bacterial cells, respectively.

Adrenal Glands↗

Infant mouse model of adherence and colonization of intestinal tissues by enterotoxigenic strains of Escherichia coli isolated from humans.

The ability of enterotoxigenic Escherichia coli H10407, which possesses colonization factor antigen I, to colonize the intestinal mucosa of infant mice was considerably better than that of its colonization factor antigen I-negative derivative H10407-P. The latter strain previously was shown to lack cell adhering ability in vitro and to have a diminished capacity to infect human volunteers as compared with the parent strain. D-Mannose blocked both colonization by an enterotoxigenic E. coli isolate (801) possessing both mannose-resistant and mannose-sensitive adhesins and the in vitro adherence of the strain to intestinal segments of infant mice. A derivative of another enterotoxigenic E. coli strain (lacking both mannose-sensitive and mannose-resistant adhesins obtained by in vivo passage showed a significant increase in colonizing ability in comparison with the parent strain. We conclude that the infant mouse model of infection of intestinal mucosa complemented by in vitro adherence assays with excised intestinal tissue is suitable for the study of the bacterial properties responsible for the various stages of intestinal colonization by human enterotoxigenic E. coli.

Adhesiveness↗

Binding of Streptococcus pyogenes to soluble and insoluble fibronectin.

The interaction of soluble and insoluble fibronectin with Streptococcus pyogenes was investigated. Soluble fibronectin bound to S. pyogenes in a dose-dependent and irreversible manner. Lipoteichoic acid competitively inhibited the binding of fibronectin to S. pyogenes but had little effect on the binding of fibronectin to staphylococci or pneumococci. The phase of growth of the streptococci had a slight effect on binding of fibronectin, with optimal binding occurring in the late log phase. S. pyogenes cells bound to fibronectin immobilized on microtiter plates in a dose-dependent and saturable manner. Both soluble fibronectin and lipoteichoic acid inhibited the binding of streptococci to immobilized fibronectin, suggesting that streptococci interact with soluble and insoluble fibronectin in a similar manner. Antibodies to fibronectin blocked the attachment of streptococci to immobilized fibronectin, whereas normal serum had no effect. Adherence of streptococci to buccal epithelial cells was inhibited by antibodies to fibronectin, but not by normal sera or by antibodies to buccal epithelial cells. The data suggest that lipoteichoic acid on the surface of S. pyogenes binds to fibronectin exposed on the host cell and that such binding mediates the attachment of streptococci to host cells.

Adhesiveness↗

Enzyme-linked immunosorbent assay for adherence of bacteria to animal cells.

Epithelial cells scraped from human oral mucosa and from pig intestines were immobilized onto the flat bottom surfaces of microtiter plates to study the adherence of various bacterial species to host cells. Bacterial adherence was quantitated either by an enzyme-linked immunosorbent assay technique with specific antibacterial serum as the first antibody followed by peroxidase-conjugated second antibody or by using biotinylated bacteria and avidin-peroxidase as the detecting agent. Unlabeled Escherichia coli and purified E. coli 987P fimbriae inhibited the adherence of biotinylated E. coli to immobilized enterocytes. The adherence of a mannose-sensitive strain of E. coli to immobilized oral epithelial cells was inhibited by mannose derivatives. The adherence of fimbriated E. coli 987P to immobilized enterocytes was approximately four times higher than the adherence of a nonfimbriated variant of the same strain. The adherence of Streptococcus pyogenes to oral cells was detected in the range of 10 to 150 bacteria per cell and was inhibited by lipoteichoic acid and albumin. The data suggest that the putative receptors which bind bacteria on the immobilized cells retain a functional form similar to that of native cells in suspension. The proposed adherence assay is easy to perform, allows the detection of specific adherence of test bacteria, and provides objective quantitation of adherence with a sensitivity of 10 bacteria per cell. Most importantly, the assay allows the testing of many variables in the same day.

Animals↗

Human plasma fibronectin inhibits adherence of Streptococcus pyogenes to hexadecane.

The effect of human plasma fibronectin on the adherence of Streptococcus pyogenes to hexadecane droplets was investigated. Fibronectin blocked the adherence of streptococci to hexadecane in a dose-dependent manner. The inhibitory effect resulted from the binding of fibronectin to the streptococcal cells; radiolabeled fibronectin failed to bind to the hexadecane but bound readily to untreated streptococci. Chemical treatments of streptococci that decreased streptococcal binding of fibronectin also decreased their binding to hexadecane. Pretreatment of fibronectin with lipoteichoic acid blocked the binding of fibronectin to streptococci and abolished its ability to inhibit streptococcal adherence to hexadecane in a dose-related manner. In contrast, wheat germ agglutinin, which binds to N-acetylglucosamine on the surface of S. pyogenes cells, failed to alter hexadecane adherence. The data suggest that fibronectin binds to lipoteichoic acid on the surface of the streptococci, thereby preventing lipoteichoic acid from interacting with the hexadecane phase.

Alkanes↗

Role of fibronectin in attachment of Streptococcus pyogenes and Escherichia coli to human cell lines and isolated oral epithelial cells.

We studied the binding of cells of Streptococcus pyogenes and mannose-sensitive Escherichia coli to human fibroblast cell lines and isolated buccal epithelial cells in relation to the cell-associated endogenous or exogenous fibronectin of the host cells. The degree of bacterial binding to cell lines correlated directly with the content of endogenous fibronectin on the surface of the cultured cells, although the correlation was better with S. pyogenes than with E. coli. The addition of exogenous plasma fibronectin to the cell lines or oral epithelial cells enhanced binding of S. pyogenes but suppressed binding of mannose-sensitive E. coli. These findings are consistent with the notion that exogenously acquired fibronectin on the surface of host cells modulates bacterial adherence by providing attachment sites for certain pathogens, such as S. pyogenes, and by blocking receptors for others, such as mannose-sensitive E. coli.

Adhesiveness↗

Population shift in mannose-specific fimbriated phase of Klebsiella pneumoniae during experimental urinary tract infection in mice.

The infection rate (percentage of mice shedding 10(5) organisms per ml of urine) in 27 mice infected intravesicularly with a mannose-specific (MS+) phenotype of Klebsiella pneumoniae was 85% at day 7, and all the bacteria shed during the 7 days exhibited strong MS activity as estimated by a yeast aggregation assay. In contrast, the outcome of infection with an MS- phenotype of the same strain in 47 mice was heterogeneous: one group of 25 mice continued to shed the originally injected phenotype (MS-) throughout the investigation period, whereas the second group (22 mice) shed bacteria with various degrees of phenotypic conversion to MS+. In the first group, the rate of infection at day 7 was significantly reduced (28%) compared with that of the second group (68%). Mice infected with a mixture of 5% MS+ bacteria and 95% of an MS- variant which lost its ability to undergo phase variation had an infection rate of 89%, but at day 7 95% of the excreted bacteria were MS+. The infection rate of mice injected with the MS- variant was 14%, and none of the mice shed MS+ bacteria. The incidence of kidney pathology was higher in mice inoculated with the MS+ phenotype (3 of 10) or in the group in which the MS+ overgrew the MS- phenotype (4 of 10) as compared with the group of mice in which no such shift occurred (1 of 11). The kidneys of four mice which excreted mostly MS+ organisms harbored a population predominantly of the MS- phenotype. These results suggest that the MS adhesin confers an advantage in the initial steps of the infectious process in the bladder but not in later stages of infection in the kidney, emphasizing the importance of phase variation in the survival of bacteria at the various stages of the infectious process.

Adhesiveness↗

Inhibition of blood clearance and hepatic tissue binding of Escherichia coli by liver lectin-specific sugars and glycoproteins.

The effects of sugars and glycoproteins that are known to bind to lectins of liver tissue on the clearance of cells of Escherichia coli from mouse blood was investigated. The administration of 100 mg per mouse of methyl-alpha-D-mannoside, methyl-alpha-D-glucoside, or methyl-alpha-D-fucoside, but not of methyl-alpha-D-galactoside or L-rhamnose, markedly inhibited the blood clearance of cells of E. coli 346. Clearance was similarly inhibited by 0.1 and 1.0 mg per mouse of asialofetuin or ovalbumin, respectively, whereas fetuin had no effect. The inhibitory effects of the sugars on blood clearance was abolished by pretreating the E. coli cells with antibodies against whole organisms. All of these effects were equal for fimbriated and nonfimbriated phenotypes of E. coli 346. Homogenates of mouse liver tissue coaggregated with nonfimbriated cells of E. coli. The aggregation was blocked by 100 mM solutions of methyl-alpha-D-mannoside, or methyl-alpha-D-glucoside, 1 mg of bacterial lipopolysaccharide per ml, or 10 mM EDTA but not by L-rhamnose. These results suggest that the mannose-N-acetylglucosamine hepatic lectin recognizes specific sugars on the surface of E. coli and may be centrally involved in the nonimmune clearance of nonfimbriated E. coli from the blood of the infected host.

Animals↗

Carbohydrate-binding sites of the mannose-specific fimbrial lectins of enterobacteria.

The combining sites of type 1 fimbrial lectins of various species of enterobacteria were studied by measuring the inhibitory activity of linear and branched oligosaccharides and several glycosides of D-mannose on the agglutination of yeast cells by the organisms. The results showed that all five strains of Escherichia coli tested possessed an elongated combining site best fitting a trisaccharide and including a hydrophobic region. Similar results were obtained with Klebsiella pneumoniae. Within the Salmonella genus, the combining sites of the six species tested were similar, but all differed significantly from those of the E. coli strains. The combining sites of Enterobacter cloacae and Enterobacter agglomerans were different from each other and from those of Salmonella sp. and E. coli. The results suggest that although classified under the general term "mannose-specific," bacterial lectins in the form of type 1 fimbriae on different genera exhibit differences in sugar specificities.

Binding, Competitive↗

Carbohydrate specificity of the surface lectins of Escherichia coli, Klebsiella pneumoniae, and Salmonella typhimurium.

A large number of linear and branched oligosaccharides and several glycosides of D-mannose were tested for their inhibitory activity on the agglutination of yeast cells or guinea pig erythrocytes by three D-mannose-specific enteric bacteria possessing type 1 fimbriae. With Escherichia coli 346, the best inhibitors found are the alpha glycosides of the branched oligosaccharides alpha-D-Manp-(1 leads to 3)-[alpha-D-Manp-(1 leads to 6)]-alpha-D-Manp-(1 leads to 6)-alpha-D-Manp-(1 leads to 3)-D-Manp and alpha-D-Manp-(1 leads to 3)-[alpha-D-Manp-(1 leads to 6)]-alpha-D-Manp- (1 leads to 6)-[alpha-D-Manp-(1 leads to 2)-alpha-D-Manp-(1 leads to 3) ]-D-Manp and the trisaccharide alpha-D-Manp-(1 leads to 3)-beta-D-Manp-(1 leads to 4)-D-GlcNAc, all of which are 21-30 times more inhibitory than methyl alpha-D-mannopyranoside. The aromatic glycoside p-nitrophenyl alpha-D-mannopyranoside was also a strong inhibitor (30 times more inhibitory than methyl alpha-D-mannopyranoside), whereas the corresponding beta-D-glycoside was only a weak inhibitor (approximately as methyl alpha-D-mannopyranoside). A nearly identical pattern of inhibitory activity was observed with the fimbriae. This suggests that the combining site of the E. coli fimbrial lectin is in the form of an extended pocket on the surface of the lectin corresponding to the size of a trisaccharide and fitting best the structure alpha-D-Manp-(1 leads to 3)-beta-D-Manp-(1 leads to 4)-D-GlcNAc. Since p-nitrophenyl alpha-D-mannopyranoside is a strong inhibitor, the existence of a hydrophobic region in the combining site or close to it was assumed. The combining site of the Klebsiella pneumoniae fimbrial lectin is probably similar to that of E. coli, but that of the Salmonella typhimurium fimbrial lectin differs considerably. It appears that the combining sites of the three bacterial lectins tested exhibit preference for structures found in N-glycosylic oligomannoside units of mammalian cell surface glycoproteins.

Agglutination↗

Rapid identification of Streptococcus pyogenes by flow cytometry.

Flow cytometry combined with immunofluorescence of Streptococcus pyogenes was used to assay bacteria suspended in buffer solution and in saliva derived from throat swabs of healthy volunteers. The method allowed the enumeration of as few as 5 X 10(3) and 5 X 10(4) CFU per milliliter of buffer and saliva respectively. Controls including Streptococcus salivarius instead of Streptococcus pyogenes or buffer instead of specific antibodies confirmed the specificity of the detection of Streptococcus pyogenes in the samples. The results suggest that flow cytometry may serve as a basis for an automated reliable method for the diagnosis of streptococcal infections.

Culture Media↗

Enhancement of mannose-mediated stimulation of human granulocytes by type 1 fimbriae aggregated with antibodies on Escherichia coli surfaces.

In the present study, we assayed protein iodination in human granulocytes after interaction of the cells with mannose-specific (MS) type 1 fimbriated (MS+) and nonfimbriated (MS-) phenotypes of Escherichia coli pretreated with various amounts of anti-E. coli and antifimbrial antibodies. The MS+ phenotype stimulated protein iodination in granulocytes and possessed potent MS activity as measured by yeast aggregometry. In contrast, the MS- phenotype lacked all these activities. MS+ pretreated with moderate concentrations of antibodies, however, showed up to a 15-fold increase in granulocyte stimulation as compared to granulocyte stimulation induced by the non-antibody-treated MS+ phenotype or by the antibody-treated MS- phenotype. This marked antibody-mediated increase in stimulation of granulocytes was (i) dependent on the antibody concentrations, (ii) markedly reduced by methyl-alpha-D-mannoside, (iii) caused by immunoglobulin G as well as by F(ab')2, (iv) caused only by antifimbrial antibodies, (v) associated with cross-linked fimbriae seen as "bundles" under an electron microscope, and (vi) mimicked by treating MS+ bacteria with a certain range of glutaraldehyde. The data taken together support the hypothesis that, although cross-linking of fimbriae reduced the density of functional MS fimbriae over the surface of antibody-treated bacteria and consequently reduced the ability of these organisms to agglutinate yeast cells, the resulting bundles of MS fimbriae were far more effective at stimulating granulocytes because, bound together, they were better equipped to aggregate the mannose-containing receptors on the granulocyte surface.

Antibodies, Bacterial↗

Hydrophobic interactions of group A streptococci with hexadecane droplets.

The adherence of Streptococcus pyogenes cells to hexadecane droplets was measured by vortexing water suspensions of streptococci with hexadecane. It was found that adherence of the organisms to hexadecane droplets was abolished by pretreating the organisms with trypsin, pepsin at pH 4.5, or HCl solutions at 95 degrees C. Streptococcal adherence was best expressed in organisms harvested during the stationary phase of growth and was inhibited by fatty acid-free albumin because of the interaction of the protein with the streptococcal surfaces. The data suggest that adherence to hexadecane droplets measures the availability on the surface of S. pyogenes cells of lipophilic residues that are either hydrophobic regions of surface protein structures or, more likely, glycolipids complexed with and oriented by surface proteins.

Adhesiveness↗

Formation of molecular complexes between a structurally defined M protein and acylated or deacylated lipoteichoic acid of Streptococcus pyogenes.

The orientation of lipoteichoic acid (LTA) molecules on the surface of bacterial cells undoubtedly is determined by the ability of the LTA, during its transit through the cell wall, to bind via its polyglycerophosphate backbone or its glycolipid moieties to other constituents of the cytoplasmic membrane and the cell wall. We have investigated the possibility that LTA may become anchored to the cell surface by binding through its polyanionic backbone to positively charged regions of cell wall proteins. LTA was found to prevent the precipitation of partially purified HCl extracts of several strains of streptococci as well as a structurally defined streptococcal M protein molecule (pep M24) in 83% solutions of ethanol. The formation of complexes between LTA and M protein was demonstrated further by immunoelectrophoresis of pep M24 protein with increasing concentrations of radiolabeled LTA and by using antiserum against pep M24 to develop precipitin arcs. Pep M24 electrophoresed alone produced a single precipitin arc close to the origin. In contrast, when electrophoresed as a mixture with LTA or deacylated LTA, the M protein produced a second precipitin arc toward the anode coinciding with the area of migration of the radioactive LTA. Increasing concentrations of LTA or deacylated LTA shifted increasing amounts of the pep M24 antigen to the region of the second arc. Maleylation of M protein to block the positively charged free amino groups before mixing it with LTA prevented the formation of complexes. The complexes formed by the M protein with LTA, but not with deacylated LTA, showed the capacity to bind bovine serum albumin; LTA had been shown previously to bind to the fatty acid binding sites on bovine serum albumin. These results indicate that the LTA molecule is able to bind via its polyanionic backbone to positively charged residues of surface proteins of cells of S. pyogenes. The implications of such interaction as to the orientation of LTA molecules on the surface of cells of S. pyogenes are discussed.

Acylation↗

Adherence of Candida albicans to human vaginal epithelial cells: inhibition by amino sugars.

In vitro adherence of Candida albicans to human vaginal epithelial cells was studied, aimed at identifying the surface components involved in this binding. The inhibitory effect of yeast cell wall components and their constituents on the adherence of yeasts to epithelial cells was tested. Only chitin, its hydrolysate derivative and N-acetylglucosamine, the constituent of chitin, acted as inhibitors. Binding was also inhibited by the amino sugars glucosamine and mannosamine, while none of the other sugars tested (methylated or nonmethylated) exhibited such an effect. These data suggest that the amino groups of sugars are responsible for the inhibition of adherence of this eucaryotic microorganism to epithelial cells.

Acetylglucosamine↗