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N Gilboa-Garber

Publications and source records attributed to N Gilboa-Garber.

At least 37 records · Page 2Linked to original sources

Pseudomonas aeruginosa PA-I lectin gene molecular analysis and expression in Escherichia coli.

This communication describes a Pseudomonas aeruginosa DNA fragment (cloned in lambda gt11) which contains the structural gene coding for the galactophilic PA-I lectin (pa-1L, 369 bp) and an additional downstream 237 bp sequence. This DNA is relatively rich in G + C (54%), and exhibits a strong codon preference biased for XXC and also for XXG. The Shine-Dalgarno site of the gene is preceded by an adjacent ATATAT sequence resembling the -10 sequence of the Escherichia coli promoter. The stop codons are followed by a stem and loop structure--typical of the rho-independent transcriptional stop element. This lambda gt11-cloned DNA was expressed in E. coli Y1090 cells. The resulting cell lysates exhibited a galactose-specific hemagglutination and a protein with electrophoretic mobility similar to that of the native PA-I, which were both absent from E. coli lysates infected with ovalbumin gene-bearing bacteriophages. The recombinant PA-I, purified by gel filtration and affinity chromatography, was shown to be a galactophilic hemagglutinin resembling the native lectin in molecular weight and selective reactivity with rabbit anti native PA-I serum. These results are important for development of a safe Pseudomonas aeruginosa vaccine using recombinant DNA techniques, thus avoiding contamination with toxic products of this bacterium.

Adhesins, Bacterial↗

PA-I and PA-II lectin interactions with the ABO(H) and P blood group glycosphingolipid antigens may contribute to the broad spectrum adherence of Pseudomonas aeruginosa to human tissues in secondary infections.

Pseudomonas aeruginosa may cause serious infections in most human tissues/organs. Its adherence to them is mediated by a battery of adhesins including the PA-I and PA-II lectins, which are produced in this bacterium in high quantities. PA-I binds to the D-galactose of the erythrocyte glycosphingolipids exhibiting highest affinities for B and Pk (followed by P1) antigens, while PA-II preferentially binds to the L-fucose of H, A and B antigens. Intact P. aeruginosa cells also exhibit a clear Pk and P1 over p preference. Such affinities for the most common human ABH and P system antigens may underlie the widespread tissue infectivity and pathogenicity of this bacterium.

ABO Blood-Group System↗

Analysis of the amino acid sequence of the Pseudomonas aeruginosa galactophilic PA-I lectin.

Based on the NH2-terminal 30-amino acid sequence of Pseudomonas aeruginosa galactophilic PA-I lectin, two degenerate primer oligonucleotides were synthesized and used in polymerase chain reaction with the bacterial chromosomal DNA as a template. A predominant DNA fragment of the appropriate size was radiolabeled and used as a probe for screening a P. aeruginosa genomic lambda gt11 library. One positive clone carrying an insert of about 630 base pairs encompassing the entire PA-I lectin gene was isolated and found to contain a 369-base pair open reading frame between an initiation codon (19 base pairs downstream from the insertion site, subsequent to a Shine-Dalgarno sequence) and two consecutive stop codons, followed by an oligo (seven) A sequence, in a partial dyad symmetry. The deduced amino acid sequence shows excellent agreement with the quantitative amino acid analysis and a perfect match with the NH2-terminal amino acid sequence of the purified lectin. It reveals that the PA-I lectin subunit contains 121 amino acids (M(r) 12,754; pI 4.94) with a predominant central hydrophilic core between two hydrophobic domains. Secondary structure algorithms predict that it is rich in beta sheets and contains several highly antigenic epitopes, but no signal peptide. In the carboxyl region a potential glycosylation site (Asn-Asn-Ser) was identified. Comparative analyses of this lectin sequence with those of lectins from other sources, reported in the protein and gene data banks, did not reveal any extensive homology.

Adhesins, Bacterial↗

On the specificity of the D-galactose-binding lectin (PA-I) of Pseudomonas aeruginosa and its strong binding to hydrophobic derivatives of D-galactose and thiogalactose.

The D-galactose-binding lectin (PA-I) from the bacterium Pseudomonas aeruginosa, isolated by affinity chromatography on Sepharose, was examined for its relative affinities for simple sugars and their derivatives using equilibrium dialysis and hemagglutination inhibition tests. The lectin, which was found to bind 0.68 mol of D-galactose per subunit of 12.8 kDa, exhibited an association constant (Ka) of 3.4 x 10(4) M-1 for D-galactose and higher affinities for hydrophobic and thio derivatives of D-galactose (with highest affinity for the hydrophobic thio derivatives). alpha-Methyl-galactoside was a stronger inhibitor than the beta-methyl derivative and alpha-lactose was a weak inhibitor but the hydrophobic phenylated derivatives of the beta-configuration of D-galactose were more potent inhibitors than the respective alpha-galactosides.

Galactose↗

Antitumoral effects of Pseudomonas aeruginosa lectins on Lewis lung carcinoma cells cultured in vitro without and with murine splenocytes.

Examination of the in vitro effects of PA-I and PA-II lectins of Pseudomonas aeruginosa on Lewis lung carcinoma cells revealed that these lectins differ in their effects. PA-I, the galactophilic lectin, exhibited both cytotoxic and cytostatic activities on these cells (tested by [3H]thymidine incorporation and by crystal violet vital staining). The two activities were dose and time dependent and inhibitable by the addition of methyl-alpha-D-galactoside to the culture medium. PA-II, the L-fucose and D-mannose binding lectin of the same Pseudomonas strain did not exhibit such a direct toxic effect on the tumor cells but affected them in the presence of splenocytes. Its addition to the tumor cells cocultured with murine (C57B1) splenocytes led to a profound cytolysis of the tumor cells, an effect which was inhibited by L-fucose.

Animals↗

Erythrina lectins detect the H/HI blood groups.

The lectin purified from Erythrina corallodendron seeds which binds N-acetyllactosamine greater than N-acetyl-D-galactosamine greater than alpha and beta galactosides greater than D-galactose was examined for its ABO(H) blood group specificity. It has been shown that this lectin causes the strongest hemagglutination of O(H) and weakest of Oh(Bombay) red blood cells, and interacts with the H antigen in association with the I antigen. The reactions of Erythrina corallodendron and Erythrina indica lectins (which are similar in sugar specificity) with erythrocytes of different ABO(H) and Ii blood groups (the I bloods were all from adults and the i from either cord or adult bloods) revealed the following order of activity: O(H)I greater than A2 I greater than O(H)i adult greater than A2BI greater than BI greater than O(H)i cord greater than A1I greater than A1i adult greater than Bi cord greater than A1BI greater than Ai cord greater than ABi cord greater than OhI. The Erythrina indica lectin showed a lower differentiation between the agglutination of O(H) and Oh erythrocytes. Both Erythrina lectins exhibited H/HI blood group preference but were not inhibited by the saliva from ABO(H) "secretors". Thus they may be classified with the Cytisus sessilifolius, Lotus tetragonolobus and Laburnum alpinum lectins which are inhibited by lactose but not by H blood group substances in secretions.

ABO Blood-Group System↗

Microbial lectin cofunction with lytic activities as a model for a general basic lectin role.

Lectins are ubiquitous proteins, which exhibit a specific and reversible sugar-binding activity. They react with glycosylated macromolecules and cells and may coaggragate them and lead to their lysis or alterations. Various lectin biological effects are well known, but their basic biological function is considered as yet unknown. In the present review, an experimental evidence and theoretical considerations are forwarded for supporting our suggestion that the general basic lectin or lectinoid (lectin-like protein) function in microorganisms, plants and animals is a cofunction enabling the activities of key lytic enzymes (lysins: glycosidases, proteases, esterases, phosphatases, hemolysin, etc.). The lectin service is: homing onto glycosylated receptors, anchoring to them and induction of cooperative conformational effects which enable their counterpart lysin activity on exogenous or endogenous target molecules and cells. The 'lectin-lysin' pair may reside in the same molecule, or in linked subunits. It may also be formed by cofunction of two separate entities originating from one or two (homogenous or heterogenous) cell sources. The lectin and lysin may be free or cell-bound components located intra or extracellularly. The final result of their cofunction is practically irreversible; either cell and macro-molecule lysis for nutrition, homeostasis and protection or cell alteration, reorganization and new productivity. Our suggestion emphasizes the prominent analogy of lectins to lytic enzyme positioning sites (LEPS), immunoglobulins and polypeptide hormones. The lectin analogy to LEPS and immunoglobulins is exhibited in the lectin-dependent cell and macromolecule lysis for nutritional and homeostatic purposes or for protection, respectively. The hormone-like lectin activity is exhibited in the lectin-dependent cell alterations. In addition to similar functions and effects, the analogy also includes the properties and behavior of these proteins. The suggested hypothesis is based on experimental evidence from microorganisms, plants and animals. It envisions the lectin and lectinoid function in cell attacks on glycosylated molecules or cells, cell-substratum and cell-cell interactions (fusion, invasion, etc.), cell transformation and formation of special structures. All of them according to a developmental program, or special (especially unfavourable) environmental conditions. The lectin resistance to proteolysis and unfavourable pH or temperature is in accord with the suggested hypothesis.

Animals↗

H blood group detection by the L-fucose binding lectin of the green marine alga Ulva lactuca.

Extracts of the green marine alga Ulva lactuca collected along the seashore of Tel-Aviv exhibit hemagglutinating activity towards papain-treated human erythrocytes. This hemagglutinating activity was shown to be inhibited by L-fucose and EDTA, and to be relatively resistant to heating at 60 degrees C, while sensitive to low pH. Like the lectin of Ulex europeus, the Ulva lectin exhibits blood group H specificity. It agglutinates most strongly erythrocytes of blood group 0(H) followed by B greater than A greater than AB. A2 and A2B erythrocytes are agglutinated by it considerably more strongly than A1 and A1B respectively. Bombay 0(hh) type erythrocytes are almost non-reactive. The lectin can be stored at -20 degrees C for years.

ABO Blood-Group System↗

Pseudomonas aeruginosa lectins as a model for lectin production, properties, applications and functions.

Pseudomonas aeruginosa is one of the most troublesome human pathogens in the antibiotic consuming era. It produces lectins and lectinoid adhesins as secondary metabolites. The production of these compounds is genetically determined and is highly sensitive to changing environmental conditions. These dictate the type of the lectin produced ["type" variation], the lectin level ["on-off" variation], and its localization ["in-out" variation]. PA-I [galactophilic] and PA-II [fucose and mannose-binding] P. aeruginosa lectins are sensitive to EDTA and exhibit biophysical properties, resembling those of classical plant lectins. They exert similar in vitro biological effects and have an equal applicative potential. Lectin deficient strains and mutants of P. aeruginosa may be used for studies on lectin role in "conditioning" the bacterium lytic and toxic activities in its attacks on cells or macromolecules. The Pseudomonas lectins confunction with lytic and toxic activities: We suggest that they serve the homing and "condition" the lytic enzyme optimal activity on cellular and macromolecular targets. Namely their role resembles that of "positioning sites" of lytic enzymes and "receptor-binding" domains of powerful microbial, plant and animal toxic or lytic systems [including immunoglobulins, which "condition" the lytic activities of complement and phagocytes], as well as certain hormones, which condition limited key lytic activities, and thereby trigger a cascade of metabolic reactions.

Animals↗

A new lectin-gold complex for ultrastructural localization of galacturonic acids.

We report the development of a cytochemical affinity technique for detection of galacturonic acids at the ultrastructural level. The highly purified gonad lectin from Aplysia depilans (AGL) was tagged with colloidal gold particles and used for labeling carbohydrates in resin-embedded sections of various plant and fungal tissues. Patterns of AGL binding sites were compared to those obtained with a D-galactose-specific lectin, Ricinus communis agglutinin I. Differences in labeling patterns were noted, indicating that the lectins exhibited differential carbohydrate binding. In addition, the considerable loss of labeling over isolated wheat coleoptile walls treated for removal of pectin, after incubation with the AGL-gold complex, strongly suggested an affinity of AGL for pectic substances. A series of cytochemical controls, including sugar inhibition tests, has proven the specificity of the technique and the high affinity of AGL towards galacturonic acids. The potential value of this new lectin for ultrastructural studies on cell wall pectic substances in plant biology and pathology is demonstrated.

Candida albicans↗

PA-II, the L-fucose and D-mannose binding lectin of Pseudomonas aeruginosa stimulates human peripheral lymphocytes and murine splenocytes.

Pseudomonas aeruginosa lectin PA-II agglutinates human peripheral lymphocytes and stimulates mitogenesis (predominantly in T cells), like the plant lectins PHA and Con A. Murine splenocytes are also agglutinated and stimulated by PA-II as by Con A. Sialidase treatment of the human and murine cells enhances their agglutination and augments the stimulation of human lymphocytes at low PA-II concentrations. The PA-II agglutinating and mitogenic effects are specifically inhibited by L-fucose. The bacterial source and the specificity of PA-II for L-fucose are both rare features among the hitherto described mitogenic lectins. However, since this lectin also binds mannose, a mannose-bearing receptor might be involved in its mitogenicity.

Adhesins, Bacterial↗

Stimulation of human peripheral lymphocytes and induction of interleukin 2 production by a lectin from the gonad of the sea hare, Aplysia fasciata.

The lectin from gonads of the sea hare, Aplysia fasciata, which reacts with D-galacturonic acid and D-galactose derivatives, was purified by affinity chromatography on Sepharose 4B. The purified lectin was shown to stimulate human peripheral blood lymphocytes and to induce interleukin 2 production like PHA. These activities were specifically inhibited by D-galactose and neutralized galacturonic acid (not by glucuronic acid). The rate of lymphocyte proliferation was similar at 72 and 96 hours in culture. The main stimulation was observed in the T lymphocyte population obtained by rosette formation with sheep red blood cells.

Animals↗

Interaction of lectins from gonads and haemolymph of the sea hare Aplysia with bacteria.

Gonads and haemolymph of two Mediterranean species of Aplysia (A. depilans and A. fasciata) contain lectins. A. depilans gonad lectin is specific for D-galacturonic acid and D-galactosides, while its haemolymph agglutinin binds N-acetylated sugars. A. fasciata gonad lectin is also specific for D-galacturonic acid, but its haemolymph haemagglutinin exhibits heterogenic specificity. Both Aplysia gonad lectin and haemolymph agglutinins interact with bacteria, including certain Escherichia coli strains, Bacillus subtilis, Pseudomonas aeruginosa strains and marine bacteria such as the light producing Vibrio harveyi and Photobacterium leiognathi, as well as marine bacteria cultured from the close environment of Aplysia.

Adsorption↗

Pseudomonas lectin PA-I detects hybrid product of blood group AB genes in saliva.

Pseudomonas aeruginosa galactophilic lectin PA-I exhibits an outstanding affinity for soluble hybrid oligosaccharide products of human A and B genes in saliva of heterozygous AB individuals. Neither A nor B salivas, nor an artificial mixture of them, inhibit PA-I hemagglutinating activity to the same extent as saliva from heterozygotes. Other lectins examined do not exhibit this property.

ABO Blood-Group System↗

Purification and characterization of the gonad lectin of Aplysia depilans.

Extracts of gonads and fertilized eggs of Aplysia depilans contain a D-galacturonic and D-galactose-binding lectin. This lectin reacts strongly with rabbit and human erythrocytes independent of ABO blood groups, weakly with dog, mouse, rat, and chick erythrocytes and not at all or very weakly with sheep erythrocytes. Purification of the gonad lectin was easily achieved, with a high yield, by heating to 70 degrees C, precipitation with ammonium sulfate and affinity chromatography on Sepharose 4B. The purified lectin was found to be a glucoprotein of molecular mass around 55-60 kDa; it stimulates mitogenesis of human peripheral lymphocytes.

Animals↗

Effect of Pseudomonas aeruginosa lectins on phagocytosis of Escherichia coli strains by human polymorphonuclear leucocytes.

The D-galactosephilic lectin of Pseudomonas aeruginosa (PA-I) agglutinates cells of E. coli O86B7, while its other lectin (PA-II) agglutinates E. coli O128B12 cells. Both lectins react with human peripheral leucocytes. Exposure of the human leucocytes to either of the two Pseudomonas lectins was found to depress their phagocytic activity towards E. coli O86B7 and O128B12 strains, as well as towards E. coli B cells, which are not agglutinated by the lectins. However, coating the E. coli O86B7 and O128B12 cells, respectively, with PA-I and PA-II lectins increased their phagocytosis by untreated human leucocytes. Control experiments in which E. coli O86B7 and O128B12 cells were exposed to PA-II and PA-I, respectively, did not lead to any increase in their phagocytosis.

Escherichia coli↗

Interactions of Pseudomonas aeruginosa lectins with Escherichia coli strains bearing blood group determinants.

Pseudomonas aeruginosa lectins interact with Escherichia coli strains O86B7 and O128B12, which possess B and H (O) blood group determinants, respectively. The interaction could be demonstrated by specific agglutination of the bacteria, by haemagglutination inhibition tests and by lectin-mediated peroxidase binding to the bacteria. The agglutination of E. coli O86B7 by the Pseudomonas galactose-binding lectin was inhibited by D-galactose and by the lipopolysaccharide extracted from E. coli O86B7. Similarly, the specific agglutination of E. coli O128B12 by the Pseudomonas mannose-binding lectin (which also binds L-fucose, L-galactose and D-fructose) was inhibited by D-mannose, L-fucose, L-galactose and D-fructose, as well as by athe lipopolysaccharide extracted from E. coli O128B12. The interaction between E. coli O128B12 and the Pseudomonas mannose-binding lectin was also demonstrated by lectin-mediated peroxidase binding to the bacterial surface. Peroxidase binding was also inhibited by the above-mentioned sugars and E. coli O128B12 lipopolysaccharide. Treatment of cells of the two E. coli strains with protein-denaturing agents did not reduce their agglutination by the Pseudomonas lectins. On the other hand, oxidation of the cell surface sugars by sodium metaperiodate or boiling the cells in the presence of 1% acetic acid for 1 h abolished their agglutination by the two lectins. It is, therefore, suggested that the Pseudomonas lectins interact with the B and H (O) blood group determinant sugars (D-galactose in E. coli O86B7 and L-fucose in E. coli O128B12) residing in the lipopolysaccharides of these E. coli strains.

ABO Blood-Group System↗