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B H Iglewski

Publications and source records attributed to B H Iglewski.

At least 19 recordsLinked to original sources

Structure-function analysis of exotoxin A proteins with mutations at histidine 426.

Substitution of Tyr for His-426 of Pseudomonas aeruginosa exotoxin A results in a mutant protein with reduced ADP-ribosyltransferase activity (M. J. Wick and B. H. Iglewski, J. Bacteriol. 170:5385-5388, 1988). To investigate the role of His-426 in enzymatic activity, oligonucleotide-directed mutagenesis was used to construct mutant proteins encoding Ala, Glu, Gly, Lys, or Pro at position 426. The effect of these amino acid substitutions on ADP-ribosyltransferase activity was analyzed in 34,000-Da carboxy-terminal exotoxin A peptides (H426n peptides). ADP-ribosyltransferase activity of the H426n peptides fell within a range between 0.002 and 28% of wild-type levels of activity, suggesting that His-426 is required for full expression of enzymatic activity of exotoxin A. To investigate a possible catalytic function of His-426, the abilities of full-size (66,000-Da) wild-type exotoxin A and mutant proteins encoding either Ala-426 or Tyr-426 to hydrolyze NAD were compared by measuring NAD-glycohydrolase activity. This analysis revealed that exotoxin A encoding either Ala-426 or Tyr-426 expressed less than 1% of wild-type levels of NAD-glycohydrolase activity. Several criteria, including differential enzymatic activation properties and unique tryptic digestion patterns, revealed that the wild-type and mutant full-size proteins exhibit conformational differences. Our data suggest that His-426 plays a critical structural role in establishing the molecular architecture of the catalytic site in domain III and is important in orienting active-site residues in the cleft.

ADP Ribose Transferases

Cloning and sequence analysis of a trans-regulatory locus required for exoenzyme S synthesis in Pseudomonas aeruginosa.

Exoenzyme S is an ADP-ribosyltransferase enzyme distinct from exotoxin A that is synthesized and secreted by Pseudomonas aeruginosa. Yields of exoenzyme S are variable and depend on strain and growth conditions. Since certain medium additives are required for exoenzyme S production, its regulation may be influenced by environmental stimuli. In this study, we have cloned a region that complements the exoenzyme S-deficient phenotype of strain 388 exs1::Tn1, a chromosomal Tn1 insertional mutation. A large clone (28 kb) was shown to restore both synthesis and secretory functions to the mutant strain. Subcloning and Tn501 mutagenesis experiments localized the region required for exoenzyme S synthesis to a 3.2-kb fragment. Nucleotide sequence analysis demonstrated several open reading frames. Comparison of the N-terminal amino acid sequence of purified exoenzyme S with predicted amino acid sequences of all open reading frames indicated that the structural gene was not encoded within the sequenced region. Homology studies suggested that the region encoded three regulatory genes, exsC, exsB, and exsA. ExsA was homologous to the AraC family of transcriptional activator proteins, with extensive homology being found with one member of this family, VirF of Yersinia enterocolitica. VirF and ExsA both contain carboxy-terminal domains with the helix-turn-helix motif of DNA-binding proteins. The ExsA gene product appeared to be required for induction of exoenzyme S synthesis above a low basal level. Expression of ExsA was demonstrated by cloning the region under the control of the T7 promoter. Gene replacement experiments suggested that the expression of ExsC affects the final yield of exoenzyme S.

ADP Ribose Transferases

Effects of pseudomonas toxin A, diphtheria toxin, and cholera toxin on electrical characteristics of turtle bladder.

Rapidly developing changes in the short-circuiting current (Isc), conductance (G), and potential (PD) of turtle bladders in Na-rich or Na-free media are seen after the mucosal addition, at 10 nM, of each of three toxins that contain ADP-ribosylation activity: Pseudomonas aeruginosa toxin A, diphtheria toxin, and cholera toxin. Toxin A irreversibility decreased the Isc, PD, and G of bladders in Na-rich media and the Isc and PD of bladders in Na-free media. Diphtheria or cholera toxin reversibly increased Isc and PD (not G), but only in Na-free media. The effects of toxin A in the turtle bladder, like those in other host cell systems, were eliminated by preexposure of this toxin to heat, specific antitoxin, or dithiothreitol and urea. Because exposure to this last condition increases the ADP-ribosylation activity of toxin A, it is suggested that the proenzyme is the required transport-inhibiting form of toxin A. The effects of all three toxins occurred rapidly, possibly before any of the possible intracellular ADP-ribosylation reactions are initiated. Whereas a recognition binding of toxin of toxin to receptors on the apical membrane completely accounts for the reversible effects of diphtheria or cholera toxin, this and additional toxin-membrane interactions (e.g., translocation) are needed to account for the irreversible effects of toxin A.

Animals

Production of exoenzyme S during Pseudomonas aeruginosa infections of burned mice.

Antisera which distinguished between Pseudomonas aeruginosa exoenzyme S and toxin A neutralized the adenosine diphosphate ribosyl transferase activity of the homologous, but not the heterologous, enzyme. Skin extracts and sera from burned mice infected with the exoenzyme S-producing strain P. aeruginosa 388 contained adenosine diphosphate ribosyl transferase activity that was not found in skin extracts or sera from uninfected mice. On the basis of immunological reactivity and enzymatic properties, the adenosine diphosphate ribosyl transferase activity present in skin extracts and sera from P. aeruginosa 388-infected mice was identified as exoenzyme S. Active elongation factor 2 levels in tissues from strain 388-infected mice were normal at 24 h postinfection, indicating that strain 388 does not produce detectable amounts of toxin A in vivo. An unexpected finding in this investigation was the presence of exoenzyme S-inactivating activity in the sera from some nonimmunized animals.

Animals

Influence of iron on yields of extracellular products in Pseudomonas aeruginosa cultures.

The effect of the iron content of the medium on the yields of extracellular products by seven distinct strains of Pseudomonas aeruginosa was examined. All strains showed at least an 85% decrease in toxin A yields when grown in medium containing 5.0 mug of iron per ml (high iron) as compared to 0.05 mug/ml (low iron), whereas bacterial growth increased approximately twofold. During the course of examining extracellular products produced by P. aeruginosa, we found many strains that produced an extracellular factor which agglutinated erythrocytes. This hemagglutinin was nondialyzable, heat stable, and resistant to Pronase and trypsin. The effect of iron on extracellular yields of hemagglutinin was strain dependent; four of seven strains showed decreases in hemagglutinin yields in high-iron medium. Similarly, the effect of increasing the iron concentration of the growth medium on yields of total extracellular proteases or on elastase was strain dependent. The amount of total extracellular protein was decreased by at least 31% in the high-iron medium for all strains of P. aeruginosa examined. Detailed studies on one strain (WR-9) showed that, in the presence of increasing amounts of iron in the medium, the extracellular yields of toxin A, protease, and hemagglutinin were decreased in a similar manner. In addition, the kinetics of release of these extracellular products were similar at a given iron concentration. Thus it appears that the yields of other extracellular products of P. aeruginosa besides toxin A are influenced by the concentration of iron in the growth medium.

Agglutinins

Pseudomonas aeruginosa exoenzyme S: an adenosine diphosphate ribosyltransferase distinct from toxin A.

Pseudomonas aeruginosa exoenzyme S is an adenosine diphosphate ribosyltransferase distinct from Pseudomonas toxin A. Exoenzyme S catalyzes the transfer of radioactivity from all portions of radiolabeled NAD+ except nicotinamide. Digestion of the radiolabeled product(s) formed in the presence of [adenine-14C]NAD+ and exoenzyme S with snake venom phosphodiesterase yields only AMP, suggesting that ADP-ribose is present as monomers and not as poly(ADP-ribose). Exoenzyme S does not catalyze the transfer of ADP-ribose from NAD+ to elongation factor 2, as do toxin A and diphtheria toxin, but to one or more other proteins present in crude extracts of wheat germ or rabbit reticulocytes and in partially purified preparations of elongation factor I. The ADP-ribosyltransferase activity of exoenzyme S is distinct from toxin A by several tests: it is not neutralized by toxin A antibody, it is destroyed rather than potentiated by pretreatment with urea, and it is more heat stable. These latter observations and the substrate specificity suggest that exoenzyme S is different from any previously described prokaryotic ADP-ribosyltransferase.

Adenosine Diphosphate Sugars

Mechanism of action of Pseudomonas aeruginosa exotoxin A in experimental mouse infections: adenosine diphosphate ribosylation of elongation factor 2.

The data presented indicate that one of the primary actions of Pseudomonas aeruginosa exotoxin during experimental infection is the inactivation of elongation factor 2 (EF-2) in various mouse organs. Organs from mice infected with the toxigenic P. aeruginosa strain PA103 contained considerably less EF-2 activity than did organs from uninfected controls. Whereas EF-2 activity was reduced in all organs examined from PA103-infected animals, the largest decrease was observed in the liver, where the active EF-2 levels were reduced by 70 to 90%. In addition, consistent inhibition of protein synthesis in livers but not in other organs was observed in mice infected with the toxigenic PA103 strain. Treatment of mice with antitoxin before infection with strain PA103 prevented inactivation of EF-2. When mice were infected with lethal doses of the nontoxigenic P. aeruginosa WR5 strain, tissue EF-2 levels were not markedly reduced below those derived from uninfected control animals.

Adenosine Diphosphate

Effect of iron on yields of exotoxin A in cultures of Pseudomonas aeruginosa PA-103.

The yields of exotoxin A in Pseudomonas aeruginosa cultures were influenced by the concentration of iron in the culture media. When the iron concentration of the culture media was increased from 0.05 to 1.5 microgram/ml, there was at least a 90% decrease in exotoxin A (measured both by enzymatic activity and by mouse lethality) and a slight increase in the growth of the bacteria. The addition of iron as late as 13 h after initiation of growth repressed further measurable increases of exotoxin A within 3 h. Intracellular toxin levels were also reduced by increasing the iron concentrations of the culture media. The addition of 3.0 microgram of iron per ml did not significantly alter either the enzyme activity of preformed crude or purified exotoxin A or the mouse toxicity of the pure toxin. Thus it appears that either the rate of production or the rate of intracellular degradation of exotoxin A is regulated by the concentration of iron in the culture media.

Bacterial Toxins

Mechanism of action of Pseudomonas aeruginosa exotoxin Aiadenosine diphosphate-ribosylation of mammalian elongation factor 2 in vitro and in vivo.

Previous studies showed that Pseudomonas aeruginosa exotoxin A (PA toxin) catalyzes nicotinamide adenine dinucleotide (NAD)-dependent inhibition of protein synthesis in a rabbit reticulocyte lysate and transfer of radioactivity from [14C]adenine-labeled NAD to a protein having the same molecular weight as elongation factor 2 (EF-2) (B.H. Iglewski and D. Kabat, 1975). Such an inhibited protein-synthesizing lysate was restored to activity by addition of a protein from normal mouse liver which co-purifies with EF-2. In addition, EF-2 activity was almost totally absent in livers of mice which had been injected 24 h earlier with PA toxin. On the contrary, EF-2 concentrations were only partially reduced in other organs and were normal in brains of intoxicated mice. Studies using NAD labeled in various positions show that PA toxin, like fragment A of diphtheria toxin, catalyzes transfer of the adenosine 5'-diphosphate-ribosyl moiety of NAD. Furthermore, reversal occurred when the modified protein was incubated with excess concentrations of PA toxin and nicotinamide, and NAD was identified as a product of the reverse reaction. The protein modification catalyzed either by PA toxin or by fragment A of diphtheria toxin could be reversed by incubation with other toxin. These results support the proposal that these two toxins adenosine 5'-diphosphate-ribosylate and same amino acid of EF-2 in a stereochemically identical fashion. Furthermore, PA toxin inactivates EF-2 in intoxicated mice to an extent which would ultimately result in death.

Adenosine Diphosphate

Structure-activity relationships of an exotoxin of Pseudomonas aeruginosa.

The relation of the structure of Pseudomonas aeruginosa exotoxin A (PA toxin) to its enzymatic activity (adenosine 5'-diphosphate-ribosyl transferase) in vitro and to its toxicity in vivo was examined. PA toxin is produced as a single polypeptide chain with a molecular weight of about 71,500. PA toxin is produced by Pseudomonas as a toxic proenzyme that lacks enzymatic activity. Adenosine 5'-diphosphate-ribosyl transferase activity is expressed when the molecule is denatured and reduced or when its is cleaved by Pseudomonas proteases to yield an enzymatically active 27,000-dalton fragment (fragment a). A 45,000-dalton protein is tentatively identified as the enzymatically inactive fragment b of PA toxin. Enzymatically active forms of the toxin lack toxicity for mouse L-cells or mouse lethality. Thus, it is concluded that the native toxin proenzyme is required for toxicity and that a structural rearrangement must precede its intracellular activity.

Electrophoresis, Polyacrylamide Gel

Incidence of exotoxin production by Pseudomonas species.

Pseudomonas aeruginosa exotoxin A has been shown to catalyze the transfer of the adenosine 5'-diphosphate (ADP)-ribose moiety of nicotinamide adenine dinucleotide onto elongation factor 2, resulting in the inhibition of mammalian protein synthesis. The enzymatic activity (ADP-ribosyl [ADPR]-transferase) is thought to account for the toxicity of exotoxin A. The distribution of the expression of exotoxin A within Pseudomonas species was examined. Laboratory strains as well as clinical isolates of Pseudomonas aeruginosa were tested. The production of exotoxin A was determined by assaying for ADPR-transferase activity in dialyzed frozen (-20 degrees C) and thawed cell-free supernatants from 22-h cultures or in 10-fold-concentrated supernatants. In addition, toxin production was detected immunologically using a modified Elek test. Exotoxin A production was detected in approximately 90% of the 111 isolates of P. aeruginosa. In contrast, none of the other species of Pseudomonas examined produced exotoxin A detectable by either ADPR-transferase activity or immunological reactivity.

Epitopes

Passive protection by antitoxin in experimental Pseudomonas aeruginosa burn infections.

The protective effect of intravenously administered rabbit antitoxin serum was studied in lethal Pseudomonas aeruginosa burn infections in mice. Survival after infection with 2 median lethal doses of a toxigenic, low-protease-producing strain (PA103) was enhanced in antitoxin-treated mice, as compared with controls that had received anti-bovine serum albumin serum (P = 0.0004). Survival time was prolonged in other antitoxin-treated mice infected with toxigenic, high-protease-producing strains (PA86 and PA220, P = 0.0003 and P = 0.01, respectively). In contrast, antitoxin had no protective effect in mice challenged with a nontoxigenic strain (WR 5, P = 0.57). There were fewer viable bacteria in blood and liver of antitoxin-treated mice than in those of anti-bovine serum albumin-treated controls after infection with toxigenic organisms, whereas there were no significant differences between the two groups after challenge with the nontoxigenic strain. These data suggest that P. aeruginosa exotoxin A contributes to lethality in this burn infection model, and this effect is diminished by passive immunization with antitoxin.

Animals

Pathogenesis of corneal damage from pseudomonas exotoxin A.

Pseudomonas aeruginosa exotoxin A was injected into rabbit corneas. Death of epithelial, endothelial, and stromal cells resulted, and necrosis of the cornea followed. Control eyes with exotoxin neutralized by specific antitoxin showed minimal damage. A dose-response pattern was evident. Antitoxin neutralization of pseudomonas exotoxin A in corneal ulcers may have possible therapeutic implications.

Animals

Inhibition of Neisseria gonorrhoeae by a bacteriocin from Pseudomonas aeruginosa.

Supernatants from broth-grown cultures of Pseudomonas aeruginosa PA 103 exhibited bactericidal activity against Neisseria gonorrhoeae. The concentration of the bactericidal substance increased significantly after induction by mitomycin C. Purification was effected by salt fractionation, chromatography on diethylaminoethyl-cellulose, and sedimentation by centrifugation at 100,000 x g for 90 min. Electron microscopy of this purified preparation revealed structures resembling R-type pyocins in both the contracted and uncontracted state. Pyocins in the contracted state were observed in association with the gonococcal cell surface. No loss of bactericidal activity was observed after treatment with proteolytic enzymes. Standard pyocin typing procedures identified the pyocin pattern as 611 131. The bactericidal activity of this pyocin was examined on various species of Neisseria. Out of 56 strains of N. gonorrhoeae from disseminated and nondisseminated infections, all were susceptible to pyocin 611 131. However, only 3 of 20 strains of N. meningitidis and 5 of 16 strains of N. lactamica were susceptible. The bactericidal activity that pyocin 611 131 has for N. gonorrhoeae and other species of Neisseria is significant because it departs from the expected specificity that heretofore has distinguished bacteriocins from most "classical" antibiotics.

Bacteriocins

Temperature-dependent inactivating factor of Pseudomonas aeruginosa exotoxin A.

The adenosine diphosphate ribosyl transferase activity of Pseudomonas aeruginosa exotoxin A(PA toxin) was found to be rapidly destroyed by heating at 45 to 60C but not by heating at 70 to 90C (for at least 30 min). This phenomenon has been previously described for other bacterial toxins (staphylococcal alpha-toxin and Vibrio parahaemolyticus hemolysin) and is termed an Arrhenius effect. In contrast, the Arrhenius effect was not seen when the PA toxin was heat-treated as above and tested for cell toxicity or mouse lethality. Although the PA toxin treated at 70C for 30 min retained a significant proportion (is greater than 70%) of its adenosine diphosphate ribosyl transferase activity, the cell toxicity and mouse lethality of the toxin were virtually abolished. A temperature-dependent inactivating factor that has proteolytic activity and is co-purified with the PA toxin was shown to be responsible for the Arrhenius effect. PA toxin separated from the factor by conventional disc gel electrophoresis or PA toxin preparations lacking the factor did not show the Arrhenius effect.

ADP Ribose Transferases