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Alpha-hemolysin contributes to the pathogenicity of piliated digalactoside-binding Escherichia coli in the kidney: efficacy of an alpha-hemolysin vaccine in preventing renal injury in the BALB/c mouse model of pyelonephritis.

Digalactoside-binding (Gal-Gal) pili and alpha-hemolysin of Escherichia coli have been implicated as important virulence determinants in the pathogenesis of human ascending, nonobstructive pyelonephritis. The pathogenic significance of these determinants was evaluated in vitro and in the BALB/c mouse pyelonephritis model by employing wild-type, avirulent laboratory, and genetically defined cosmids, transformants, and recombinant strains. In vitro data suggest that the cytolytic activity of hemolysin is significantly (P less than 0.05) enhanced among digalactoside-binding strains which agglutinate erythrocytes. The basis of increased hemolysis is related presumably to more efficient delivery of the toxin to target lipid substrate in the host plasma membrane. Intravesicular administration of bacteria that express both digalactoside binding and hemolysin generally resulted in greater mortality and renal parenchymal injury in mice than strains that expressed none or only one of these determinants. Analyses convincingly demonstrate that digalactoside-binding pili are correlated with upper urinary tract colonization and that hemolysin is correlated with septicemia and renal parenchymal damage. These determinants collectively constitute the minimal virulence factors to produce disease in this model. Their efficacy as vaccines for the prevention of pyelonephritis was also assessed. A purified Gal-Gal pilus vaccine prevented (P less than 0.05) subsequent colonization by a challenge wild-type strain that exhibited homologous pili. The hemolysin vaccine did not abrogate subsequent bacterial renal colonization on challenge, but it did protect (P less than 0.05) mice which survived challenge from subsequent renal injury compared with those in the saline control group. The combination of these determinants was also protective. The combination of Gal-Gal pili and hemolysin in a vaccine preparation represents a potentially worthwhile strategy for human immunoprophylaxis against pyelonephritis by interdicting several steps in the pathogenesis of a bacterial mucosal infection.

Animals↗

The 46-kilodalton-hemolysin gene from Treponema denticola encodes a novel hemolysin homologous to aminotransferases.

The 46-kDa hemolysin produced by Treponema denticola may be involved in the etiology of periodontitis. In order to initiate a genetic analysis of the role of this protein in disease, its gene has been cloned. Synthetic oligonucleotides, designed on the basis of the previously reported amino-terminal amino acid sequence of the 45-kDa hemolysin, were used as primers in a PCR to amplify part of the hemolysin (hly) gene. This PCR product was then used to clone the entire hly gene from libraries of T. denticola genomic DNA. Constructs containing the entire cloned region on plasmids in Escherichia coli produced both hemolysis and hemoxidation activities either on sheep blood agar plates or in liquid assays. Sodium dodecyl sulfate-polyacrylamide gel electrophoresis and Western blot (immunoblot) analysis revealed that the constructs synthesized a protein with molecular size of about 46 kDa which was reactive with anti-T. denticola hemolysin. Nucleotide sequence analysis indicated that the largest open reading frame could encode a protein with a calculated molecular size of 46.2 kDa. The first 31 amino acids encoded by this open reading frame were identical to the experimentally determined amino-terminal sequence of the 45-kDa hemolysin. These results indicate that the entire hly gene has been cloned. The deduced amino acid sequence of the T. denticola hly gene is homologous (23 to 37% identity) to those of proteins that are members of a family of pyridoxal-phosphate-dependent aminotransferases. This suggests that the 46-kDa hemolysin may be related to an aminotransferase and have a novel mechanism of hemolysis. However, the functional aspects of this relationship remain to be investigated.

Amino Acid Sequence↗

Saphylococcal beta-hemolysin. I. Purification of beta-hemolysin.

The purification of staphylococcal beta-hemolysin was accomplished by the successive use of three protein fractionation methods. The first method employed was a double precipitation with the use of ammonium sulfate at 65% saturation. The second phase of purification used Sephadex G-100 column fractionation. The third phase utilized either carboxymethyl cellulose or diethylaminoethyl cellulose fractionation. The last two fractionation methods both resulted in the separation of a relatively high concentration of cationic hot-cold lysin and a low concentration of anionic hot-cold lysin. Because of the low concentration of the anionic component, its purity could not be assessed. However, the purity of the cationic component was demonstrated by immunodiffusion, microimmunoelectrophoresis, and by disc polyacrylamide gel electrophoresis. In addition, antisera against purified cationic beta-hemolysin yielded one line of precipitate when tested against the original crude beta-hemolysin. The purified cationic beta-hemolysin was stable in the lyophilized state. Crude beta-hemolysin was dermonecrotic, whereas purified cationic beta-hemolysin was not dermonecrotic even after Mg(++) activation.

Animals↗

Staphylococcal beta-hemolysin. II. Phospholipase C activity of purified beta-hemolysin.

Sheep erythrocyte ghosts released water-soluble organic phosphorus when treated with purified beta-hemolysin. Phospholipid analysis demonstrated that sphingomyelin accounted for 53% of the phospholipids present in sheep erythrocytes. Purified beta-hemolysin showed phospholipase C activity when purified ox brain or sheep erythrocyte sphingomyelin was used as substrate. Such studies have also revealed that the disappearance of sphingomyelin from the reaction mixture was accompanied by a comparable increase in the concentration of phosphoryl choline. Thin-layer chromatography of phospholipids, extracted from sheep erythrocytes which had been exposed to beta-hemolysin, demonstrated that sphingomyelin was rapidly degraded. Activators of beta-hemolysin, such as Mg(++), enhanced the release of organic phosphorus from erythrocyte ghosts and from sphingomyelin. Inhibitors of beta-hemolysin, such as ethylenediaminetetraacetic acid, p-chloromercuribenzoate, and iodoacetamide, also inhibited the release of organic phosphorus from erythrocyte ghosts and from sphingomyelin. These studies strongly suggested that beta-hemolysin enzymatically degraded the sphingomyelin of the erythrocyte membrane. Such degradation probably resulted in the eventual lysis of the erythrocyte.

Animals↗

Comparison of hemolysins of Vibrio cholerae non-O1 and Vibrio hollisae with thermostable direct hemolysin of Vibrio parahaemolyticus.

Hemolysin (Vh-rTDH) produced by Vibrio hollisae and hemolysin (NAG-rTDH) produced by Vibrio cholerae non-O1 were characterized and compared with hemolysin (Vp-TDH) produced by Vibrio parahaemolyticus. These three hemolysins are each composed of two subunits and have similar, but not identical, molecular weights. The amino acid compositions of Vp-TDH and NAG-rTDH are similar, but are different from that of Vh-rTDH. The three hemolysins showed similar lethal toxicities to mice. The effects of temperature on hemolysis and the time dependencies of hemolysis by the three hemolysins were similar. The three were concluded to be immunologically related, but not identical, and to have common and also unique antigenic determinants.

Amino Acids↗

The large-sized plasmids of enterohemorrhagic Escherichia coli O157 strains encode hemolysins which are presumably members of the E. coli alpha-hemolysin family.

Most enterohemorrhagic Escherichia coli O157:H7 strains harbor a large-sized (90 kb) plasmid designated pO157 and show an enterohemolytic phenotype. In this study the hemolytic activity of E. coli O157:H7 strain EDL933 was investigated. Curing of strain EDL933 from pO157 resulted in loss of its hemolytic activity. By transformation with Tn801-tagged pO157 (pSK3), the hemolysin-negative E. coli K-12 strains C600 and DH5 alpha became positive for hemolysin production. By transformation of recombinant plasmids carrying a 11.9 kb BamHI fragment and a 5.3 kb SalI fragment of pSK3 hemolytic activity is revealed when transformed in E. coli C600 or DH5 alpha DNA-hybridization of pO157 and subclones with the alpha-hemolysin specific DNA probe was only found under conditions of low stringency. No hybridization was found with enterohemolysin I (EHly1) and enterohemolysin II (EHly2) probes. Our results indicate that a hitherto not described hemolysin belonging to the alpha-hemolysin family is encoded by the 90 kb plasmid of E. coli O157 strains.

Base Sequence↗

Demonstration and characterization of simultaneous production of a thermostable direct hemolysin (TDH/I) and a TDH-related hemolysin (TRHx) by a clinically isolated Vibrio parahaemolyticus strain, TH3766.

Simultaneous production of a thermostable direct hemolysin (TDH)-like toxin (TDHx) and a TDH-related hemolysin (TRH)-like toxin (TRHx) by a clinical isolate (strain TH3766) of Kanagawa phenomenon-positive Vibrio parahaemolyticus was demonstrated and characterized. The two hemolysins were differentially purified by column chromatography on hydroxyapatite and immunoaffinity columns. The molecular weight of the two hemolysins were estimated to be 23,000 by sodium dodecyl sulfate-polyacrylamide gel electrophoresis (PAGE). The purified TDHx was indistinguishable from the previously reported TDH/I (from strain TH012) but was different from the authentic TDH of a Kanagawa phenomenon-positive strain (T4750) physicochemically. The mobility of TRHx in nondenaturing PAGE differed from all the known TDHs and TRHs. The genes (tdhX and trhX) coding for TDHx and TRHx were cloned and sequenced. Homologies of nucleotide sequences of the coding regions between tdhX and tdhA (a gene for the authentic TDH) and between trhX and trh (a gene for the authentic TRH) were 98.1 and 99.1%, respectively, and homology between tdhX and trhX was 68.1%. At the amino acid level, TdhX was completely identical to TDH/I, although two base differences were found in the nucleotide sequences between tdhX and tdh/I. Two amino acid differences were observed between TrhX and Trh. Thus, these findings suggest that the TH3766 strain produces two types of hemolysins simultaneously. This is the first evidence that a strain of V. parahaemolyticus produces two types of toxins of the TDH-TRH family at the same time.

Amino Acid Sequence↗

Purification and properties of staphylococcal delta-hemolysin. I. Production of delta-hemolysin.

Concentrated preparations of staphylococcal delta-hemolysin were obtained by growing selected hemolytic colonies from the 146P strain of Staphylococcus aureus on dialysis membranes laid over Brain Liver Heart agar plates at 37 C for 20 hr under 10% CO(2) and harvesting the growth from five such membranes in 1.0 ml of deionized distilled water. Incubation in a humid environment facilitated this harvesting procedure. Incubation longer than 40 hr or incubation under CO(2) higher than 10 to 20% gave lower yields of delta-lysin. Addition of a sugar, fermented by the organisms, resulted in lower yields of delta-hemolysin. Agar, although separated from the growing cells by the dialysis membrane, did potentiate delta-hemolysin production. Addition of 0.1% agar to the inoculum further enhanced this potentiation. delta-Hemolysin produced in broth or semisolid cultures was excessively diluted with the media. Dialysis membranes prevented this dilution and thus yielded concentrated preparations of delta-hemolysin.

Agar↗

[Evidence of the existence of hemolysin II from Bacillus cereus: cloning the genetic determinant of hemolysin II].

The hemolysin genetic determinant distinct from cereolysin AB genetic determinant (lecithinase and sphingomyelinase genes) has been cloned in Escherichia coli and Bacillus subtilis cells as an EcoRI fragment (2.9 kb) of Bacillus cereus VKM-B771 chromosome DNA. The hemolytic product encoded by the cloned DNA fragment possessed all the properties of hemolysin II known to date: it was not inhibited by cholesterol, exhibited the Arrhenius effect, and had a relatively long (in comparison with cereolysin) lag period in erythrocyte lysis. The cloned DNA fragment was concluded to contain the gene of hemolysin II from B. cereus. In contrast to previous suggestions that hemolitic activity ascribed to hemolysin II is due to the combined action of sphingomyelinase and lecithinase, the results obtained present convincing evidence that hemolysin II is an independent B. cereus hemolytic factor different from cereolysin AB.

Bacillus cereus↗

Isolation from a coastal fish of Vibrio hollisae capable of producing a hemolysin similar to the thermostable direct hemolysin of Vibrio parahaemolyticus.

A vibrio isolated from the intestine of a coastal fish was identified as Vibrio hollisae by its biochemical characteristics. The isolate reacted with the gene probe for the thermostable direct hemolysin of Vibrio parahaemolyticus. The hemolysin produced by the isolate from the fish had traits identical to those of the thermostable direct hemolysin-like hemolysin produced by a clinical strain of V. hollisae.

Animals↗

Sequence variation in the thermostable direct hemolysin-related hemolysin (trh) gene of Vibrio parahaemolyticus.

Our previous molecular epidemiologic study with gene probes (H. Shirai, H. Ito, T. Hirayama, Y. Nakamoto, N. Nakabayashi, K. Kumagai, Y. Takeda, and M. Nishibuchi, Infect. Immun. 58:3568-3573, 1990) demonstrated that the gene (trh) encoding a thermostable direct hemolysin-related hemolysin was strongly associated with clinical strains of Vibrio parahaemolyticus. Strain-to-strain variation in the intensities of the hybridization signals observed in the above study also suggested that the trh genes in different strains may have significantly divergent nucleotide sequences. To assess the public health significance of the rare environmental strains which exhibited very weak hybridization signals with the trh gene-specific DNA probe, the trh-like sequence was cloned from one of the environmental strains and the nucleotide sequence was determined in this study. A hemolysin gene (trh2) which was 84% homologous to the trh gene (newly named trh1) and 54.8 to 68.8% homologous to the genes (tdh) encoding thermostable direct hemolysins was detected in the cloned sequence. The trh2 gene product showed a profile of hemolytic activities against various animal erythrocytes different from that of the trh1 gene product. The trh2 gene product was antigenically related (partially identical) to the trh1 and tdh gene products. DNA colony blot and Southern blot hybridization analyses with trh1- and trh2-specific DNA probes showed that the trh1 probe-positive strains exhibiting hybridization signals with varying intensities could be clustered into trh1 and trh2 subgroups. In addition, hybridization analysis with oligonucleotide probes demonstrated significant strain-to-strain variation in the trh1 and trh2 gene sequences.(ABSTRACT TRUNCATED AT 250 WORDS)

Amino Acid Sequence↗

Purification and partial characterization of a non-O1 Vibrio cholerae hemolysin that cross-reacts with thermostable direct hemolysin of Vibrio parahaemolyticus.

A newly identified hemolysin (NAG-rTDH), which is related to the thermostable direct hemolysin (Vp-TDH) of Vibrio parahaemolyticus produced by non-O1 Vibrio cholerae, was studied. NAG-rTDH was purified by successive column chromatographies on DEAE-cellulose and an immunoaffinity column coupled with anti-Vp-TDH immunoglobulin. The molecular weight of NAG-rTDH was estimated as 18,500, similar to that of Vp-TDH, as judged by sodium dodecyl sulfate slab gel electrophoresis, but its charge or molecular shape was different, judging from its electrophoretic mobility. The lytic activities of NAG-rTDH on erythrocytes of most animals were essentially similar to those of Vp-TDH, but that on sheep erythrocytes was different. The hemolytic activity of NAG-rTDH was stable on heating at 100 degrees C for 10 min, as was that of Vp-TDH. Immunological cross-reactivity between NAG-rTDH and Vp-TDH was demonstrated by both the Ouchterlony test and the neutralization test. Thus, we conclude that non-O1 V. cholerae produce a new type of hemolysin that is similar but not identical to the thermostable direct hemolysin of V. parahaemolyticus.

Cross Reactions↗

Purification and characterization of a hemolysin produced by a clinical isolate of Kanagawa phenomenon-negative Vibrio parahaemolyticus and related to the thermostable direct hemolysin.

A clinical isolate (strain 4037) of Kanagawa phenomenon-negative Vibrio parahaemolyticus was studied. Although the strain was judged to be Kanagawa phenomenon-negative by various conventional tests, it produced a new hemolysin (named Vp-TRH, for thermostable direct hemolysin [Vp-TDH]-related hemolysin) that was related to the Vp-TDH produced by ordinary Kanagawa phenomenon-positive V. parahaemolyticus. Vp-TRH was purified by ammonium sulfate fractionation and successive column chromatographies on DEAE-cellulose, hydroxyapatite, and Mono Q. The molecular weight of Vp-TRH was estimated as 48,000 by Sephadex G-100 gel filtration, and the molecular weight of the subunit was estimated to be 23,000 by sodium dodecyl sulfate-slab gel electrophoresis. Thus, like Vp-TDH, Vp-TRH seems to be composed of two subunits. The isoelectric point of Vp-TRH was determined to be 4.6. Vp-TRH showed lytic activities different from those of Vp-TDH on erythrocytes from various animals, especially those from calves, chickens, and sheep. The hemolytic activity of Vp-TRH was labile on heat treatment at 60 degrees C for 10 min, unlike that of Vp-TDH. The immunological similarities, but not the identities of Vp-TRH and Vp-TDH, were demonstrated by Ouchterlony, neutralization, and latex agglutination tests. Thus, we conclude that this clinical isolate of Kanagawa phenomenon-negative V. parahaemolyticus produces a new type of hemolysin that is similar, but not identical, to Vp-TDH, which is usually produced by Kanagawa phenomenon-positive V. parahaemolyticus.

Animals↗

Study of regulation and transport of hemolysin by using fusion of the beta-galactosidase gene (lacZ) to hemolysin genes.

Operon and gene fusions between lacZ and the hemolysin genes, hlyC and hlyA, were performed. These two genes are essential for the synthesis of active hemolysin and are transcribed from a common promoter (p1). Whereas the amount of hemolysin produced in Escherichia coli is not changed by altering the hly gene dose, beta-galactosidase activity follows the gene dosage in both types of fusions when lacZ comes under the control of p1. This indicates that hemolysin is not negatively regulated on the transcription or translation level. The products of the gene fusions hlyC::lacZ and hlyA::lacZ were identified in maxicells as stable proteins of 146,000 and 220,000 daltons, respectively. Both fusion proteins possess beta-galactosidase activity indicating that the performed fusions of lacZ to the hly genes do not destroy the reading frame of hlyC and hlyA. The fusion proteins HlyC-beta-gal and HlyA-beta-gal were predominantly detected in the cytoplasm, confirming previous data which suggested that the primary gene products of hlyC and hlyA are not transported across the cytoplasmic membrane.

Bacterial Proteins↗

Nucleotide sequencing of the Proteus mirabilis calcium-independent hemolysin genes (hpmA and hpmB) reveals sequence similarity with the Serratia marcescens hemolysin genes (shlA and shlB).

We cloned a 13.5-kilobase EcoRI fragment containing the calcium-independent hemolysin determinant (pWPM110) from a clinical isolate of Proteus mirabilis (477-12). The DNA sequence of a 7,191-base-pair region of pWPM110 was determined. Two polypeptides are encoded in this region, HpmB and HpmA (in that transcriptional order), with predicted molecular masses of 63,204 and 165,868 daltons, respectively. A putative Fur-binding site was identified upstream of hpmB overlapping the -35 region of the proposed hpm promoter. In vitro transcription-translation of pWPM110 DNA and other subclones confirmed the assignment of molecular masses for the predicted polypeptides. These polypeptides are predicted to have NH2-terminal leader peptides of 17 and 29 amino acids, respectively. NH2-terminal amino acid sequence analysis of purified extracellular hemolysin (HpmA) confirmed the cleavage of the 29-amino-acid leader peptide in the secreted form of HpmA. Hemolysis assays and immunoblot analysis of Escherichia coli containing subclones expressing hpmA, hpmB, or both indicated that HpmB is necessary for the extracellular secretion and activation of HpmA. Significant nucleotide identity (52.1%) was seen between hpm and the shl hemolysin gene sequences of Serratia marcescens despite differences in the G+C contents of these genes (hpm, 38%; shl, 65%). The predicted amino acid sequences of HpmB and HpmA are also similar to those of ShlB and ShlA, the respective sequence identities being 55.4 and 46.7%. Predicted cysteine residues and major hydrophobic and amphipathic domains have been strongly conserved in both proteins. Thus, we have identified a new hemolysin gene family among gram-negative opportunistic pathogens.

Amino Acid Sequence↗

The PhlA hemolysin from the entomopathogenic bacterium Photorhabdus luminescens belongs to the two-partner secretion family of hemolysins.

Photorhabdus is an entomopathogenic bacterium symbiotically associated with nematodes of the family Heterorhabditidae. Bacterial hemolysins found in numerous pathogenic bacteria are often virulence factors. We describe here the nucleotide sequence and the molecular characterization of the Photorhabdus luminescens phlBA operon, a locus encoding a hemolysin which shows similarities to the Serratia type of hemolysins. It belongs to the two-partner secretion (TPS) family of proteins. In low-iron conditions, a transcriptional induction of the phlBA operon was observed by using the chloramphenicol acetyltransferase reporter gene, causing an increase in PhlA hemolytic activity compared to iron-rich media. A spontaneous phase variant of P. luminescens was deregulated in phlBA transcription. The phlA mutant constructed by allelic exchange remained highly pathogenic after injection in the lepidopteran Spodoptera littoralis, indicating that PhlA hemolysin is not a major virulence determinant. Using the gene encoding green fluorescent protein as a reporter, phlBA transcription was observed in hemolymph before insect death. We therefore discuss the possible role of PhlA hemolytic activity in the bacterium-nematode-insect interactions.

Amino Acid Sequence↗

[Relationship between hemolysin and hemolysin-destructive factor activities in Vibrio cholerae of Eltor biovar].

The study of hemolysin activity, hemolysin-destructive factor (HDF) activity and cholerogenicity in 143 Vibrio eltor strains has revealed the existance of close relationship between cholerogenicity and hemolysin production, as well as between cholerogenicity and HDF activity. The negative character of conjugation between the HDF activity and the hemolytic activity of the strains under study has been established, which allows one to suggest the possibility of the regulating action of hemolysin on the synthesis of HDF (enterotoxin).

Animals↗

Purification and characterization of a hemolysin of Vibrio mimicus that relates to the thermostable direct hemolysin of Vibrio parahaemolyticus.

A hemolysin (designated Vm-rTDH) from Vibrio mimicus (AQ0915-E13) was purified by ammonium sulfate fractionation and successive column chromatography with DEAE-Sephadex A-25, hydroxyapatite, Mono Q, Superose 12 and Phenyl-Superose. The Mr of the subunit was estimated to be about 22,000 by sodium dodecyl sulfate-slab gel electrophoresis. The isoelectric point of Vm-rTDH was approximately pH 4.9. The hemolytic activity of Vm-rTDH was stable upon heating at 100 degrees C for 10 min, similar to that of the thermostable direct hemolysin (Vp-TDH) of V. parahaemolyticus. Vm-rTDH also showed lytic activities similar to those of Vp-TDH. Immunological cross-reactivity between Vp-TDH and Vm-rTDH was demonstrated by the Ouchterlony double-diffusion test. Thus we conclude that V. mimicus produces a newly discovered type of hemolysin (Vm-rTDH) which is similar to Vp-TDH.

Bacterial Proteins↗