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Biomedical subjects

J B Kaper

Publications and source records attributed to J B Kaper.

At least 19 recordsLinked to original sources

Signal transduction between enteropathogenic Escherichia coli (EPEC) and epithelial cells: EPEC induces tyrosine phosphorylation of host cell proteins to initiate cytoskeletal rearrangement and bacterial uptake.

Upon attachment to cultured HeLa cells, enteropathogenic Escherichia coli (EPEC) induces assembly of a complex cytoskeletal structure within the eucaryotic cell, localized beneath the adherent bacterium. In addition, EPEC induces its own internalization by non-phagocytic epithelial cells. We found that after binding to the epithelial cell surface, EPEC induces tyrosine phosphorylation of three eucaryotic proteins. The major phosphorylation substrate is a 90 kDa protein (Hp90). In correlation with Hp90 tyrosine phosphorylation, the EPEC-induced cytoskeletal structure also contained tyrosine phosphorylated proteins. Using tyrosine protein kinase inhibitors and EPEC mutants (cfm) that fail to induce Hp90 phosphorylation, we demonstrate that induction of Hp90 phosphorylation is involved in initiation of the cytoskeletal structure assembly and in bacterial uptake. Other non-invasive EPEC mutants (eae) are still able to induce Hp90 tyrosine phosphorylation and to initiate aggregation of the tyrosine phosphorylated proteins and some cytoskeleton components. However, eae mutants are deficient in nucleating the aggregates into an organized structure.

Alkaloids

Cholera vaccines.

The currently licensed parenteral cholera vaccine has not been a useful public health tool in the control of cholera. Building on the knowledge that primary infection offers significant protection against reinfection and that mucosal immunity mediates this protection, several oral cholera vaccines have been developed. These vaccine candidates or future candidates derived using the techniques of molecular biology will no doubt contribute to the control of cholera.

Cholera

Onset and duration of protective immunity in challenged volunteers after vaccination with live oral cholera vaccine CVD 103-HgR.

CVD 103-HgR is a live oral cholera vaccine that, in phase I and II studies to date, has been well tolerated and immunogenic. In challenge studies of US volunteers conducted 4-5 weeks after vaccination, CVD 103-HgR provided significant protection against experimental cholera due to classical and El Tor Vibrio cholerae O1. To determine the onset and duration of protection, two volunteer challenge studies were conducted: the first, 6 months after vaccination and the second, 8 days after vaccination. In both studies, CVD 103-HgR was 100% protective against diarrhea and significantly reduced the rate of shedding of vibrios after challenge with V. cholerae classical Inaba strain 569B, the virulent parent strain of CVD 103-HgR. Previously vaccinated subjects were less likely than naive controls to develop rises in titer of vibriocidal antibodies after challenge (P = .002), and the mean peak titer of vibriocidal antibodies was less than among controls. CVD 103-HgR can provide homologous protective immunity as soon as 8 days after vaccination and protection can persist for at least 6 months.

Administration, Oral

Cloning and characterization of the eae gene of enterohaemorrhagic Escherichia coli O157:H7.

The eae (Escherichia coli attaching and effacing) gene from enteropathogenic Escherichia coli (EPEC) was previously shown to be essential for production of the 'attaching and effacing' histopathology characteristic of EPEC infections (Jerse et al., 1990). We have now cloned the eae gene from enterohaemorrhagic E. coli (EHEC) which, in addition to producing Shiga-like cytotoxins, also produces the attaching and effacing effect. The sequence homology between the EPEC and EHEC sequences was 86% and 83% at the nucleotide and amino acid levels, respectively. The predicted amino acid sequence of the EHEC eae gene shared 31% identity and 51% similarity with invasin of Yersinia pseudotuberculosis. Alignment of the EPEC and EHEC Eae proteins and the Y. pseudotuberculosis and Y. enterocolitica invasins shows striking regions of identity with the greatest divergence at the C-terminal end, the putative receptor-binding portion of invasin.

Adhesins, Bacterial

A plasmid-encoded type IV fimbrial gene of enteropathogenic Escherichia coli associated with localized adherence.

Enteropathogenic Escherichia coli (EPEC) form adherent microcolonies on the surface of tissue culture cells in a pattern termed localized adherence. Localized adherence requires the presence of a large EPEC adherence factor (EAF) plasmid. Recently a bundle-forming pilus has been described in EPEC possessing the EAF plasmid. An analysis of 22 non-invasive EPEC TnphoA mutants revealed that seven have insertions in the EAF plasmid and are incapable of localized adherence. We report here the mapping of the TnphoA insertions in these mutants. The nucleotide sequence of the gene interrupted in these TnphoA mutants (bfpA) was determined and found to correspond to the N-terminal amino acid sequence of the major structural protein of the bundle-forming pilus. The bfpA gene bears sequence similarities to members of the type IV fimbrial gene family and encodes a potential site for processing by a prepilin peptidase. A plasmid containing bfpA as the only open reading frame directs the synthesis of a protein recognized by antiserum raised against the bundle-forming pilus. TnphoA mutants at this locus are unable to synthesize BfpA, but synthesis is restored by introduction of a plasmid containing the cloned gene. The minimum fragment of DNA required to restore localized adherence is considerably greater than that required to restore BfpA synthesis. BfpA expression, as assessed by alkaline phosphatase activity in bfpA::TnphoA mutants, is affected by temperature and growth medium. These studies describe an EPEC plasmid-encoded fimbrial gene, a candidate for the elusive EPEC adherence factor responsible for localized adherence.

Adhesins, Escherichia coli

Role of Vibrio cholerae neuraminidase in the function of cholera toxin.

Vibrio cholerae neuraminidase (NANase) is hypothesized to act synergistically with cholera toxin (CT) and increase the severity of a secretory response by increasing the binding and penetration of CT to enterocytes. To test this hypothesis, the NANase gene (nanH) from V. cholerae Ogawa 395 was first cloned and sequenced. Isogenic wild-type and NANase- V. cholerae 395 strains were then constructed by using suicide vector-mediated mutagenesis. The influence of NANase on CT binding and penetration was examined in vitro by using culture filtrates from these isogenic strains. Fluorescence due to binding of fluorescein-conjugated CT to C57BL/6 and C3H mouse fibroblasts exposed to NANase+ filtrates increased five- and eightfold, respectively, relative to that with NANase- filtrates. In addition, NANase+ filtrates increased the short-circuit current measured in Ussing chambers 65% relative to that with NANase- filtrates, although this difference decreased as production of CT increased. The role of NANase in V. cholerae pathogenesis was examined in vivo by intragastric inoculation of the isogenic strains into CD1 suckling mice. No difference in fluid accumulation ratios was seen at doses of 10(4) to 10(8) CFU, but NANase+ strains produced 18% higher fluid accumulation ratios at 10(9) CFU than NANase- strains when inoculated into nonfasted suckling mice. It is concluded that NANase plays a subtle but significant role in the binding and uptake of CT by susceptible cells under defined conditions.

Amino Acid Sequence

Cloning of a gene (zot) encoding a new toxin produced by Vibrio cholerae.

Live oral candidate cholera vaccines have previously been constructed by deletion of Vibrio cholerae sequences encoding the enzymatically active A subunit of the cholera toxin. However, volunteer studies have shown that these non-cholera toxin-producing strains still provoke mild to moderate diarrhea in some individuals. We recently reported the identification of a second toxin produced by V. cholerae which may be responsible for this residual diarrhea (A. Fasano, B. Baudry, D. W. Pumplin, S. S. Wasserman, B. D. Tall, J. M. Ketley, and J. B. Kaper, Proc. Natl. Acad. Sci. USA 88:5242-5246, 1991). This new toxigenic factor increases the permeability of rabbit ileal mucosa by affecting the structure of the intercellular tight junctions (zonula occludens). We now report the identification and cloning of the gene encoding this new toxin. This gene, named zot (for zonula occludens toxin), consists of a 1.3-kb open reading frame which could potentially encode a 44.8-kDa polypeptide. The location of the zot gene encoding the new toxin is immediately upstream of the ctx operon encoding cholera toxin.

Amino Acid Sequence

Cytoskeletal composition of attaching and effacing lesions associated with enteropathogenic Escherichia coli adherence to HeLa cells.

The cytoskeletal lesions associated with enteropathogenic Escherichia coli adhering to cultured HeLa epithelial cells were examined by immunofluorescence microscopy. The microfilament-associated proteins actin, alpha-actinin, talin, and ezrin were localized with adherent enteropathogenic E. coli, whereas tropomyosin, keratin and vimentin (intermediate filaments), tubulin (microtubules), and vinculin were not localized. These cytoskeletal structures differed significantly from those associated with Salmonella typhimurium internalization (invasion).

Bacterial Adhesion

Enterotoxigenicity of Vibrio parahaemolyticus with and without genes encoding thermostable direct hemolysin.

Vibrio parahaemolyticus produces a thermostable direct hemolysin (TDH) that has been implicated in the pathogenesis of diarrheal disease caused by this organism. However, previous studies attempting to demonstrate the contribution of the hemolysin to virulence have been inconclusive. We investigated this putative virulence factor by using an isogenic TDH-negative (TDH-) strain constructed by specifically inactivating the two copies of the tdh gene encoding TDH. The enterotoxigenicities of the parent strain (AQ3815) and the mutant strain were tested by adding sterile culture supernatants to rabbit ileal tissue mounted in Ussing chambers. The culture filtrate of the parent strain produced a significant increase in short-circuit current (Isc), compared with the change induced by the TDH- mutant. The capacity of the culture filtrate of AQ3815 to increase the Isc was reduced by neutralization with anti-TDH serum, and the return of the cloned tdh gene to the TDH- mutant restored the ability to increase the Isc. These results were corroborated by rabbit ileal loop assays in which AQ3815 caused fluid accumulation but the TDH- mutant did not. No microscopic damage was seen in mucosal tissues exposed to the culture filtrate of either strain. These results indicate that TDH has an enterotoxigenic effect on rabbit small intestine and could be responsible for the watery diarrhea seen with V. parahaemolyticus.

Animals

Genetics of cholera toxin.

Cholera is caused by the toxin secreted by Vibrio cholerae 01. Cholera toxin (CT) is a protein consisting of A and B subunits. The former contributes to intracellular toxicity whereas the B subunit is required for binding of CT to eukaryotic cell surface receptor. The structural genes encoding A and B subunits are designated as ctxA and ctxB respectively. These genes are located on the chromosome forming an operon in which ctxA precedes ctxB. The ctxAB have been cloned and sequenced. Classical strains contain two full copies of unlinked ctxAB. Most el tors have single copy. However, in some strains there are two copies which are arranged in tandem. The tandem duplication and amplification of ctxAB is controlled by a transposable element like DNA sequence called RS1. A number of genes have been identified which regulate the expression of ctx operon. V. cholerae seems to elaborate more than one toxin which are different from the one encoded by ctxAB genes.

Base Sequence

Immortal sequence.

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Amino Acid Sequence

Vibrio cholerae produces a second enterotoxin, which affects intestinal tight junctions.

Attenuated Vibrio cholerae vaccine strains specifically mutated in genes encoding cholera toxin (CT) are still capable of causing mild to moderate diarrhea. Culture supernatants of V. cholerae strains, both CT-positive and CT-negative, were examined in Ussing chambers, and a toxin was found that increases the permeability of the small intestinal mucosa by affecting the structure of the intercellular tight junction, or zonula occludens. The activity of this toxin is reversible, heat-labile, sensitive to protease digestion, and found in culture supernatant fractions containing molecules between 10 and 30 kDa in size. Production of this factor (named ZOT for zonula occludens toxin) correlates with diarrheagenicity of V. cholerae strains in volunteers and may represent another virulence factor of infectious diarrhea that must be eliminated to achieve a safe and effective live oral vaccine against cholera.

Animals

Effects of Vibrio cholerae recombinant strains on rabbit ileum in vivo. Enterotoxin production and myoelectric activity.

Previous studies have identified the effects of Vibrio cholerae and its enterotoxin, choleragen (CT A+B+), on the myoelectric activity of rabbit ileal loops in vivo. The response was defined as the migrating action potential complex, the single ring contraction that propels luminal contents aborad. In this study the same rabbit model is used to assess whether migrating action potential complex activity or fluid output is induced by recombinant strains of V. cholerae that produce no subunit of cholera toxin (CT A-B-) or only by the inactive binding subunit (CT A-B+). Three live strains were studied: El Tor wild-type N16961 (CT A+B+) and recombinant strains CVD106 (CT A-B+) and JBK70 (CT A-B-). Controls received sterile culture broth. Migrating action potential complex frequency in animals inoculated with CT A+B+ was significantly increased compared with that in all other experimental groups (P less than 0.01). Fluid output was also increased in animals inoculated with CT A+B+ compared with fluid output in all other groups (P less than 0.05). Migrating action potential complex frequency and fluid output in rabbits given CT A-B+ or CT A-B- did not differ from activity in controls. How these recombinant strains induce diarrhea is unknown, but the mechanism may involve bacterial colonization or production of an unknown toxin.

Animals

Contribution of the tdh1 gene of Kanagawa phenomenon-positive Vibrio parahaemolyticus to production of extracellular thermostable direct hemolysin.

Kanagawa phenomenon-positive strains of Vibrio parahaemolyticus contain two copies of the tdh gene (tdh 1 and tdh 2) encoding thermostable direct hemolysin (TDH). Previous studies suggested that the tdh 2 gene, but not the tdh 1 gene, was responsible for production of extracellular TDH. In this study, a tdh 2-deficient isogenic mutant of Kanagawa phenomenon-positive strain AQ3815 was constructed by a suicide vector-mediated in vivo recombination method. The intact tdh 1 gene in the mutant contributed little to Kanagawa phenomenon on Wagatsuma agar but produced TDH in broth media, accounting for 0.5-9.4% of total extracellular TDH of AQ3815.

Genes, Bacterial

Diffuse-adhering Escherichia coli (DAEC) as a putative cause of diarrhea in Mayan children in Mexico.

Diarrhea is a major cause of infantile morbidity and mortality in developing countries. A community-based, case control study was conducted in a southern Mexican Mayan village for 3 weeks during the peak diarrhea period to prospectively identify the infectious agents associated with childhood diarrheal disease. Several enteropathogens were isolated from stools of 34 of 58 cases, although none was significantly associated with diarrhea. For the 24 cases from which no enteropathogens were isolated, diffuse-adhering Escherichia coli (DAEC) strains were significantly associated with diarrheal disease (P less than .02; odds ratio = 6; 95% confidence limit, 1.08-99.0). DAEC were highly heterogeneous with respect to plasmid content and serotype. Three DNA probes designed to differentiate E. coli exhibiting localized, diffuse, or aggregative adherence were compared with results from a standard HeLa cell binding assay to assess the utility of these probes in the field. This study provides evidence for the potential pathogenic capacity of DAEC and underscores the variety of diarrheal agents operating within a community.

Bacterial Adhesion