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D E Berg

Publications and source records attributed to D E Berg.

At least 55 records · Page 3Linked to original sources

Genotypes of Helicobacter pylori in Polish population.

Here we have studied the genetic diversity of Helicobacter pylori strains recovered from 64 individual patients, 5 family members and 13 unsuccessfully treated patients. The recovered bacteria were finger-printed by the PCR-RFLP and RAPD methods and virulence associated loci (cagPAI, vacA) were PCR studied. Unique differentiation of every independently isolated strain from not-related persons was possible by RAPD technique. In PCR-RFLP technique several profile groups (7 and 15) for particular endonuclease tested were found. Eleven patients carried strains of the same gene profile (PCR-RFLP) and the same overall genotype (RAPD) before and after therapy. In the family studies, essentially the same strain was found in different relatives in three cases, and different strains were found in the other two cases. Island of cagPAI was present in 79% of all strains tested, half and one-fifth of all strains tested presented, s1am2 and s1m1 alleles of vacA gene, respectively. Independently from identity or diversity of pre- and post-treatment strains and strains recovered from the family members we have been observed identical cagPAI/vacA genotypes. These results suggest that H. pylori infections in Poland can be mixed, although just one strain may often predominate, and that inter-family transmission may be significant even in this high risk society. The genetic feature of virulence-associated loci are similar to those seen elsewhere in Europe, although strains that carry the cagPAI and the potentially more toxigenic alleles of the vacA gene are more common. RAPD technique is proven as most differentiating, however PCR-RFLP allows for easy recognition of mixed infection with two or more different strains. Molecular typing study in case of children therapy may allow reduce rate of relapses by reduction of possible transmission from family source.

Adolescent↗

Novel sequence organization and insertion specificity of IS605 and IS606: chimaeric transposable elements of Helicobacter pylori.

IS605, an insertion sequence (IS) that is unusual in containing homologs of genes for the single putative transposases of two other unrelated IS elements (IS200 and IS1341), was found in nearly one-third of a set of 238 independent isolates of the gastric pathogen Helicobacter pylori. Hybridization and PCR tests indicated that any strain carrying one of these ORFs also carried the other, which implies that both ORFs are in the same unit of transposition. The IS605 ends and target sites for insertion were identified by sequencing eight preexisting insertions in strain NCTC11638, corresponding empty sites in other strains, and new transpositions in E. coli of an IS605 derivative marked with a selectable chloramphenicol-resistance gene. These tests showed that IS605 is also unusual in: (1) having unique, not inverted repeat, ends; (2) not duplicating (or deleting) target sequences during transposition; and (3) inserting with its left (IS200-homolog) end next to 5'-TTTAA or 5'-TTTAAC. IS605 was implicated in at least two genome rearrangements in strain NCTC11638. A second member of the IS605 family, called IS606 (25% amino acid identity to IS605 in inferred proteins) was found in one-third of 38 H. pylori strains tested, many of which did not carry IS605. The features of these two chimaeric IS elements are discussed in terms of possible transposition mechanisms, IS element evolution, and effects of IS elements on genome organization and evolution in the microbes that they inhabit.

Base Sequence↗

PCR-based subtractive hybridization and differences in gene content among strains of Helicobacter pylori.

Genes that are characteristic of only certain strains of a bacterial species can be of great biologic interest. Here we describe a PCR-based subtractive hybridization method for efficiently detecting such DNAs and apply it to the gastric pathogen Helicobacter pylori. Eighteen DNAs specific to a monkey-colonizing strain (J166) were obtained by subtractive hybridization against an unrelated strain whose genome has been fully sequenced (26695). Seven J166-specific clones had no DNA sequence match to the 26695 genome, and 11 other clones were mixed, with adjacent patches that did and did not match any sequences in 26695. At the protein level, seven clones had homology to putative DNA restriction-modification enzymes, and two had homology to putative metabolic enzymes. Nine others had no database match with proteins of assigned function. PCR tests of 13 unrelated H. pylori strains by using primers specific for 12 subtracted clones and complementary Southern blot hybridizations indicated that these DNAs are highly polymorphic in the H. pylori population, with each strain yielding a different pattern of gene-specific PCR amplification. The search for polymorphic DNAs, as described here, should help identify previously unknown virulence genes in pathogens and provide new insights into microbial genetic diversity and evolution.

Animals↗

Characterization of a Helicobacter pylori vaccine candidate by proteome techniques.

In a previous two-dimensional (2D) gel electrophoretic study of protein antigens of the gastric pathogen, Helicobacter pylori recognized by human sera, one of the highly and consistently reactive antigens, a protein with Mr of approximately 30,000 (Spot 15) seemed to be of special interest because of low yields on N-terminal protein sequencing. This suggested possible N-terminal modification, as the N-terminal sequence analysis of this 30,000 protein (Spot 15) did not provide a definitive match within the H. pylori genomic database. This protein was isolated by 2D polyacrylamide gel electrophoresis, evaluated by liquid chromatography-mass spectrometry, and found to consist of two related species of approximately 28,100 and 26,500. In parallel, the proteins within this spot were digested in situ with the endoprotease Lys-C. Analysis of the Lys-C digest by matrix-assisted laser desorption time-of-flight mass spectrometry, peptide mapping, and sequence analysis was conducted. Comparison of the mass and sequence of the Lys-C peptides with those derived from a H. pylori genomic library identified an open reading frame of approximately 300 base pairs as the source of the Spot 15 protein. This corresponded to HP0175 in the recently reported H. pylori genome sequence, an open reading frame with some homology to Campylobacter jejeuni cell binding protein 2. Mass spectral and sequence analysis indicated that Spot 15 was a processed product generated by proteolytic cleavage at both the carboxy and amino termini of the 34 open reading frame precursor.

Amino Acid Sequence↗

The largest subunits of RNA polymerase from gastric helicobacters are tethered.

The rpoB and rpoC genes of eubacteria and archaea, coding respectively for the beta- and beta'-like subunits of DNA-dependent RNA polymerase, are organized in an operon with rpoB always preceding rpoC. The genome sequence of the gastric pathogen Helicobacter pylori (strain 26695) revealed homologs of two genes in one continuous open reading frame that potentially could encode one 2890-amino acid-long beta-beta' fusion protein. Here, we show that this open reading frame does in fact encode a fused beta-beta' polypeptide. In addition, we establish by DNA sequencing that rpoB and rpoC are also fused in each of four other unrelated strains of H. pylori, as well as in Helicobacter felis, another member of the same genus. In contrast, the rpoB and rpoC genes are separate in two members of the related genus Campylobacter (Campylobacter jejuni and Campylobacter fetus) and encode separate RNA polymerase subunits. The Campylobacter genes are also unusual in overlapping one another rather than being separated by a spacer as in other Gram-negative bacteria. We propose that the unique organization of rpoB and rpoC in H. pylori may contribute to its ability to colonize the human gastric mucosa.

Amino Acid Sequence↗

Epithelial attachment alters the outcome of Helicobacter pylori infection.

Genetically defined in vivo models are needed to assess the importance of target cell attachment in bacterial pathogenesis. Gastric colonization by Helicobacter pylori in human populations is common and persistent, and has various outcomes including peptic ulcers and cancer. The impact of attachment on the course of infection was examined in transgenic mice expressing a human receptor for H. pylori in their gastric epithelium. Persistent infection by a clinical isolate occurred at comparable microbial densities in transgenic and nontransgenic littermates. However, microbial attachment in transgenic mice resulted in production of autoantibodies to Lewisx carbohydrate epitopes shared by bacteria and acid-secreting parietal cells, chronic gastritis, and parietal cell loss. This model should help identify bacterial and host genes that produce attachment-related pathology.

Adhesins, Bacterial↗

Helicobacter pylori adhesin binding fucosylated histo-blood group antigens revealed by retagging.

The bacterium Helicobacter pylori is the causative agent for peptic ulcer disease. Bacterial adherence to the human gastric epithelial lining is mediated by the fucosylated Lewis b (Leb) histo-blood group antigen. The Leb-binding adhesin, BabA, was purified by receptor activity-directed affinity tagging. The bacterial Leb-binding phenotype was associated with the presence of the cag pathogenicity island among clinical isolates of H. pylori. A vaccine strategy based on the BabA adhesin might serve as a means to target the virulent type I strains of H. pylori.

Adhesins, Bacterial↗

Cure of Helicobacter pylori infection by omeprazole-clarithromycin-based therapy in non-human primates.

Rhesus monkeys raised in colonies tend to become naturally infected by Helicobacter pylori early in life. Earlier attempts to cure H. pylori infection with a 10-day triple therapy (metronidazole, amoxicillin, and peptobismol) were only partially (60%) successful, probably because of preexisting metronidazole resistance. This study was carried out to determine the efficacy of an alternative clarithromycin-omeprazole-based therapy for curing H. pylori infection in Rhesus monkeys (Macaca mulatta), and to examine histologic and serologic correlates of curing. Five monkeys were endoscoped under ketamine anesthesia. Histology and culture of gastric biopsies and serologic tests demonstrated that they were H. pylori-positive. Two animals had not received prior anti-H. pylori treatment, while three other animals had failed triple therapy and carried metronidazole-resistant H. pylori strains. Quadruple therapy with omeprazole, clarithromycin, amoxicillin, and bismuth subsalicylate was given for 10 days to these five animals. All five animals were cured of the infection, and remained H. pylori-free, based on histology and culture at regular intervals for the 5 months posttherapy during which they were followed. Gastritis scores and anti-H. pylori IgG levels decreased in each animal during this period to levels characteristic of uninfected animals. These results indicate that an omeprazole-clarithromycin-based regimen can cure H. pylori infection in Rhesus monkeys, with resolution of abnormal histology and serologic responses. They suggest that this preclinical animal model is useful for testing new anti-H. pylori therapies.

Amoxicillin↗

Analyses of the cag pathogenicity island of Helicobacter pylori.

Most strains of Helicobacter pylori from patients with peptic ulcer disease or intestinal-type gastric cancer carry cagA, a gene that encodes an immunodominant protein of unknown function, whereas many of the strains from asymptomatically infected persons lack this gene. Recent studies showed that the cagA gene lies near the right end of a approximately 37kb DNA segment (a pathogenicity island, or PAI) that is unique to cagA+ strains and that the cag PAI was split in half by a transposable element insertion in the reference strain NCTC11638. In complementary experiments reported here, we also found the same cag PAI, and sequenced a 39 kb cosmid clone containing the left 'cagII' half of this PAI. Encoded in cagII were four proteins each with homology to four components of multiprotein complexes of Bordetella pertussis ('Ptl'), Agrobacterium tumefaciens ('Vir'), and conjugative plasmids ('Tra') that help deliver pertussis toxin and T (tumour inducing) and plasmid DNA, respectively, to target eukaryotic or prokaryotic cells, and also homologues of eukaryotic proteins that are involved in cytoskeletal structure. To the left of cagII in this cosmid were genes for homologues of HsIU (heat-shock protein) and Era (essential GTPase); to the right of cagII were homologues of genes for a type I restriction endonuclease and ion transport functions. Deletion of the cag PAI had no effect on synthesis of the vacuolating cytotoxin, but this deletion and several cag insertion mutations blocked induction of synthesis of proinflammatory cytokine IL-8 in gastric epithelial cells. Comparisons among H. pylori strains indicated that cag PAI gene content and arrangement are rather well conserved. We also identified two genome rearrangements with end-points in the cag PAI. One, in reference strain NCTC11638, involved IS605, a recently described transposable element (as also found by others). Another rearrangement, in 3 of 10 strains tested (including type strain NCTC11637), separated the normally adjacent cagA and picA genes and did not involve IS605. Our results are discussed in terms of how cag-encoded proteins might help trigger the damaging inflammatory responses in the gastric epithelium and possible contributions of DNA rearrangements to genome evolution.

Antigens, Bacterial↗

Metronidazole resistance in Helicobacter pylori is due to null mutations in a gene (rdxA) that encodes an oxygen-insensitive NADPH nitroreductase.

Metronidazole (Mtz) is a critical component of combination therapies that are used against Helicobacter pylori, the major cause of peptic ulcer disease. Many H. pylori strains are Mtz resistant (MtzR), however, and here we show that MtzR results from loss of oxygen-insensitive NADPH nitroreductase activity. The underlying gene (called 'rdxA') was identified in several steps: transformation of Mtz-susceptible (MtzS) H. pylori with cosmids from a MtzR strain, subcloning, polymerase chain reaction (PCR) and DNA sequencing. We also found that (i) E. coli (normally MtzR) was rendered MtzS by a functional H. pylori rdxA gene; (ii) introduction of rdxA on a shuttle vector plasmid into formerly MtzR H. pylori rendered it MtzS; and (iii) replacement of rdxA in MtzS H. pylori with an rdxA::camR null insertion allele resulted in a MtzR phenotype. The 630 bp rdxA genes of five pairs of H. pylori isolates from infections that were mixed (MtzR/MtzS), but uniform in overall genotype, were sequenced. In each case, the paired rdxA genes differed from one another by one to three base substitutions. Typical rdxA genes from unrelated isolates differ by 5% in DNA sequence. Therefore, the near identity of rdxA genes from paired MtzR and MtzS isolates implicates de novo mutation, rather than horizontal gene transfer in the development of MtzR. Horizontal gene transfer could readily be demonstrated under laboratory conditions with mutant rdxA alleles. RdxA is a homologue of the classical nitroreductases (CNRs) of the enteric bacteria, but differs in cysteine content (6 vs. 1 or 2 in CNRs) and isoelectric point (pI=7.99 vs. 5.4-5.6), which might account for its reduction of low redox drugs such as Mtz. We suggest that many rdxA (MtzR) mutations may have been selected by prior use of Mtz against other infections. H. pylori itself is an early risk factor for gastric cancer; the possibility that its carcinogenic effects are exacerbated by Mtz use, which is frequent in many societies, or the reduction of nitroaromatic compounds to toxic, mutagenic and carcinogenic products, may be of significant concern in public health.

Amino Acid Sequence↗

Prevalence of vacuolating cytotoxin production and distribution of distinct vacA alleles in Helicobacter pylori from China.

Studies of Helicobacter pylori from the West have linked production of vacuolating cytotoxin and a particular signal sequence (s1a) allele of the underlying vacA gene to peptic ulcer disease (PUD). Among Chinese H. pylori, most isolates from both PUD and gastritis patients were toxigenic (35/46 and 29/35, respectively). Polymerase chain reaction and DNA sequencing showed that 95 of 96 isolates carried vacA s1a alleles. In the mid-region, 78 of 96 isolates carried m2; 14 were m1-like but only 87% identical (DNA-level) to classical m1 and were designated m1b; the other 4 were unusual hybrids (m1b-type proximal, m2-type distal). Isolates with m1b and m1b-m2 alleles produced higher levels of vacuolating activity than did isolates with m2 alleles (P < .01). There was no association between any vacA allele and disease. These results suggest that the composition of H. pylori gene pools varies geographically and that other as-yet-unknown polymorphic H. pylori genes are important in PUD.

Alleles↗

DNA sequence conservation and diversity in transposable element IS605 of Helicobacter pylori.

BACKGROUND: IS605, a transposable element-like sequence identified in the virulence-associated cag region of Helicobacter pylori reference strain NCTC11638, is unusual in containing two oppositely-oriented open reading frames whose products are homologues of the single transposases of the unrelated elements, IS200 and IS1341. METHODS: One hundred independent H. pylori isolates from different parts of the world were screened by PCR and dot blot hybridization to determine the presence of IS605. For some positive isolates, southern hybridizations and sequence analyses were done. RESULTS: Of the 100 isolates, 31 were found to contain sequences related to each ORF with orientation and spacing matching those in canonical IS605-hybridizing sequences. No isolate containing just one ORF and not the other was found. The frequencies of IS605 carriage were independent of geographical origin (U.S. vs. non-U.S.), and of the probable virulence of the isolate (cag status, toxin production or vacA alleles, patient symptoms). Southern blot hybridization of six IS605-containing strains revealed one to nine IS605 copies per genome. Two types of DNA sequence diversity were found: first, a specific 100 bp deletion in two isolates; second, base substitution divergence of 0.4% to 7.5% in pairwise comparisons among the eight isolates characterized, a level of divergence similar to that seen in other H. pylori chromosomal genes. CONCLUSIONS: Based on these findings, we speculate that IS605 is a relatively ancient component of the H. pylori gene pool that has proliferated in this species by horizontal gene transfer, homologous recombination, and transposition.

Base Sequence↗

Identification of potential diagnostic and vaccine candidates of Helicobacter pylori by two-dimensional gel electrophoresis, sequence analysis, and serum profiling.

There is great interest in characterizing the proteins of the gastric pathogen Helicobacter pylori, especially those to which humans respond immunologically, because of the potential importance of such proteins in diagnosis and vaccine development. Two-dimensional gel electrophoresis was used to separate and identify potential antigens of H. pylori ATCC 43504. Over 30 proteins were reactive in Western blots with pooled sera from 14 infected patients. These proteins were analyzed by N-terminal sequence analysis. Fourteen proteins were determined to be distinct from any proteins previously described from H. pylori; the others were previously isolated and characterized proteins. Analysis of eight distinct H. pylori strains showed that most of these antigens were produced by all of the strains. We propose that collection of new antigens such as those recognized here will be useful in serologic tests for detecting and monitoring H. pylori infection and may also serve as potential targets for antimicrobial agent or vaccine development.

Amino Acid Sequence↗

Identification of potential diagnostic and vaccine candidates of Helicobacter pylori by "proteome" technologies.

BACKGROUND: There is great interest in characterizing the proteins of the gastric pathogen, Helicobacter pylori, especially those proteins to which humans respond immunologically. Such proteins have potential importance in diagnosis and vaccine development. METHODS: Two-dimensional gel electrophoresis in combination with Western blotting was used to separate and identify potential antigens of Helicobacter pylori strain Z-170. Proteins found to be reactive with pooled sera from 14 infected patients were individually digested in situ with endoproteinase Lys-C, and the resulting fragments were analyzed by matrix assisted laser desorption time-of-flight mass spectrometry (MALDI-TOF MS). RESULTS: Over 20 proteins were reactive in Western blots with pooled sera from 14 infected patients. The mass spectral data was compared with predictions from the H. pylori genome DNA sequence. Each of the 20 proteins was readily identified. CONCLUSIONS: We propose that this "proteome" approach for identification of previously unknown proteins will be useful in examining regulation of H. pylori gene expression and protein localization in the development of improved serologic tests to detect and monitor H. pylori infection. This approach will also be useful for identifying potential targets for antimicrobial or vaccine development for H. pylori and other pathogens whose genomes have been sequenced.

Antigens, Bacterial↗

Genotypes of Helicobacter pylori in Lithuanian families.

BACKGROUND: Infection by Helicobacter pylori is very common in Eastern Europe, but the genotypes of predominant strains and prevalence of single vs. multiple infection in this geographic region have not been much studied. MATERIALS AND METHODS: H. pylori was cultured from 13 Lithuanians belonging to six families, and characterized by arbitrarily primed PCR (RAPD) DNA fingerprinting, and by hybridization and PCR tests for polymorphic virulence-associated and neutral genetic markers. RESULTS: Eleven distinct strains were identified: seven carried the cag pathogenicity island (PAI) and the s1 (generally toxigenic) allele of the vacuolating cytotoxin gene (vacA); the other four were cag- and carried the vacA s2 (nontoxigenic) allele; five of the seven vacA s1 strains carried an m1 middle region allele of vacA, whereas all other strains carried m2 alleles, which are generally less toxigenic; four strains carried the virulence-associated iceA1 gene, and the other seven carried the completely unrelated iceA2 gene at the same locus. Insertion sequences IS605 and IS606 and a plasmid replication gene (repA) were also found in some strains. RAPD fingerprinting identified a mixed infection in just one of the 13 persons. In two families, two of the members harbored the same strain, whereas in the other four families each member tested carried a different strain. Resistance to metronidazole (Mtz) was found in two persons; each of them also carried MtzS strains that were indistinguishable from the coresident MtzR strain by RAPD fingerprinting, and that were thus closely related in overall genotype. CONCLUSION: The distribution of genotypes of Lithuanian H. pylori strains resembles that seen in Western Europe. This finding has important implications for understanding modes of H. pylori transmission and evolution.

Adolescent↗

The complete genome sequence of the gastric pathogen Helicobacter pylori.

Helicobacter pylori, strain 26695, has a circular genome of 1,667,867 base pairs and 1,590 predicted coding sequences. Sequence analysis indicates that H. pylori has well-developed systems for motility, for scavenging iron, and for DNA restriction and modification. Many putative adhesins, lipoproteins and other outer membrane proteins were identified, underscoring the potential complexity of host-pathogen interaction. Based on the large number of sequence-related genes encoding outer membrane proteins and the presence of homopolymeric tracts and dinucleotide repeats in coding sequences, H. pylori, like several other mucosal pathogens, probably uses recombination and slipped-strand mispairing within repeats as mechanisms for antigenic variation and adaptive evolution. Consistent with its restricted niche, H. pylori has a few regulatory networks, and a limited metabolic repertoire and biosynthetic capacity. Its survival in acid conditions depends, in part, on its ability to establish a positive inside-membrane potential in low pH.

Antigenic Variation↗

Did the inheritance of a pathogenicity island modify the virulence of Helicobacter pylori?

Strains of Helicobacter pylori from patients with peptic ulcer disease and gastric cancer contain a 40-kb fragment of DNA that is not present in isolates from carriers with asymptomatic infections. The discovery of the cag pathogenicity island suggests that virulence has evolved by quantum leaps through the inheritance of one or more DNA insertions.

Biological Evolution↗