Abstract
Some strains of Helicobacter pylori are known to produce an extracellular cytotoxin that causes vacuolization in various mammalian cells. In this study, we found that concentrated culture supernatants from four Helicobacter strains isolated from patients infected with the bacterium, but having normal gastric mucosa, lacked cytotoxic activity. We also show that a higher percentage of strains isolated from patients with polymorphonuclear leukocyte infiltration of gastric mucosa are toxin positive (78%) versus those isolated from patients lacking such infiltration (33%). In addition to examining the relationship between pathology and cytotoxic activity, we used the previously published N-terminal sequence of the protein to clone and characterize vacA, the structural gene encoding the cytotoxin. Briefly, three oligonucleotides capable of encoding the first nine amino acids corresponding to the sense strand and four oligonucleotides corresponding to the noncoding strand of the last seven known amino acids of the cytotoxin protein were made. They were used in all 12 possible combinations in 12 different PCR reactions, with DNA from a cytotoxin-positive strain as template. In four combinations, the expected 69-bp fragment was seen. The sequence of this 69-bp fragment confirmed that it encoded the known N-terminal sequence of the cytotoxin. This gene is capable of encoding a 136-kDa protein with a 33-amino-acid signal peptide, whereas the purified cytotoxin is only 87 kDa, suggesting processing in the C-terminal region of the protein. A single copy of the vacA gene encodes the cytotoxin in H. pylori. Consequently, the insertion of a kanamycin resistance marker in the vacA gene produced an isogenic mutant lacking the cytotoxic activity. This mutant provides genetic evidence that vacA encodes the cytotoxin. Sequence analysis of the DNA adjacent to the vacA gene demonstrated that this gene is next to a putative cysteinyl tRNA synthetase gene. From the sequence arrangement, we predict that there are no other genes transcribed together with vacA. We also show that five of seven cytotoxin-negative strains examined still carry the sequences encoding it whereas the other two have suffered a deletion of the vacA gene. We further show that in at least one cytotoxin-negative but vacA-positive strain (MO19), there are variations in the length of the vacA gene that could explain the cytotoxin-negative phenotype in this strain.
MeSH Terms
Amino Acid Sequence
Bacterial Proteins/genetics
Bacterial Toxins/genetics
Base Sequence
Cloning, Molecular
Genes, Bacterial
Helicobacter pylori/genetics,pathogenicity
Molecular Sequence Data
Polymerase Chain Reaction
Chemicals
Bacterial Proteins
Bacterial Toxins
VacA protein, Helicobacter pylori
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Phadnis S H
Department of Molecular Microbiology, Washington University Medical School, St. Louis, Missouri 63110.
Ilver D
Janzon L
Normark S
Westblom T U
References (21)
21 references, click to expand
-
Histologic characteristics of Campylobacter pylori (Helicobacter pylori) mediated gastritis.
Ann Clin Lab Sci. 1990 Sep-Oct;20(5):329-36
PMID: 2256661
-
Basic local alignment search tool.
J Mol Biol. 1990 Oct 5;215(3):403-10
PMID: 2231712
-
Helicobacter pylori infection and the risk of gastric carcinoma.
N Engl J Med. 1991 Oct 17;325(16):1127-31
PMID: 1891020
-
Helicobacter pylori infection and gastric carcinoma among Japanese Americans in Hawaii.
N Engl J Med. 1991 Oct 17;325(16):1132-6
PMID: 1891021
-
Use of polymerase chain reaction-amplified Helicobacter pylori urease structural genes for differentiation of isolates.
J Clin Microbiol. 1992 Mar;30(3):739-41
PMID: 1313051
-
An enzyme with type IV prepilin peptidase activity is required to process components of the general extracellular protein secretion pathway of Klebsiella oxytoca.
Mol Microbiol. 1992 Mar;6(6):751-60
PMID: 1574004
-
Purification and characterization of the vacuolating toxin from Helicobacter pylori.
J Biol Chem. 1992 May 25;267(15):10570-5
PMID: 1587837
-
Construction of isogenic urease-negative mutants of Helicobacter pylori by allelic exchange.
J Bacteriol. 1992 Jul;174(13):4212-7
PMID: 1320607
-
Bafilomycin A1 inhibits Helicobacter pylori-induced vacuolization of HeLa cells.
Mol Microbiol. 1993 Jan;7(2):323-7
PMID: 8446034
-
PCR amplification of up to 35-kb DNA with high fidelity and high yield from lambda bacteriophage templates.
Proc Natl Acad Sci U S A. 1994 Mar 15;91(6):2216-20
PMID: 8134376
-
Molecular cloning of Helicobacter pylori DNA: important differences between mcrBC deletion host strains.
Mol Microbiol. 1993 Dec;10(5):1151
PMID: 7934864
-
A computer algorithm for testing potential prokaryotic terminators.
Nucleic Acids Res. 1984 May 25;12(10):4411-27
PMID: 6374619
-
Gene structure and extracellular secretion of Neisseria gonorrhoeae IgA protease.
Nature. 1987 Jan 29-Feb 4;325(6103):458-62
PMID: 3027577
-
Analysis of E. coli promoter sequences.
Nucleic Acids Res. 1987 Mar 11;15(5):2343-61
PMID: 3550697
-
Gene transfer from Escherichia coli to Campylobacter species: development of shuttle vectors for genetic analysis of Campylobacter jejuni.
J Bacteriol. 1987 Nov;169(11):5320-3
PMID: 2822671
-
Gastritis and Campylobacter pylori in healthy, asymptomatic volunteers.
Arch Intern Med. 1988 May;148(5):1149-51
PMID: 3365082
-
Evaluation of staining methods for identifying Campylobacter pylori.
Am J Clin Pathol. 1988 Oct;90(4):450-3
PMID: 2459956
-
Duodenal ulcer, Campylobacter pylori, and the "leaking roof" concept.
Lancet. 1988 Dec 24-31;2(8626-8627):1467-9
PMID: 2904580
-
Pathogenicity of Campylobacter pylori--a causative factor in gastritis?
Scand J Gastroenterol Suppl. 1989;160:3-6
PMID: 2683021
-
Characterization of and human serologic response to proteins in Helicobacter pylori broth culture supernatants with vacuolizing cytotoxin activity.
Infect Immun. 1990 Mar;58(3):603-10
PMID: 2307514
-
Pore-forming cytolysins of gram-negative bacteria.
Mol Microbiol. 1991 Mar;5(3):521-8
PMID: 2046545