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C A Strathdee

Publications and source records attributed to C A Strathdee.

25 records · Page 2Linked to original sources

Molecular and cellular biology of Fanconi anemia.

Fanconi anemia (FA) is an autosomal recessive disorder characterized by progressive pancytopaenia, a diverse assortment of congenital malformations, and a predisposition to the development of malignancies. The extensive clinical heterogeneity observed in FA is reflected in genetic heterogeneity; the existence of 4 complementation groups has been inferred from complementation analysis. FA is putatively characterized as a DNA repair disorder since cells derived from patients are hypersensitive to DNA cross-linking agents. Although the primary defects in FA are not known, biochemical evidence supports either a direct defect in the removal of DNA cross-links or a defect in the ability of cells to respond to oxidative stress resulting from the interaction with cross-linking agents. Confirmation of either hypothesis awaits the cloning of genes defective in FA; some of the strategies to this end are discussed.

Cells, Cultured↗

Molecular studies of Ssa1, a serotype-specific antigen of Pasteurella haemolytica A1.

A serotype-specific antigen of Pasteurella haemolytica A1 encoded on the recombinant plasmid pSSA1 is characterized. Nucleotide sequence analysis of the insert DNA in pSSA1 identified the gene ssaI, which codes for a protein of approximately 100 kDa. In vivo labeling of pSSA1-encoded protein in Escherichia coli maxicells showed the expression of a 100-kDa protein from the insert DNA on the recombinant plasmid. Northern blot and primer extension analyses were used to identify the mRNA transcript in P. haemolytica A1 and the putative promoter of ssaI. The antigen (designated Ssa1) could be localized to the outer membrane of P. haemolytica A1 and E. coli clones carrying pSSA1. A rabbit serum against Ssa1 was produced by using whole cells of E. coli expressing Ssa1 on the surface as the immunogen, demonstrating that Ssa1 is immunogenic in rabbits. The results from colony immunoblot analysis with calf serum from animals that were resistant to P. haemolytica A1-induced pneumonia suggest indirectly that Ssa1 is also immunogenic in the animals.

Amino Acid Sequence↗

Regulation of expression of the Pasteurella haemolytica leukotoxin determinant.

The Pasteurella haemolytica leukotoxin determinant is composed of four contiguous genes encoded on the same DNA strand and denoted lktCABD, in the order of their genetic organization. To gain a better understanding of the expression and regulation of the leukotoxin, the transcripts and promoters of the lkt determinant were mapped. Northern (RNA) blot analysis revealed two sets of transcripts. One set was 3.7 and 3.4 kilobases long, encoded lktCA, and comprised approximately 90% of the transcripts, whereas the other set was 7.4 and 7.1 kilobases long and encoded lktCABD. Two promoters were present, and each had features similar to the Escherichia coli consensus promoter sequences. Both promoters were located upstream from lktC; they were separated by 258 base pairs, as mapped by primer extension analysis. These results suggest a mechanism of expression similar to that of the related E. coli hemolysin. Transcription initiated upstream from lktC at either promoter and continued through lktC and lktA to a rho-independent transcriptional termination signal in the lktA-lktB intercistronic region. This signal attenuated expression by terminating 90% of transcription to generate the 3.7- and 3.4-kilobase lktCA transcripts. The remaining readthrough transcription generated full-length 7.4- and 7.1-kilobase lktCABD transcripts. Expression of the leukotoxin was greatly reduced by growth at 30 degrees C, pH 6.5, and Fe2+ limitation. These conditions also modulated the expression of a number of other secreted proteins, which suggests that all of these secreted proteins are controlled by the same regulatory mechanism.

Bacterial Toxins↗

Cloning, nucleotide sequence, and characterization of genes encoding the secretion function of the Pasteurella haemolytica leukotoxin determinant.

The structural gene of the Pasteurella haemolytica leukotoxin determinant is highly homologous to that of the Escherichia coli hemolysin determinant, which also encodes a specialized set of genes involved in the secretion of the hemolysin. In this report, we describe the cloning and nucleotide sequence of the analogous secretion genes from P. haemolytica which make up the remainder of the leukotoxin determinant. The secretion genes were cloned directly from the P. haemolytica chromosome to form the recombinant plasmid pPH5B. By subcloning the secretion genes together with the leukotoxin structural gene, the cloned leukotoxin determinant was reconstructed on a single plasmid, pLKT52, which directs the synthesis of active leukotoxin to the culture supernatant when expressed in E. coli. DNA sequence analysis showed the presence of two secretion genes, designated lktB and lktD in order of their genetic organization, which code for proteins of 79.7 and 54.7 kilodaltons, both of which were detected when pLKT52 was expressed in E. coli minicells. The lktB and lktD genes were found to be highly homologous to the hlyB and hlyD secretion genes of the hemolysin determinant, and the predicted LktB-HlyB and LktD-HlyD proteins were 90.5 and 75.6% homologous. Nucleotide sequence homology between the leukotoxin and hemolysin determinants was limited to the C, A, B, and D coding regions, although the presence of similar transcriptional terminators in the A-B intercistronic region is suggestive of a similar transcriptional organization. On the basis of these data, we hypothesize that the two determinants share a common evolutionary history and are prototypes for a widely disseminated family of virulence factors, the RTX cytotoxins.

Amino Acid Sequence↗

Extensive homology between the leukotoxin of Pasteurella haemolytica A1 and the alpha-hemolysin of Escherichia coli.

The 19.8- and 101.9-kilodalton leukotoxin proteins of Pasteurella haemolytica (LKTC and LKTA, respectively) share extensive homology with the HLYC and HLYA alpha-hemolysin proteins of Escherichia coli. The leukotoxin LKTA protein cross-reacts with hemolysin-specific antisera in Western blot (immunoblot) analysis, indicating that it shares epitopes with the alpha-hemolysin HLYA protein. Both LKTA and HLYA contain a conserved hydrophobic region, as well as a set of tandemly repeated domains. These features have been implicated in the lytic function of the alpha-hemolysin.

Amino Acid Sequence↗

Nucleotide sequence of the leukotoxin genes of Pasteurella haemolytica A1.

A 4.4-kilobase-pair DNA fragment coding for the leukotoxin of Pasteurella haemolytica A1 has been isolated, and its nucleotide sequence has been determined. Two open reading frames, designated lktC and lktA, coding for proteins of 19.8 and 101.9 kilodaltons, respectively, were identified. Expression of the two genes in minicell-labeling experiments resulted in the production of the predicted proteins LKTC and LKTA. By using an antiserum against the soluble antigens of P. haemolytica A1 in Western blot (immunoblot) analysis of total cellular proteins from the Escherichia coli clones, LKTA was identified as an additional antigenic protein. Results from subcloning of the DNA fragment suggested that expression from both lktC and lktA is required for leukotoxin activity, indicating that the leukotoxin of P. haemolytica A1 is encoded by two genes. A comparison of the organization and the DNA sequence of the leukotoxin genes with those of the E. coli alpha-hemolysin genes showed a significant degree of homology between the two loci. This analysis suggested that the leukotoxin genes of P. haemolytica A1 and the E. coli alpha-hemolysin genes may have evolved from a common ancestor and that the two toxins may share similar activities or functional domains or both.

Amino Acid Sequence↗

Cloning and expression of the leukotoxin gene of Pasteurella haemolytica A1 in Escherichia coli K-12.

A clone bank of Pasteurella haemolytica A1 was constructed by partial digestion of the genomic DNA with Sau3A and ligation of 5- to 10-kilobase-pair fragments into the BamHI site of the plasmid vector pBR322. After transformation into Escherichia coli K-12, a total of 4 X 10(3) recombinant clones was obtained. These were screened for the production of P. haemolytica soluble antigens by a colony enzyme-linked immunosorbent assay blot method with a rabbit antiserum raised against the soluble antigens. The clones producing P. haemolytica soluble antigens were then analyzed for the production of the leukotoxin by a cytotoxicity assay with cells from a bovine leukemia-derived B-lymphocyte cell line as the target cells. Positive clones were identified, and subsequent restriction analysis of the recombinant plasmids showed that the same 6.3 kilobase pairs of insert DNA was cloned in either of the two orientations into the plasmid vector pBR322. One of the clones was selected for further characterization of the leukotoxin as produced in E. coli. Tests for heat lability and target cell species specificity with canine, porcine, and human peripheral blood lymphocytes indicated that the activity of the cloned leukotoxin was identical to that of the P. haemolytica leukotoxin. Furthermore, the E. coli-produced leukotoxin was also neutralized by bovine or rabbit antiserum known to have antitoxic activity. When cellular proteins from the E. coli clones were subjected to sodium dodecyl sulfate-polyacrylamide gel electrophoresis and Western blot analysis, a 100,000-dalton protein was identified which corresponded to one of the soluble antigens found in the leukotoxic culture supernatant of P. haemolytica. These results demonstrated that the gene(s) for the P. haemolytica leukotoxin have been cloned and that the leukotoxin was expressed in E. coli.

Animals↗