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C K Stover

Publications and source records attributed to C K Stover.

46 records · Page 3Linked to original sources

Immunization against parasites: bridging the gap between attenuated and non-living vaccines.

While great progress has been made in the last decade in defining parasite antigens which are targets of host protective responses, only limited success has been achieved in the use of these molecules as effective vaccines. A consistent problem is the failure of the candidate immunogens to induce levels of protection comparable to those obtained with attenuated vaccines against the same organisms. One explanation is that the purified or recombinant molecules employed have not been presented in a form or route which induces the correct T cell or cytokine response necessary for protection. As summarized in this overview, optimal immunization with attenuated vaccines is associated with characteristic patterns of T cell subset and cytokine induction and in at least several examples has been shown to be altered by exogenous cytokine. We hypothesize that cytokine manipulation may offer a useful strategy for improving the action of existing nonliving vaccines. The gap in efficacy between attenuated and dead vaccines could also be bridged by the use of live recombinant vaccine vectors. We have previously reported that paramyosin admixed with BCG can induce partial protection against Schistosoma mansoni in mice. Our preliminary results in the construction and testing of a recombinant BCG vector incorporating schistosome paramyosin are described.

Animals↗

Detection of Rickettsia tsutsugamushi by gene amplification using polymerase chain reaction techniques.

Scrub typhus is commonly undiagnosed in endemic areas due, in part, to dependence on retrospective serodiagnosis. Since the etiologic agent, R. tsutsugamushi, will not grow in cell-free systems, a rapid direct-agent detection system such as provided by polymerase chain reaction (PCR) methodology is needed. Genes coding for the variable 56-kDa antigen of R. tsutsugamushi were amplified through 35 cycles using 20-mer oligonucleotide primers and Taq polymerase. Amplification of 1-ng samples of DNA extracted from purified prototype R. tsutsugamushi Karp, Gilliam, and Kato strains was detected by direct visual inspection of the electrophoresed, ethidium bromide-stained, specific bands. Specificity of the PCR was shown when PCR amplification of various non-scrub typhus rickettsial DNAs was unsuccessful. R. tsutsugamushi DNA extracted from the blood of infected mice could be PCR amplified and the 1477-base pair product detected by either direct visualization or by specific hybridization with amplified non-radioactive digoxigenin-11-dUTP-labeled Karp 56-kDa DNA probe.

Animals↗

Molecular cloning and sequence analysis of the Sta58 major antigen gene of Rickettsia tsutsugamushi: sequence homology and antigenic comparison of Sta58 to the 60-kilodalton family of stress proteins.

The scrub typhus 58-kilodalton (kDa) antigen (Sta58) of Rickettsia tsutsugamushi is a major protein antigen often recognized by humans infected with scrub typhus rickettsiae. A 2.9-kilobase HindIII fragment containing a complete sta58 gene was cloned in Escherichia coli and found to express the entire Sta58 antigen and a smaller protein with an apparent molecular mass of 11 kDa (Stp11). DNA sequence analysis of the 2.9-kilobase HindIII fragment revealed two adjacent open reading frames encoding proteins of 11 (Stp11) and 60 (Sta58) kDa. Comparisons of deduced amino acid sequences disclosed a high degree of homology between the R. tsutsugamushi proteins Stp11 and Sta58 and the E. coli proteins GroES and GroEL, respectively, and the family of primordial heat shock proteins designated Hsp10 Hsp60. Although the sequence homology between the Sta58 antigen and the Hsp60 protein family is striking, the Sta58 protein appeared to be antigenically distinct among a sample of other bacterial Hsp60 homologs, including the typhus group of rickettsiae. The antigenic uniqueness of the Sta58 antigen indicates that this protein may be a potentially protective antigen and a useful diagnostic reagent for scrub typhus fever.

Amino Acid Sequence↗

The 56-kilodalton major protein antigen of Rickettsia tsutsugamushi: molecular cloning and sequence analysis of the sta56 gene and precise identification of a strain-specific epitope.

Lasting immunity against Rickettsia tsutsugamushi, the causative agent of scrub typhus fever, has been demonstrated to be strain specific. Two protein antigens of 110 and 56 kilodaltons (kDa) have been shown to exhibit strain-specific epitopes. The 56-kDa scrub typhus antigen (Sta56) is an abundant outer membrane protein of R. tsutsugamushi and is an antigen often recognized by humans infected with this obligate intracellular bacterium. In this study the complete gene encoding Sta56 (strain Karp) was cloned into pBR322 on a 2.3-kilobase genomic HindIII DNA fragment and the complete 56-kDa polypeptide was expressed in Escherichia coli. DNA sequence analysis of the 2.3-kilobase HindIII fragment revealed an open reading frame large enough to encode a 56-kDa polypeptide. A putative signal sequence was identified at the deduced amino terminus of the Sta56 polypeptide, and pulse-chase analysis of maxicells labeled with [35S]methionine demonstrated that a higher-molecular-weight precursor matures into the 56-kDa polypeptide. Epitope scanning analysis with synthetic peptides derived from the deduced amino acid sequence identified an octapeptide (located from amino acid residues 117 to 124) that was reactive with a Karp strain-specific monoclonal antibody (K13F88A). Other epitopes recognized by different monoclonal antibodies, including another Karp strain-specific monoclone (K1E106), were localized to different regions of the protein based on their reactivities with lambda gt11 recombinants expressing various portions of the sta56 gene.

Amino Acid Sequence↗

Antigenic and genetic relatedness of eight Rickettsia tsutsugamushi antigens.

The genetic and antigenic relatedness of eight antigens in three strains of Rickettsia tsutsugamushi has been studied by using recombinant organisms expressing epitopes of the 150-, 110-, 72-, 58-, 56-, 49-, 47-, and 20-kilodalton (kDa) polypeptide antigens of the Karp strain. Southern blot analysis of Karp, Kato, and Gilliam strain genomic DNA by using probes specific for each antigen class indicated that while strong homology exists between each of the corresponding antigen genes in these three strains, some restriction fragment length polymorphism exists. Antibodies affinity purified against each recombinant antigen class reacted with a comparably sized polypeptide in the Karp, Kato, and Gilliam strains in Western blots (immunoblots). Against more recent human isolates of R. tsutsugamushi, the affinity-purified antibodies against the 58-kDa recombinant antigen (anti-58-kDa) reacted with all nine isolates, anti-56-kDa reacted with eight of nine isolates, anti-47-kDa reacted with eight of nine isolates, anti-72-kDa reacted with eight of nine isolates, and anti-110-kDa reacted with four of nine isolates. Additional analysis indicated that the 110-kDa antigen may contain strain-specific epitopes similar to those previously reported for the 56-kDa polypeptide. Evidently, the strain heterogeneity among scrub typhus rickettsiae is a result of multiple components that exhibit variability in a background of strong homology.

Antigens, Bacterial↗

Molecular cloning and characterization of supQ/newD, a gene substitution system for the leuD gene of Salmonella typhimurium.

The isopropylmalate isomerase of Salmonella typhimurium and Escherichia coli is a complex of the leuC and leuD gene products. The supQ/new D gene substitution system in S. typhimurium restores leucine prototrophy to leuD mutants of S. typhimurium. Previous genetic evidence supports a model that indicates the replacement of the missing LeuD polypeptide by the newD gene product. This model proposed that this gene substitution is possible when a mutation at the supQ locus (near newD) liberates unaltered newD polypeptide from its normal complex with the supQ protein product. In this study, recombinant plasmids carrying newD, supQ, or both were transformed into E. coli and S. typhimurium strains deleted for the leuD and supQ genes to test the supQ/newD gene substitution model for suppression of leucine auxotrophy. It was determined that the newD gene encodes a 22-kilodalton polypeptide which can restore leucine prototrophy to leuD deletion strains and that a functional supQ gene prevents this suppression. It was also determined that the supQ and newD genes are separated by a gene encoding a 50-kilodalton protein, pB. While there is extensive DNA sequence homology between the leucine operons of S. typhimurium and E. coli, DNA hybridization experiments did not indicate substantial homology between the newD and leuD genes. These data, taken together with previously obtained genetic data, eliminate the possibility that supQ and newD are recently translocated segments of the leucine operon.

Ampicillin Resistance↗

Use of conversion adaptors to clone antigen genes in lambda gt11.

A strategy has been devised and tested to employ EcoRI conversion adaptors for cloning 5' cohesive-ended restriction fragments into the unique EcoRI site of the lambda gt11 expression vector. Five lambda gt11 chromosomal libraries were constructed with Rickettsia tsutsugamushi genomic DNA digested with restriction enzymes generating five different 5' cohesive ends. Recombinant phage yields as high as 10(7) plaque forming units were achieved without amplification of the five libraries. Sequences encoding epitopes of all eight R. tsutsugamushi polypeptide antigens, previously identified by Western blot analysis, were obtained in the five lambda gt11 expression libraries. Recombinant antigen expression was dependent on lambda gt11 lac promoter induction in 39% of the recombinants assayed. This method significantly improves the efficiency of genomic lambda gt11 library construction by eliminating blunt-ended ligation and simplifying the removal of unligated EcoRI-ended oligonucleotides.

Antigens, Bacterial↗

Molecular cloning and expression of Rickettsia tsutsugamushi genes for two major protein antigens in Escherichia coli.

Several polypeptide antigens of Rickettsia tsutsugamushi are recognized by human or primate convalescent sera and may be important protective immunogens. Molecular cloning and expression of the genes encoding the 110K (110 kilodalton) and 56K polypeptide antigens of R. tsutsugamushi Karp were accomplished in the lambda gt11 expression vector system. Southern blot analysis with the cloned fragments for the 56K polypeptide antigen (0.7 kilobases) and the 110K polypeptide antigen (5.4 kilobases) confirmed that the insert DNA was rickettsial and not host cell in origin. Expression of a complete 110K polypeptide was shown to be independent of isopropyl-beta-D-thiogalactopyranoside induction, suggesting that an intact rickettsial promoter was operational. Epitopes of the 56K polypeptide were expressed as lac promoter-dependent beta-galactosidase fusion proteins. Polyclonal antibody, affinity purified against the recombinant 110K and 56K polypeptides, reacted with polypeptides of similar size in the Kato and Gilliam strains of R. tsutsugamushi. Group-reactive, but not strain-specific, monoclonal antibodies against the 56K polypeptide reacted with the cloned portion of the 56K polypeptide. Western blot analysis demonstrated that the cloned 56K Karp antigen gene product is recognized by human convalescent serum.

Antibodies, Bacterial↗

Molecular cloning of invasion plasmid antigen (ipa) genes from Shigella flexneri: analysis of ipa gene products and genetic mapping.

Tn5-tagged invasion plasmid DNA (pWR110) from Shigella flexneri serotype 5 (strain M90T) was cloned into the expression vector lambda gt11. Recombinant phage (lambda gt11Sfl) expressing pWR110-encoded polypeptide antigens were identified by using rabbit antisera directed against S. flexneri M90T invasion plasmid antigens. Antigens encoded by lambda gt11Sfl recombinant phage were characterized by reacting affinity-purified antibodies, eluted from nitrocellulose-bound plaques of lambda gt11Sfl recombinants, with virulent, wild-type S. flexneri M90T polypeptides in Western blot analyses. lambda gt11Sfl clones directing the synthesis of complete, truncated, and beta-galactosidase fusion versions of three previously identified outer membrane polypeptides (57-, 43-, and 39-kilodalton [kDa] antigens) were isolated. A fourth polypeptide, similar in size to the 57-kDa antigen (ca. 58 kDa) but unrelated as determined by DNA homology and serological measurements, was also identified. Southern blot analysis of S. flexneri M90T invasion plasmid DNA hybridized with lambda gt11Sfl insert DNA probes was used to construct a map of invasion plasmid antigen genes (ipa) corresponding to the 57-kDa (ipaB), 43-kDa (ipaC), and 39-kDa (ipaD) polypeptides. Genes ipaB, ipaC and ipaD mapped to contiguous 4.6-kilobase (kb) and 1.0-kb HindIII fragments contained within a larger (23-kb) BamHI fragment. The ipaH gene, which encodes the synthesis of the 58-kDa polypeptide, did not map in or near the ipaBCD gene cluster, suggesting a distinct location of ipaH on the invasion plasmid.

Antigens, Bacterial↗