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Biomedical subjects

L W Enquist

Publications and source records attributed to L W Enquist.

At least 109 records · Page 6Linked to original sources

Bacterial synthesis of herpes simplex virus types 1 and 2 glycoprotein D antigens.

We have used elements of the E. coli lactose (lac) operon to produce a collection of herpes simplex virus types 1 and 2 glycoprotein D (gD-1 and gD-2) antigens. Our approach employed recombinant DNA techniques to construct plasmids with various segments of the gD-1 and gD-2 coding sequences fused to the lacZ gene. Such hybrid genes were expressed in a regulated manner in E. coli by joining them to the lac promoter-operator region. Efficient translation of these hybrid genes was facilitated by incorporating a coding sequence specifying a short peptide leader (lambda cro) in the plasmid expression vectors resulting in synthesis of chimeric Cro-gD-beta-galactosidase proteins. In addition, insertion of synthetic translation terminators at the junction of gD and lacZ enabled us to produce specific truncated gD polypeptide sequences unfused to beta-galactosidase. The gD antigens produced in E. coli were not glycosylated and were generally recovered as dense insoluble aggregates. Proteins containing portions of gD-1 or gD-2 were analyzed by immunoprecipitation using anti-HSV rabbit serum and a number of monoclonal antibodies recognizing different epitopes of gD-1. Initial animal studies were done with antigens that reacted with neutralizing antisera or monoclonal antibodies. When these bacterially produced proteins were injected into rabbits, antibodies were produced that specifically immunoprecipitated authentic gD polypeptides and neutralized the infectivity of both virus types. These studies suggest that gene fusion techniques can be used to produce immunogenic proteins in large quantity. These polypeptides are not only useful in analyses of gene structure and function, but also can provide novel diagnostic reagents and well-defined pure antigens for vaccine development.

Amino Acid Sequence↗

Analysis of two potential shuttle vectors containing herpes simplex virus defective DNA.

Two potential shuttle vectors which contained the identical herpes simplex virus type 1 (HSV-1) defective particle DNA (dDNA), but prokaryotic DNA of different origins, were examined for their stability when propagated in eukaryotic cells, and for their efficiency as shuttle vectors. Each chimeric molecule contained a 9.5 kilobase-pair (kb) EcoRI fragment (HSV12-7) representing a single unit of a class I HSV-1 dDNA. This dDNA was cloned into the bacteriophage lambda (lambda) vector lambda gtWES X lambda B' to create a 45.3 kb chimeric molecule (lambda gtWES::12-7), and into the plasmid vector pBR325, resulting in a 15.5 kb recombinant DNA molecule (pBR325::12-7). Each of these DNA molecules was transfected independently into African green monkey kidney cells which were then infected with wild-type HSV-1 helper virus. Both chimeric molecules were replicated and packaged into HSV-1 virions. However, regions of the lambda gtWES::12-7 chimeric DNA were rapidly deleted and rearranged, whereas the plasmid/HSV-1 DNA molecules were less rearranged. No intact lambda gtWES::12-7 DNA was recovered from HSV-1 virions as detected by infectivity of in vitro packaged DNA. However, pBR325::12-7 DNA isolated from HSV-1 virions was able to transform E. coli to ampicillin resistance. These results suggest additional considerations when designing single units of HSV-1 dDNA for use as vectors to accommodate large fragments of DNA.

Animals↗

Construction of E. coli expression plasmid libraries: localization of a pseudorabies virus glycoprotein gene.

We describe the use of a combined cloning/expression protocol to identify a gene encoding a Pseudorabies virus (PRV) glycoprotein. Prior to this study, the genome locations of PRV glycoproteins had not been described. We first identified PRV glycoproteins using antibodies directed against PRV virions. Using affinity chromatography and sodium dodecyl sulfate-polyacrylamide gel electrophoresis, the PRV glycoproteins were separated and antibodies were made against them in rabbits. Using DNase digestion, PRV genomic DNA was fragmented into approximately 500-base-pair regions. These random fragments were inserted in an expression vector and the PRV DNA sequences were expressed as proteins fused to beta-galactosidase. The antibodies made in rabbits were then used as probes in a Western blot analysis to screen for the presence of PRV-specific glycoprotein sequences in these PRV-beta-galactosidase fusion proteins. Two expression plasmids were isolated that specified fusion proteins that reacted in the Western blot analysis with rabbit antibodies directed against a 74,000 molecular weight PRV glycoprotein. The PRV DNA sequences represented in the expression plasmids were mapped within a single BamHI fragment of PRV genomic DNA, but were not overlapping. PRV-beta-galactosidase fusion proteins produced by these two expression plasmids were used to inoculate rabbits. Antibodies produced against both fusion proteins recognized PRV-specific glycoproteins of 74,000 and 92,000 molecular weight. This protocol should have general application in localizing genes within large DNA virus genomes.

Animals↗

Role for DNA homology in site-specific recombination. The isolation and characterization of a site affinity mutant of coliphage lambda.

Site-affinity (or saf) mutations change the specificity of prophage insertion. We have isolated a saf mutation of the bacteriophage lambda attachment site by inserting the phage chromosome into and then excising it from a secondary host attachment site. This causes reciprocal exchange of two seven base-pair segments (the overlap regions) that lie within the cores of the two sites. Since the two overlap regions differ from each other in nucleotide sequence, the recombinant sites are mutants. We have determined the effect of overlap region homology on recombination. We found that homology promotes integrative and excisive recombination. This suggests that the two overlap regions interact directly during recombination. The pattern of segregation of the saf mutation during site-specific recombination shows that it lies to the right of the point of genetic exchange about 95% of the time. This is a surprising result because lambda integrative recombination normally occurs by two staggered, reciprocal single-strand exchanges, one at each edge of the overlap region (Mizuuchi et al., 1981). Since saf lies within the overlap region, we might have expected that the point of genetic exchange would occur to the left of saf as often as to the right. We offer two models to account for this. (1) The mutation alters the location of one of the single-strand exchange points. (2) Efficient and strand-specific processing of mismatched base-pairs changes the expected segregation pattern.

Attachment Sites, Microbiological↗

Characterization of the herpes simplex virus type 1 glycoprotein D mRNA and expression of this protein in Xenopus oocytes.

We have identified and characterized a 3.0 kilobase (kb) mRNA containing coding sequences of the herpes simplex virus type 1 (HSV-1) glycoprotein D (gD) gene. The synthesis of this 3.0 kb mRNA was unaffected by the presence of cytosine arabinoside, but was made in greatly reduced amounts in cells infected with HSV-1 in the presence of cycloheximide: it was, therefore, classified as an early mRNA. By nuclease protection experiments, it was found that the 3.0 kb mRNA is unspliced and, further, that it is 3' co-terminal with a smaller 1.6 kb early mRNA which is transcribed from a DNA sequence 3' to the gD coding sequence. We describe the use of the Xenopus laevis oocyte system to produce HSV-1 gD in vitro. Oocytes injected with mRNA isolated from HSV-1-infected Vero cells synthesized gD, which was identified by immunoprecipitation. Injection of a plasmid clone containing the HSV-1 BamHI J fragment (0.89 to 0.93 map units) into the nuclei of Xenopus oocytes also resulted in synthesis of gD.

Animals↗

An immunologically active chimaeric protein containing herpes simplex virus type 1 glycoprotein D.

Herpes simplex virus type 1 (HSV-1) and type 2 (HSV-2) cause both persistent and latent infections, including recurrent cutaneous disease, lethal neonatal disease, central nervous system disease and other clinical syndromes. Modified live vaccines or conventionally prepared subunit vaccines have generally been unsuccessful in the treatment of HSV-1 and HSV-2 infections from the standpoints of safety and efficacy. It has been established that HSV-1 and HSV-2 infectivity may be neutralized in vitro with antisera directed specifically against each of the four major glycoproteins of the virus (gA/gB, gC, gD and gE) and antisera against glycoprotein gD, of either HSV-1 or HSV-2, are capable of neutralizing both HSV-1 and HSV-2 infectivity in vitro and in vivo. We have previously reported on the identification, DNA sequence and expression at low level in Escherichia coli of the gD gene of HSV-1 strain Patton. Here we describe construction of a hybrid gene encoding a chimaeric protein containing HSV-1 gD, bacteriophage lambda Cro and E. coli beta-galactosidase (gD-beta-gal) protein, which is expressed at high level in E. coli. Moreover, the chimaeric protein elicits antibodies in rabbits that not only immunoprecipitate gD from cells infected with HSV-1 and HSV-2 but also neutralize HSV-1 and HSV-2 infectivity in vitro.

Antigens, Viral↗

A lambda library of Herpes simplex virus type 1 (KOS) DNA fragments obtained by partial digestion with Sau3A.

Large fragments of Herpes simplex virus type 1 (HSV-1, strain KOS) DNA were produced by partial cleavage with Sau3A and inserted into a phage lambda BamHI vector. Recombinant phage (lambda KOS) DNA molecules were isolated and characterised. The final collection of phage recombinants contains partially overlapping inserts, which represent most of the HSV-1 genome. Restriction enzyme analysis of many independent clones containing Us sequences revealed sequence polymorphism in two specific regions.

Bacteriophage lambda↗

Herpes simplex virus type-1 glycoprotein D gene: nucleotide sequence and expression in Escherichia coli.

The protein coding region of the herpes simplex virus type-1 glycoprotein D (gD) gene was mapped, and the nucleotide sequence was determined. The predicted amino acid sequence of the gD polypeptide was found to contain a number of features in common with other virus glycoproteins. Insertion of this protein coding region into a bacterial expressor plasmid enabled synthesis in Escherichia coli of an immunoreactive gD-related polypeptide. The potential of this system for preparation of a type-common herpes simplex virus vaccine is discussed.

Amino Acid Sequence↗

Reiterated sequences within the intron of an immediate-early gene of herpes simplex virus type 1.

We describe the nucleotide sequence of a herpes simplex virus type 1 DNA fragment containing the intron of the immediate-early mRNA-5 (IE mRNA-5) gene. The location of the intron within this fragment was determined by a Berk & Sharp nuclease S1 protection analysis, and by cloning and sequencing cDNA containing sequences overlapping t he IE mRNA-5 splice point. We found that the 149 base pair (bp) intron contained four copies of an identical 23 bp GC rich tandem repeat followed by a further reiteration consisting of the first 15 bp only.

Cloning, Molecular↗

A deletion analysis of hybrid phage carrying the US region of Herpes simplex virus type 1 (Patton). I. Isolation of deletion derivatives and identification of chi-likes sequences.

The EcoRI-H fragment (15.4 kb) of Herpes simplex virus type 1 (HSV-1) has been cloned in lambda gtWES in both orientations. This fragment contains the entire US region and has about 900 bp of terminal redundant sequences derived from the internal and terminal repeats of the S region. 56 independent plaque-forming deletion derivatives of the lambda gt/WES::EcoRI-H hybrid phage were isolated using either EDTA resistance or ability to grow on Escherichia coli(P2) lysogens as selective methods. The endpoints of these deletions were located using nine restriction enzymes that cleave within the EcoRI-H fragment. All of the deletions have at least one endpoint within the cloned fragment. Several unusual features of the lambda hybrids, including heterogeneity of a particular region in the HSV-1 EcoRI-H fragment and the presence of chi-like sequences in the US region of HSV-1, are discussed.

Bacteriophage lambda↗

A deletion analysis of lambda hybrid phage carrying the US region of Herpes virus type 1 (Patton). II. Construction of an SmaI map.

The 15.4 kb EcoRI-H fragment of Herpes simplex virus type 1 (HSV-1) strain Patton, which contains the entire short unique (US) region, has been cloned in bacteriophage lambda. The fragment contains a terminal redundancy of about 900 bp that represents the S region terminal-repeat sequences. The restriction enzyme SmaI cleaves the EcoRI-H fragment at more than 30 sites. We have constructed an SmaI map of this fragment using thirteen isolates of lambda gtWES hybrid bacteriophage that carry various deletions of the EcoRI-H fragment.

Bacteriophage lambda↗

Characterization of coliphage lambda hybrids carrying DNA fragments from Herpes simplex virus type 1 defective interfering particles.

We describe the characterization of 34 hybrid lambda bacteriophages carrying EcoRI fragments obtained from DNA of defective interfering particles of the Patton strain of Herpes simplex virus type 1 (HSV-1). All cloned fragments contained S region terminal repeat sequences (TRs) fused to unique HSV-1 DNA. Several fragments contained deletions and rearrangements not described previously for DNA of HSV-1 defective interfering particles. A model describing the generation of defective interfering DNA based on recombination events involving the terminal "a" sequence as presented.

Bacteriophage lambda↗

Isolation and characterization of a cloned DNA sequence associated with the murine Ah locus and a 3-methylcholanthrene-induced form of cytochrome P-450.

Using partially purified mouse liver 23S mRNA known to be associated with the Ah locus and 3-methylcholanthrene-induced cytochrome P(1)-450, we synthesized double-stranded cDNA by the successive action of reverse transcriptase (RNA-directed DNA nucleotidyltransferase) and the Klenow A fragment of Escherichia coli DNA polymerase I. The double-stranded cDNA was inserted into pBR322 plasmid DNA by Pst I cleavage and homopolymeric "tailing" and cloned in E. coli LE392. Clone 46 hybridized with [(32)P]cDNA made from 23S mRNA from "Ah-responsive" C57BL/6N mice but did not hybridize with similarly prepared [(32)P]cDNA from "Ah-nonresponsive" DBA/2N mice. Clone 30 was positive, and clone 7 was negative, with both C57BL/6N and DBA/2N [(32)P]cDNA probes; these two clones were therefore used as "positive" and "negative" control clones, respectively. By translation-arrest experiments, clone 46 DNA and clone 30 DNA were shown to be associated with anti-P(1)-450- and anti-albumin-precipitable material, respectively. By agarose gel electrophoresis of Pst I digests, the clone 46 DNA insert was shown to be 1100 base pairs in total length and to contain one internal Pst I site. The cDNA made from total mRNA isolated from 3-methylcholanthrene-treated C57BL/6N mice hybridized to the two fragments of Pst I-digested DNA from clone 46, whereas similarly prepared cDNA from 3-methylcholanthrene-treated DBA/2N and control C57BL/6N and DBA/2N mice did not. Of 11 restriction endonucleases used, two (Pst I and Xba I) had sites within the clone 46 DNA insert. After hybridization of clone 46 (32)P-labeled nick-translated DNA to EcoRI fragments from A/HeJ mouse genomic DNA and fractionation by RPC-5 chromatography and gel electrophoresis, only one positive band (3-4 kilobase pairs appeared. These data demonstrate conclusively that pBR322 clone 46 DNA is associated with mRNA controlled by the murine Ah locus, presumably the structural gene encoding 3-methylcholanthrene-induced P(1)-450.

Animals↗

Strand exchange in lambda integrative recombination: genetics, biochemistry, and models.

We have asked, "What is the mechanism of strand exchange during site-specific recombination of phage lambda?" Crosses carried out in vivo have shown that the recombination joint can be extended rather than flush and that the four-strand breaks and rejoinings needed to from a recombinant can occur asynchronously. Crosses carried out in vitro have shown that all the nucleotides at the site of crossover are conserved during recombination, as are most or all of the superhelical turns present in the substrate molecules. We have presented new data showing that topoisomerase activity of Int protein relaxes DNA by making transient single-strand, rather than double-strand, breaks in the phosphodiester back-bone. These findings are incorporated into a model for strand exchange that has as its central intermediate a four-strand structure.

Bacteriophage lambda↗

Nucleotide sequences of integrated Moloney sarcoma provirus long terminal repeats and their host and viral junctions.

Integrated Moloney murine sarcoma provirus (MSV) has direct terminal repeat sequences (TRS). We determined the nucleotide sequence of both 588-base-pair TRS elements and the adjacent host and viral junctions of an integrated MSV cloned in bacteriophage lambda. Sequences were identified corresponding to the tRNAPro primer binding site in genomic RNA and the reverse-transcribed minus strong stop DNA. Each 588-base-pair repeat contains putative sites for promoting RNA synthesis and RNA polyadenylylation. The first and last 11 nucleotides of the TRS are inverted with respect to each other, and the same four-nucleotide host sequence is found bracketing integrated MSV. Some similarities of TRS and prokaryotic insertion sequence elements are discussed.

Animals↗