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Biomedical subjects

J R Cameron

Publications and source records attributed to J R Cameron.

At least 37 records · Page 2Linked to original sources

Evidence for transposition of dispersed repetitive DNA families in yeast.

Dispersed repetitive DNA sequences from yeast (Saccharomyces cerevisiae) nuclear DNA have been isolated as molecular hybrids in lambdagt. Related S. cerevisiae strains show marked alterations in the size of the restriction fragments containing these repetitive DNAs. "Ty1" is one such family of repeated sequences in yeast and consists of a 5.6 kilobase (kb) sequence including a noninverted 0.25 kb sequence of another repetitious family, "delta", on each end. There are about 35 copies of Ty1 and at least 100 copies of delta (not always associated with Ty1) in the haploid genome. A few Ty1 elements are tandem and/or circular, but most are disperse and show (along with delta) some sequence divergence between repeat units. Sequence alterations involving Ty1 elements have been found during the continual propagation of a single yeast clone over the course of a month. One region with a large number of delta sequences (SUP4) also shows a high frequency of sequence alterations when different strains are compared. One of the differences between two such strains involves the presence or absence of a Ty1 element. The novel joint is at one inverted pair of delta sequences.

Base Sequence↗

Five hundredfold overproduction of DNA ligase after induction of a hybrid lambda lysogen constructed in vitro.

A lambda vector that contains the gene for Escherichia coli DNA ligase (lambdagt4-lop-11 lig+) has been modified to achieve overproduction of this enzyme. The third Eco RI site in the lambda chromosome has been altered by mutation, and the left-hand Eco RI fragment has been shortened. The new vector, lambdagt4-lop-11 lig+, forms a stable lysogen which, upon induction, produces a 100-fold increase in DNA ligase activity. Introduction of a phage mutation (S7) that prevents cell lysis results in an even greater increase (500-fold).

Coliphages↗

The effects of Escherichia coli and yeast DNA insertions on the growth of lambda bacteriophage.

The effects of Eco RI endonuclease-cleaved Escherichia coli and yeast (Saccharomyces cerevisiae) DNA fragments on the propagation of the lambda bacteriophage vectors containing them were determined on a nonmutanted and a PolA E. coli K12 host. Observable alterations in the growth of hybrids containing yeast DNA insertions were less frequent and less extreme than those seen in hybrids containing E. coli DNA. A lambda-E. coli hybrid was selected after extensive growth on the Pol A (deficient in polymerase I) host which also grew very well on the PolA+ host and may have resulted from some alteration in the hybrid. Hybrids selected on the PolA host gave no evidence for the expression of polymerase I activity. No lambda-yeast hybrid made from the lambdagt vector lacking lambda-specific recombination (red-) had a yield of viable bacteriophage on infection greater than two-thirds that of "wild-type" lambda.

Coliphages↗

Analysis of chromosomal integration and deletions of yeast plasmids.

Plasmid DNAs from six strains of Saccharomyces cerevisiae were compared. Three different plasmids were found, designated Scp 1, Scp 2 and Scp 3, with monomer lengths of 6.19, 6.06 and 5.97 kilobases as referenced to sequenced phiX174 DNA. DNA from each of the plasmids was inserted into a lambda vector DNA. Hybrid phage containing inserted DNA of the desired size were enriched by genetic selection and their DNAs analysed by rapid techniques. All three plasmids share the same organization, two unique sequences separated by two inverted repeats, and share basically the same DNA sequences. Scp 2 and Scp 3 differ from Scp 1 by missing a unique HpaI site and by having small overlapping deletions in the same region. The HpaI site in Scp 1 is, therefore, in a nonessential region and suitable for insertion of foreign DNA in the potential use of the yeast plasmid as a vector. Hybridization of labelled cloned plasmid DNA to restriction fragments of linear yeast DNA separated on agarose gels showed that the plasmid DNA was not stably integrated into the yeast chromosomal DNA.

Chromosomes↗

Isolation of bacteriophage lambda containing yeast ribosomal RNA genes: screening by in situ RNA hybridization to plaques.

We have developed an in situ hybridization technique which can be used to screen large numbers of hybrid bacteriophage for the presence of a particular inserted DNA sequence. Plaques of hybrid phage are formed on E. coli lawns on nitrocellulose filters, and their DNA is released, denatured, and fixed directly on the filters for hybridization to radioactive RNA probes. We have used this technique to isolate a number of hybrid bacteriophage lambda which contain EcoRl restriction fragments of the ribosomal RNA genes from yeast, and have examined the DNA from several of these phage.

Coliphages↗

Functional genetic expression of eukaryotic DNA in Escherichia coli.

We have isolated a segment of DNA from the eukaryote Saccharomyces cerevisiae (baker's yeast) as a viable molecular hybrid of bacteriophage lambda DNA which, when integrated into the chromosome of an E. coli histidine auxotroph, allows this bacterium to grow in the absence of histidine. The nonrevertable, histidine auxotroph lacks the enzymatic activity of imidazole glycerol phosphate (IGP) dehydratase (EC 4.2.1.19). From genetic experiments, we conclude that expression of the segment of yeast DNA results in the production of a diffusible substance and that transcription necessary for the complementation is most likely initiated from the segment of eukaryotic DNA.

Acetoxyacetylaminofluorene↗

In vitro construction of bacteriophage lambda carrying segments of the Escherichia coli chromosome: selection of hybrids containing the gene for DNA ligase.

DNA from lambdagt-lambdaB bacteriophage was cleaved with EcoRI endonuclease and fragments from EcoRI-digested E. coli DNA were inserted. This DNA was used to infect E. coli, and phages containing the gene for DNA ligase were isolated by genetic selection. Two different hybrids were found with the same E. coli segment inserted in opposite orientations. Both hybrids produced similar levels of ligase as measured in crude extracts of infected cells.

Chromosome Mapping↗

Viable molecular hybrids of bacteriophage lambda and eukaryotic DNA.

A bacteriophage lambda strain has been constructed and a method developed by which DNA from potentially any source can be covalently inserted through EcoRI cohesive ends into the middle of the lambda DNA. These hybrid DNAs can infect nonrestricting Escherichia coli cells and can then propagate as plaque-forming phage. A unique feature of this lambda strain is that extra DNA in the middle of its genome is required for plaque formation. A large number of such phages have been produced with E. coli DNA and Drosophila melanogaster DNA.

Animals↗