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Biomedical subjects

D J Drahos

Publications and source records attributed to D J Drahos.

4 recordsLinked to original sources

Field testing of genetically engineered microorganisms.

The first approved field releases of microorganisms genetically altered in the laboratory have been initiated in the past several years. While most introductions have been carried out in the United States, several tests have also occurred in the United Kingdom and Australia. Although such releases remain controversial in some areas, these pioneering studies have provided significant insight into the environmental behavior and relative safety of applying these microbes in a well-planned and carefully monitored program.

Journal Article↗

Broad host-range vector for efficient expression of foreign genes in gram-negative bacteria.

A broad host-range expression plasmid was constructed comprising the incQ replicon, the recA promoter from Escherichia coli and the g10-L ribosome binding site (RBS) derived from bacteriophage T7. The structural genes for porcine somatotropin (pst) and E. coli beta-galactosidase (lacZ) were used to monitor gene expression in a diverse collection of Gram-negative bacterial hosts: Escherichia coli, Pseudomonas aeruginosa, Pseudomonas syringae, Pseudomonas putida, Pseudomonas fluorescens, Pseudomonas testosteroni, Serratia marcescens and Erwinia herbicola. The E. coli recA promoter was functional in this wide range of hosts and was inducible by the addition of nalidixic acid. Moreover, the level of lacZ expression was often at least as high as that observed in E. coli. Previous studies had shown that the g10-L RBS was superior to a simple "consensus" RBS sequence for expression of foreign genes in E. coli. Here we demonstrate a 38 to 70 fold increase in expression in two Pseudomonas hosts using the g10-L RBS, indicating that the translational enhancer present in the g10-L RBS is also functional in other bacteria. The juxtaposition of these transcriptional and translational elements in a broad host-range vector provides a simple way to evaluate alternate hosts for recombinant protein production.

Cloning, Molecular↗

Cloning of a Serratia marcescens Gene Encoding Chitinase.

Serratia marcescens, a chitinase-producing microorganism, was shown to produce five unique chitinolytic proteins with subunit molecular masses of 21, 36, 48, 52, and 57 kilodaltons. A cosmid library of S. marcescens DNA was constructed in the broad-host-range cosmid pLAFR1 and screened in Escherichia coli for clones capable of degrading chitin. A total of four independent clones (22- to 27-kilobase inserts) were isolated, characterized by restriction endonuclease digestion, and shown to share a common 9.5-kilobase EcoR1 fragment apparently encoding the same 57-kilodalton chitinase, the most abundant chitinase produced by S. marcescens. Chitinase expression from these constructs in both E. coli and Pseudomonas fluorescens 701E1 is apparently driven by an S. marcescens promoter. The significantly higher chitinase levels produced in E. coli relative to those in P. fluorescens 701E1 suggest that E. coli may recognize this promoter sequence more efficiently than P. fluorescens.

Journal Article↗

Effect of bacteriophage lambda infection on synthesis of groE protein and other Escherichia coli proteins.

We used two-dimensional gel electrophoresis to quantitate the changes in rates of synthesis that follow phage lambda infection for 21 Escherichia coli proteins, including groE and dnaK proteins. Although total protein synthesis and the rates of synthesis of most individual E. coli proteins decreased after infection, some proteins, including groE protein, dnaK protein, and stringent starvation protein, showed increases to rates substantially above their preinfection rates. Infection by lambda Q- affected host synthesis in the same way as infection by gamma+, whereas infection by lambda N- showed no detectable effect on host synthesis. Deletion of the early genes between att and N abolished the effect, and shorter deletions in this region gave intermediate effects. By this sort of deletion mapping, we show that a large part, though not all, of the effect of lambda infection on host protein synthesis can be ascribed to the early region that contains phage genes Ea10 and ral. We compared the changes in protein synthesis after infection with the changes that occur in uninfected cells upon heat shock or amino acid starvation. The spectrum of changes that occurred on infection was very different from that seen after heat shock but quite similar to that seen during amino acid starvation. Despite this similarity of the effects of lambda infection and starvation, we did not detect any increase in the level of guanosine tetraphosphate during infection. We show that the groE protein is the same protein as B56.5 of Lemaux et al. (Cell 13:427-434, 1978) and A protein of Subramanian et al. (Eur. J. Biochem. 67:591-601, 1976).

Amino Acids↗