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Biomedical subjects

M Gottesman

Publications and source records attributed to M Gottesman.

At least 55 records · Page 3Linked to original sources

Specificity of the bacteriophage lambda N gene product (pN): nut sequences are necessary and sufficient for antitermination by pN.

We have cloned the nutR site together with the tR1 site of bacteriophage lambda in the E. coli galactose operon to examine whether the lambda promoter sequences PR and PL are involved in the recognition specificity of the lambda N gene product (pN). We first constructed a derivative of plasmid pBR322 in which the expression of the tetracycline genes (tet) is controlled by the gal promoter (Pgal). This new plasmid contains a unique Hind III site between Pgal and tet into which the nutR and tR1 sites were introduced. The order of the relevant genetic markers in this second plasmid is Pgal-nutR-tR1-tet. Cells transformed with this plasmid express tet only if pN is provided and if the plasmid contains an intact gal promoter. Our data suggest that transcription which originates at Pgal is modified by pN at nutR, enabling it to pass through tR1 into tet. We conclude that promoters do not play a specific role in pN recognition and that nut sequences are both necessary and sufficient for pN action.

Bacteriophage lambda↗

Hyperdegradation of proteins in Escherichia coli rho mutants.

An Escherichia coli mutant, HDF026, defective for growth of phage T4, has been characterized biochemically and genetically. The mutant displays an elevated level of degradation of abnormal proteins, such as puromycyl polypeptides or canavanine-containing polypeptides. Genetically, HDF026 appears to be an allele of rho, which also encodes the transcription termination factor and RNA-dependent ATPase, Rho. The mutation contransduces by phage PI with ilv, weakly suppresses polar mutations in gal, and permits some growth of lambda N- phage. Temperature sensitive lambda mutants in gene O exhibit a reduced efficiency of plating at intermediate temperature on HDF026 mutants; presumably the lambda Ots protein is rapidly degraded in these strains. The ability of wild-type lambda to grow on HDF026 is also reduced, apparently the result of the lambda N product deficiency. gal escape synthesis, which reflects the level of lambda N activity, is decreased 50-66% in the HDF026 mutant. lambda r32, which requires more N function than wild-type phage, does not grow at all in HDF026. A lon mutation, which decreases protein degradation, partially reverses some of these phenotypes, suggesting that they are related to the protein hyperlability of HDF026.

Bacterial Proteins↗

Suppression of polarity of insertion mutations in the gal operon and N mutations in bacteriophage lambda.

Bacterial mutations (psuA and psu) known for their ability to suppress the polarity on nonsense mutations are shown to suppress the polarity of certain insertion mutations in the gal operon. The short insertion, IS1 (800 nucleotide pairs), is about 15 to 50% suppressed, whereas longer insertions, IS2 (1,400 nucleotide pairs), and IS3 (1,200 nucleotide pairs), are not. Some of the polarity suppressor mutations (psu-1, psu-2, and psu-3) are at least partially permissive for N-gene mutations (N7 and N53) of bacteriophage lambda, suggesting a relationship between natural and mutational polar signals. That this relationship may be complex is indicated by the fact that other suppressor mutations, effective in suppressing nonsense or insertion polarity, fail entirely to permit the growth of lambda N mutants.

Cell-Free System↗

Selective effects of MgCl2 and temperature on the initiation of transcription at lac, gal, and lambda promoters.

We have studied the effect of Mg2+ on the formation of transcription preinitiation complexes (open complexes) at two adenosine 3':5'-monophosphate (cyclic AMP)-cyclic AMP receptor protein (CRP)-dependent promoters (lac and gal) and two phage lambda promoters, PL and PR. Mg2+ strongly interferes with open complex formation at the lac and gal promoters, partially inhibits the lambda PR promoter, and is without effect on the lambda PL promoter. Mutations in the lac and gal promoters can affect the response of the promoter to Mg2+. Cyclic AMP and CRP specifically reduce the inhibition of the lac and gal promoters by Mg2+. These factors also affect open complexes at lac and gal by (a) increasing the rate at which they are formed and (b) lowering the midpoint of the temperature transition curve for their formation by about 10 degrees. Open complexes at the lac promoter are more unstable to cooling, even in the presence of CRP and cyclic AMP, than open complexes at lambda promoters. Our studies suggest that the DNA of the lac and gal promoter regions is more resistant to denaturation than the DNA of phage promoter regions. Cyclic AMP and CRP act to decrease this stability, stimulating open complex formation under conditions unfavorable for DNA melting, e.g. low temperature and high Mg2+ concentrations.

Binding Sites↗

Excision of prophage lambda in a cell-free system.

A cell-free system that promotes the excision of prophage lambda DNA has been established. The substrate for the reaction is phage DNA carrying two attachment sites, which, in vivo, undergoes intramolecular recombination between these sites. The in vitro recombination system is efficient; 25-35% of the substrate DNA undergoes recombination in 30 min. There is an absolute requirement for ATP; Mg++ and spermidine are stimulatory. RNA does not appear to be involved, nor can a role for DNA synthesis be demonstrated.

Adenosine Triphosphate↗

Release of polarity in Escherichia coli by gene N of phage lambda: termination and antitermination of transcription.

The induction of lambda prophage provokes the constitutive expression of the adjacent gal operon in E. coli. This "escape synthesis" can result from transcription that initiates at a phage promoter and extends into the gal operon. The effect requires the product of the lambda gene N. N-mediated transcription not only fails to terminate at the prophage-bacterial junction and at the ends of bacterial operons, but ignores termination signals caused by polar insertions or ochre mutations within gal. Suppression of polarity by N-function is a cis-effect; only transcription initiated at the phage promoter is influenced. We propose that the transcription complex is influenced by N-product to become termination-resistant at a site in the phage genome (juggernaut model). This site appears to be at or near the phage promoter.

Chromosome Mapping↗