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Biomedical subjects

S Riva

Publications and source records attributed to S Riva.

At least 145 records · Page 8Linked to original sources

SPP1 DNA replicative forms: growth of phage SPP1 in Bacillus subtilis mutants temperature-sensitive in DNA synthesis.

The development of bacteriophages SPP1 and phi 29 has been studied in several B. sutilis mutants defective in host DNA replication, under non permissive conditions. Several gene products, involved in the synthesis of host DNA, are required for phi 29 replication, while SPP1 seems to require only the host DNA polymerase III. In addition both phages are unable to grow in a dna A mutant (ribonucleotide reductase). Taking advantage of the fact that SPP1 DNA is actively replicated in several dna mutants at non-permissive temperature, we have studied the structure of the replicative intermediates of this phage in the absence of interfering host DNA synthesis. Fast sedimenting forms of SPP1 DNA can be isolated from phage infected cells and evidence of covalently joined concatemers has been obtained, suggesting the presence of terminally repeated sequences.

Bacillus subtilis↗

RNA polymerase from Bacillus subtilis: isolation of core and holo enzyme by DNA-cellulose chromatography.

A new procedure for the purification of B. subtilis RNA polymerase, based on mild lysis of cells, low speed centrifugation, gel filtration, DEAE-Sephadex chromatography and affinity chromatography on DNA-cellulose, yields three forms of enzyme referred here as enzyme A, B and C. As revealed by SDS gel electrophoresis, enzyme A has the subunit structure of core polymerase plus some small polypeptides. Its catalytic properties are similar to those of core polymerase. Enzyme B has the composition of core polymerase. Both enzymes A and B can be stimulated by the addition of beta factor. Enzyme C has the holo-enzyme composition. The pattern of sensitivity of the three forms of enzyme towards KCl are very different: enzymes A and B, even at low concentration of salt, are inhibited with all the DNA templates tested, whereas enzyme C shows a pattern of stimulation specific for each DNA tested. The transcripts of the three enzymes on phage SPP1 DNA template have been analyzed by hybridization to the separated strands. Only enzyme C selectively transcribed the H strands.

Bacillus subtilis↗

Modulation of deoxyribonucleic acid polymerase III level during the life cycle of Bacillus subtilis.

Deoxyribonucleic acid (DNA) polymerase III is not detectable in Bacillus subtilis spores; the enzyme activity appears 20 to 30 min after spore activation and rapidly increases just before the onset of the first round of DNA replication (30 min later); the level of polymerase III further increases and reaches its maximum (on a per-genome basis) when the cells enter the vegetative phase of growth; this level is six- to eightfold higher than the one observed during germination. In the stationary phase, the polymerase III drops to levels comparable to those found in germinating spores at the first round of replication. On the contrary, DNA polymerase I is present at appreciable levels in the dormant spore; it increases during vegetative growth by a factor of three and, during the stationary phase, reaches its maximum level which is sixfold higher than that observed in the spores. The block of protein synthesis during vegetative growth does not cause an appreciable reduction of the two enzymes (in absolute terms), showing that the regulation of their levels is probably not due to a balance between synthesis and breakdown. These results indicate that polymerase III is probably one of the factors controlling the initiation of DNA synthesis during spore germination.

Bacillus subtilis↗

On the identity of dnaP and dnaF genes of Bacillus subtilis.

The dnaP strains of Bacillus subtilis are altered in the initiation of DNA replication at high temperature (Riva et al., 1975). Fine mapping of the gene shows that it is located very close to the dnaF gene described by Karamata and Gross (1970) and mapped by Love et al. (1976) in the polC region. The phenotype of both mutants is indistinguishable: the DNA synthesis stops at non permissive temperature after synthesizing an amount of DNA equivalent to the completion of the rounds of replication already initiated; at permissive temperature they are abnormally sensitive to MMS and are reduced in the ability to be transformed. Both mutants are to be considered as belonging to the dnaF locus. The dnaF gene is very close to the polC gene, which specifies the DNA polymerase III of B. subtilis. The DNA polymerase III of the dnaF mutants is not temperature sensitive in vitro, however, the level of this enzyme is lower by a factor of 4 or 5 in the dnaF mutants, at the permissive temperature. Following shift of dnaF cultures to the non permissive temperature, the level of DNA polymerase III activity specifically decreases further by a factor of at least 10 in the mutant, whereas the DNA polymerase I level is unaffected. The possible roles of the dnaF gene in the control of the cellular level of the DNA polymerase III, and the possibility of a regulatory role of DNA polymerase III in the initiation of DNA replication in bacteria are discussed.

Bacillus subtilis↗

Bacillus subtilis mutant temperature sensitive in the synthesis of ribonucleic acid.

A Bacillus subtilis temperature-sensitive mutant (PB1653) has been isolated in which the rate of ribonucleic acid (RNA) synthesis sharply decreases after shift to 45 degrees C. Both stable and unstable RNAs are affected by the mutation. The possibility that the block of transcription at high temperature could be due to a "stringent" effect, mediated by an increase in the concentration of "magic spot" nucleotides, has been ruled out. Treatment with chloramphenicol (or streptomycin) rapidly restores the rate of RNA synthesis at 45 degrees C. The synthesis of RNA in the mutant during the early phases of spore germination is not temperature sensitive. The phage-specific transcription during infection with SPP1 phage, at high temperature, is less affected than that of the bacterial chromosome. In vitro experiments indicate that, in the mutant at high temperature, RNA polymerase undergoes a change in template specificity. The rna-53 mutation has been located on the B. subtilis genetic map near the hisA locus.

Bacillus subtilis↗

[Syncope during potassium depletion (author's transl)].

The onset of serious arrhythmias during potassium depletion occurs rather frequently in female subjects who have undergone hypotensive-diuretic treatment, independently from the duration and doses of drugs. These arrhythmias which produce a cardiac arrest, can also occur in subjects not affected with heart disease. They are not necessarily preceeded by clinical prodrumus or other types of minor arrhythmias not accompanied by other important electrocardiographic or serum-logical alterations of hypokaliemia. The most commonly observed type is the "torsades de pointe", though cases of ventricular tachycardia or ventricular fibrillation are also documented. The ethiopathogenesis is discussed with regard to the alterations of the basic electrocardiogram as well as to the kind of major arrhythmia. In most cases , lidocaine has given the most satisfactory thmias, results in the treatment of these arrhythmias, probably because of the modality of the action which is substantially different from the other antiarrhythmic drugs.

Adult↗

A new mutant of Bacillus subtilis altered in the initiation of chromosome replication.

We have isolated a new mutant of Bacillus subtilis temperature sensitive in DNA replication; its properties are those of an initiation mutant. When liquid cultures are shifted to 48 degrees DNA replication is the first macromolecular synthesis that stops, but only after synthesis of the amount of DNA predicted for the completion of one replication round. When spores of the mutant are germinated and shifted to 48 degrees at subsequent times, one round of DNA replication is observed only when the shift occurs between 60 and 100 min; earlier shifts do not allow replication to start, later shifts allow more than one replication. The DNA replicated after a shift to high temperature is enriched in markers close to the terminus. The reinitiation of DNA replication stopped by the high temperature, takes place following a shift to a permissive temperature only if protein synthesis is allowed. Examination of DNA replication following toluene treatment shows that the elongation of DNA chains is not affected at the non-permissive temperature. This mutant is shown by PBS-1 mapping to correspond to a new gene denominated dna P, which is located between the thy A and fur A genes and is distinct from all the mapped dna and rec genes of Bacillus subtilis. The mutation confers to the cells also a deficiency in the ability to be transformed, to be transfected with SPP1 phage DNA, and to survive treatment with methyl-methane sulfonate. These deficiencies, observed at the permissive temperature, are no more temperature dependent than in the parental strain. The ability to perform homologous and heterologous transduction with PBS-1 phage and the sensitivity to ultraviolet radiation or mitomycin C are normal.

Bacillus subtilis↗

Membrane attachment of the chromosome in Bacillus subtilis mutants temperature-sensitive in DNA replication.

We have examined three mutants of Bacillussubtilis temperature sensitive in DNA initiation and one temperature sensitive in DNA elongation, in order to investigate whether these lesions can cause or can result in a detachment of the membrane-bound chromosomal region. Our results argue against any effect of the mutations examined on the association between the chromosome and the membrane.

Bacillus subtilis↗

Relationships between curing of the F episome by rifampin and by acridine orange in Escherichia coli.

Subinhibitory doses of rifampin cured F(+)Escherichia coli cells from the episome. The target of the drug was transcription because E. coli mutants with a ribonucleic acid polymerase resistant to rifampin were not cured. The experimental conditions required for optimal curing with rifampin very closely resembled those required for curing with acridine orange. Mutants were found which are more resistant to curing by both acridine orange and rifampin. Probably the two drugs affect a common metabolic step, or alternatively they may inhibit the synthesis of a factor which is necessary for the replication of the episome.

Acridines↗