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The dnaA gene region of Mycobacterium avium and the autonomous replication activities of its 5' and 3' flanking regions.

A 3.9 kb DNA fragment containing the dnaA gene region of Mycobacterium avium was cloned and its nucleotide sequence was determined. Nucleotide sequence analyses indicated that this region encodes three genes in the order rpmH (ribosomal protein L34), dnaA (the putative initiator protein) and dnaN (the beta subunit of DNA polymerase III). The intergenic regions between the rpmH-dnaA and dnaA-dnaN genes were found to contain several putative DnaA boxes, 9 nt long DnaA protein recognition sequences. A DNA fragment containing the 3' but not the 5' flanking region of the M. avium dnaA gene when cloned in Escherichia coli plasmids, which are otherwise non-replicative in mycobacteria, exhibited autonomous replication activity in M. avium but not in Mycobacterium bovis BCG and Mycobacterium smegmatis. The 5' flanking region of dnaA, on the other hand, exhibited autonomous replication activity in M. bovis BCG but not in M. avium and M. smegmatis. The implications of these results for the understanding of the M. avium oriC replication initiation process are discussed.

3' Untranslated Regions↗

Plasmid replication in a temperature-sensitive chromosome replication mutant of Staphylococcus aureus.

Replication of the antibiotic resistance plasmids pI258, pT10501 and pC221 has been investigated in a mutant of Staphylococcus aureus NCTC 8325, which is temperature-sensitive for the initiation of chromosome replication. Replication of pI258 stopped rapidly at the nonpermissive temperature, whilst replication of pT10501 and pC221 continued (although at a lower rate than in the wild-type). It is proposed that the product of the mutant gene may be required directly for pI258 replication, but not for replication of pT10501 or pC221.

Chromosomes, Bacterial↗

Rate stimulation of deoxyribonucleic acid synthesis after inhibition.

The degree to which the rate of deoxyribonucleic acid synthesis in thy- cultures of Escherichia coli is stimulated after a period of thymine starvation is shown to be a function of the concentration of thymine present as well as of the culture doubling time. Inhibition of deoxyribonucleic acid synthesis by nalidixic acid yields comparable results. Periods of thymine starvation exceeding one doubling time appear to cause an irreversible inactivation of a fraction of the replication forks in the culture.

Carbon Radioisotopes↗

Only oriC and its flanking region are recovered from the complex formed at the time of initiation of chromosome replication in Escherichia coli.

The oriC region of Escherichia coli constructs a specific complex to associate with the outer membrane fraction (oriC complex). The oriC complex was periodically formed before as well as in the short period after initiation of DNA replication. Using the DNA extracted from outer membrane fractions of the cells just after initiation as a probe, the whole E. coli genomic library was assayed by plaque hybridization. DNA regions that hybridized with the probe corresponded to about a 100-kb length of chromosome DNA which included oriC. In addition, clones located in a counterclockwise direction from oriC were more preferentially hybridized among these positive clones. Thus, we conclude that the oriC region is a unique locus of the chromosome that binds to the outer membrane at the time of initiation of chromosome replication.

Cell Membrane↗

Insertion of inverted Ter sites into the terminus region of the Escherichia coli chromosome delays completion of DNA replication and disrupts the cell cycle.

To investigate the co-ordination between DNA replication and cell division, we have disrupted the DNA-replication cycle of Escherichia coli by inserting inverted Ter sites into the terminus region to delay completion of the chromosome. The inverted Ter sites (designated InvTer::spcr) were initially inserted into the chromosome of a delta tus strain to allow unrestrained chromosomal replication. We then introduced a functional tus gene by transforming the InvTer::spcr strain with a plasmid carrying the tus gene under control of an arabinose-inducible promoter. In the presence of 0.2% arabinose, the cells formed long filaments, suggesting that activation of the inverted Ter sites by Tus arrested DNA replication and delayed the onset of cell division. Induction of sfiA, a gene in the SOS regulon, was observed following arrest of DNA replication; however, when a sfiB114 allele was introduced into InvTer::spcr strain, long filaments were still formed, suggesting that the sfi-independent pathway also caused filamentation. Either recA::camr or lexA3 alleles suppressed filamentation when introduced in the InvTer strain. Interestingly, in both the recA::camr and lexA3 mutants, virtually all cells had a nucleoid, suggesting that cell division was proceeding even though DNA replication was not complete. These results suggest that DNA replication and cell division are uncoupled when recA is inactivated or when genes repressed by LexA cannot be induced.

Bacterial Proteins↗

Replication of the Escherichia coli chromosome following thymine starvation.

The replication of the chromosome of E. coli 15T(-) (thymine-requiring) has been followed for approximately four generations after a premature initiation of DNA synthesis by thymine starvation. Various labelings of the DNA with (14)C, (3)H, and density media allowed discrimination of the strands preexistent to thymine starvation from those which were made during the subsequent generations. Results were: (1) There is very little, if any, DNA degradation following 45 min of thymine starvation. (2) The growing points which existed prior to thymine starvation proceeded to the end of the chromosomes after resumption of DNA synthesis and then disappeared. (3) The premature DNA synthesis initiated by thymine starvation involved, symmetrically, all free origins; the entire chromosomal population was subjected to this process. (4) All the DNA which was synthesized during the progression of the premature growing points was normally replicated, i.e., with no delay or loss, during the next three generations.

Carbon Radioisotopes↗

Overinitiation of replication of the Escherichia coli chromosome from an integrated runaway-replication derivative of plasmid R1.

A 16-base-pair fragment, deletion of which completely inactivated oriC, was replaced by a temperature-dependent runaway-replication derivative (the copy number of which increases with temperature) of the IncFII plasmid R1. The constructed strains were temperature sensitive, and flow cytometry revealed a severalfold increase in the DNA/mass ratio following shifts to nonpermissive temperatures. The cell size distribution was broader in the constructed strains relative to that in the wild type because of asynchrony between the chromosome replication and cell division cycles. This difference was more pronounced for counterclockwise initiation of chromosomal replication, in which small DNA-less cells and long filaments were abundant. Following a temperature shift the cell size distributions became even more broad, showing that changes in the frequency of chromosomal replication affect cell division and emphasizing the interplay between these two processes.

Chromosomes, Bacterial↗

RecA-mediated rescue of Escherichia coli strains with replication forks arrested at the terminus.

The recombinational rescue of chromosome replication was investigated in Escherichia coli strains with the unidirectional origin oriR1, from the plasmid R1, integrated within oriC in clockwise (intR1(CW)) or counterclockwise (intR1(CC)) orientations. Only the intR1(CC) strain, with replication forks arrested at the terminus, required RecA for survival. Unlike the strains with RecA-dependent replication known so far, the intR1(CC) strain did not require RecBCD, RecF, RecG, RecJ, RuvAB, or SOS activation for viability. The overall levels of degradation of replicating chromosomes caused by inactivation of RecA were similar in oriC and intR1(CC) strains. In the intR1(CC) strain, RecA was also needed to maintain the integrity of the chromosome when the unidirectional replication forks were blocked at the terminus. This was consistent with suppression of the RecA dependence of the intR1(CC) strain by inactivating Tus, the protein needed to block replication forks at Ter sites. Thus, RecA is essential during asymmetric chromosome replication for the stable maintenance of the forks arrested at the terminus and for their eventual passage across the termination barrier(s) independently of the SOS and some of the major recombination pathways.

Bacterial Proteins↗

Cell-cycle-specific initiation of replication.

The following characteristics are relevant when replication of chromosomes and plasmids is discussed in relation to the cell cycle: the timing or replication, the selection of molecules for replication, and the coordination of multiple initiation events within a single cell cycle. Several fundamentally different methods have been used to study these processes: Meselson-Stahl density-shift experiments, experiments with the so-called 'baby machine', sorting of cells according to size, and flow cytometry. The evidence for precise timing and co-ordination of chromosome replication in Escherichia coli is overwhelming. Similarly, the high-copy-number plasmid ColE1 and the low-copy-number plasmids R1/R100 without any doubt replicate randomly throughout the cell cycle. Data about the low-copy-number plasmids F and P1 are conflicting. This calls for new types of experiments and for a better understanding of how these plasmids control their replication and partitioning.

Bacteriological Techniques↗

Phospholipid synthesis during the cell division cycle of Escherichia coli.

Stepwise changes in the rate of phosphatidylethanolamine and phospholipid synthesis during the cell division cycle of Escherichia coli B/r were observed. The cell ages at the increases were found to be a function of the growth rate. At each growth rate, the increase occurred around the time new rounds of chromosome replication were inaugurated in the cycle.

Cell Cycle↗

Functional analysis of minichromosome replication: bidirectional and unidirectional replication from the Escherichia coli replication origin, oriC.

Replicating molecules of minichromosomes pCM959 and pOC24 were analyzed by electron microscopy. Replication of pCM959 proceeded bidirectionally from the replication origin, oriC, in about 60% of the molecules; the rest of the molecules replicated unidirectionally in either direction. pOC24, in which deoxyribonucleic acid to the right (clockwise) of the oriC segment is deleted, seemed to replicate predominantly unidirectionally counterclockwise from oriC.

Base Sequence↗

Replication forks of Escherichia coli are not the preferred sites for lysogenic integration of bacteriophage Mu.

The question of whether bacteriophage Mu prefers replication forks for lysogenic integration into Escherichia coli chromosomes was tested by using two different systems. In the first, inactivation of genes was scored in synchronized cultures infected by Mu at various times. No increase in the mutation frequency of a gene was found after infection at the time of its replication. In the second, the composition of colonies formed by bacteria lysogenized by Mu was determined; the newly formed lysogens should give rise to mixed colonies (containing lysogenized as well as nonlysogenized bacteria), uniform colonies, or both, depending on the mode of integration. Both types of colonies were found, and the fraction of uniform colonies was proportional to the relative length of the unreplicated segment of an average chromosome in the culture. The results in both systems clearly preclude the possibility that a lysogenizing Mu integrates with high preference at the chromosome replication forks.

Bacteriophage mu↗

Relation of the segregative origin of chromosome replication to the origin of replication after amino acid starvation.

Cultures of Escherichia coli 15T(-) and K-12 were labeled with (3)H-thymine before, during, and after amino acid starvation. The number of labeled segregating units was measured by autoradiography of microcolonies derived from the labeled cells. In both strains, labels inserted before starvation and during starvation appeared to segregate as if incorporated into the same polynucleotide strands. However, labels inserted during and after starvation segregated as if incorporated into different polynucleotide strands. In view of previous data, it was concluded that replication after amino acid starvation originates from the region of the chromosome which serves as the origin for replication during normal growth and division.

Autoradiography↗

Eclipse period during replication of plasmid R1: contributions from structural events and from the copy-number control system.

The eclipse period (the time period during which a newly replicated plasmid copy is not available for a new replication) of plasmid R1 in Escherichia coli was determined with the classic Meselson-Stahl density-shift experiment. A mini-plasmid with the wild-type R1 replicon and a mutant with a thermo-inducible runaway-replication phenotype were used in this work. The eclipses of the chromosome and of the wild-type plasmid were 0.6 and 0.2 generation times, respectively, at temperatures ranging from 30 degrees C to 42 degrees C. The mutant plasmid had a similar eclipse at temperatures up to 38 degrees C. At 42 degrees C, the plasmid copy number increased rapidly because of the absence of replication control and replication reached a rate of 350-400 plasmid replications per cell and cell generation. During uncontrolled replication, the eclipse was about 3 min compared with 10 min at controlled replication (the wild-type plasmid at 42 degrees C). Hence, the copy-number control system contributed significantly to the eclipse. The eclipse in the absence of copy-number control (3 min) presumably is caused by structural requirements: the covalently closed circular plasmid DNA has to regain the right degree of superhelicity needed for initiation of replication and it takes time to assemble the initiation factors.

Centrifugation, Density Gradient↗

A transducing lambda phage carrying grpE, a bacterial gene necessary for lambda DNA replication, and two ribosomal protein genes, rpsP (S16) and rplS (L19).

A grpE mutation of Escherichia coli K12, which blocks DNA replication of the phage lambda (Saito and Uchida, 1977), was mapped at 56 min on the standard genetic map. A transducing lambda phage, lambdagrpE22, carrying the wild type allele of the grpE gene was constructed in vitro. Structures of lambdagrpE22 and its viable deletion derivatives were determined by electron microscopic analyses of appropriate heteroduplexes. Proteins coded by the bacterial DNA incorporated into the transducing phages were detected by two-dimensional gel electrophoresis. The results showed that the product of the grpE gene is a weakly acidic protein of molecular weight 24,000. Structural genes for two ribosomal proteins, rplS (L19) and rpsP (S16) were also shown to be carried by lambdagrpE22.

Coliphages↗