PubMed Health⌕ Search

Biomedical subjects

D M Miao

Publications and source records attributed to D M Miao.

7 recordsLinked to original sources

A dnaA box can functionally substitute for the priming signals in the oriV of the broad host-range plasmid RSF1010.

The initiation of replication from oriV RSF1010, the replication origin of the broad host-range plasmid RSF1010, depends on RepA (helicase), RepB' (primase), and RepC (initiator protein), encoded by RSF1010 itself, while this initiation event in E. coli is independent of dnaA, dnaB, dnaC, and dnaG [Scherzinger et al. (1984) Proc. Natl. Acad. Sci. USA 81, 654-658; Scholz et al. (1985) in: Plasmids in Bacteria, pp. 243-259, Plenum, New York; Haring and Scherzinger (1989) in: Promiscuous Plasmids of Gram-negative Bacteria, pp. 95-124, Academic Press, London; Scherzinger et al. (1991) Nucl. Acids Res. 19, 1203-1211]. We showed in this work that a newly constructed origin consisting of an oriV RSF1010 and a DnaA protein binding site, the dnaA box, inserted near oriV RSF1010 (oriV RSF1010-dnaA box) could function without RepB' primase, but required RepA and RepC. This oriV RsF1010-dnaA box could not replicate in a dnaA46 strain in which only RepA and RepC were supplied, even at a permissive temperature. These results indicate that an inserted dnaA box can functionally substitute for the RSF1010-specific ssi signals, the RepB' dependent priming signals in oriV RSF1010, and can direct a priming pathway different from the RSF1010-specific one, but related to DnaA protein.

Bacterial Proteins↗

The interaction of RepC initiator with iterons in the replication of the broad host-range plasmid RSF1010.

The replication origin of the broad host-range plasmid RSF1010 contains 3.5 copies of a 20mer iteron sequence that bind specifically to the plasmid-encoded initiator, RepC. Here we demonstrated that even a single iteron was bent upon binding of RepC. Moreover, the bending angle seems to become larger along with the increment of the number of iterons. In a mutational analysis of the iteron sequence, we isolated seven kinds of base-substitution mutants of iterons, and estimated the replication activity of these mutants in vivo. We found that each of the subsections in the 20mer iteron sequence made a distinct contribution to the initiation of RSF1010 DNA replication. With the binding assay of RepC and mutated iterons in vitro, we found that the formation of a productive RepC-iteron complex was required for the initiation of plasmid DNA replication.

Bacterial Proteins↗

Functional distinction among structural subsections in the specific priming signal for DNA replication of the broad host-range plasmid RSF1010.

To analyze the functional contribution to the ssiA function of subsections of the ssiA-determinant sequence based on their dimensions, we constructed ssiA mutants carrying insertions and deletions. Results of the examination of the ssiA mutants told us that, in addition to the base sequence, the dimensions were crucial factors for the functional contribution of the subsections of ssiA.

Bacterial Proteins↗

Functional difference between the two oppositely oriented priming signals essential for the initiation of the broad host-range plasmid RSF1010 DNA replication.

The broad host-range plasmid RSF1010 contains two oppositely oriented priming signals, ssiA and ssiB, for DNA synthesis dependent on the origin of vegetative DNA replication (oriV). If either ssiA or ssiB was deleted or inverted, the RSF1010 miniplasmids containing engineered oriVs were maintained at low copy numbers, replicated abnormally as dimers, and accumulated specific single strands in the Escherichia coli strain supplying the three RSF1010-encoded RepA, RepB', and RepC proteins. Interestingly, an additional intracellular supply of the Sog primase (the sog gene product of plasmid CoIIb-P9) reversed the replication deficiency of these miniplasmids with respect to all three aspects described above. These were also true for the RSF1010 miniplasmids in which either ssiA or ssiB was replaced by the primosome assembly site (PAS) or by the G4-type ssi signal (G site). Furthermore, comparative analysis of the functional contribution of the two oppositely oriented ssi signals to the DNA replication of RSF1010 showed that, irrespective of their types, ssi signals conducting the initiation of DNA chain elongation away from the iterons were functionally more important than ones in the inverted orientation. We consider that this functional difference reflects the inherent properties of the initiation mechanism of RSF1010 DNA replication.

Bacterial Proteins↗

Functional features of oriV of the broad host range plasmid RSF1010 in Pseudomonas aeruginosa.

The broad host range plasmid RSF1010 requires for its replication in Escherichia coli three plasmid-encoded proteins and specific nucleotide sequences ssiA, ssiB, and iterons in the oriVRSF1010. In Pseudomonas aeruginosa, a recombinant mini-RSF1010 plasmid lacking ssiB lost its replication ability, but a miniplasmid lacking ssiA or carrying a primosome assembly site in place of ssiA could replicate. Moreover, ssiA, as a sole ssi signal, in the orientation that ssiB had originally taken was sufficient for replication of the miniplasmid. These results indicated that only one RSF1010-specific ssi signal in the orientation that ssiB takes in wild-type oriVRSF1010 was essential for replication of RSF1010. Replication of the miniplasmids was dependent on the three plasmid-encoded proteins, RepA, B', and C, as in E. coli.

Bacteriophage phi X 174↗

Comparative analysis of functional and structural features in the primase-dependent priming signals, G sites, from phages and plasmids.

The primase-dependent priming signals, G sites, are directly recognized by the Escherichia coli primase (dnaG gene product) and conduct the synthesis of primer RNAs. In nucleotide sequence and secondary structure, there is no striking resemblance between the phage- and plasmid-derived G sites, except for the limited sequence homology near the start position of primer RNA synthesis. In this study, we analyzed the structure and function of a G site of plasmid R100, G site (R100), and discovered the necessity of the coexistence of two domains (domains I and III), which contains blocks A, B, and C, which are nucleotide sequences highly conserved among the plasmid-derived G sites. However, neither the internal region, domain II, between domains I and III nor the potential secondary structure proposed by Bahk et al. (J. D. Bahk, N. Kioka, H. Sakai, and T. Komano, Plasmid 20:266-270, 1988) is essential for single-stranded DNA initiation activity. Furthermore, chimeric G sites constructed between a G site of phage G4, G site(G4), and G site(R100) maintained significant single-stranded DNA initiation activities. These results strongly suggest that phage- and plasmid-derived G sites have functionally equivalent domains. The primase-dependent priming mechanisms of phage- and plasmid-derived G sites are discussed.

Base Sequence↗

A base-paired hairpin structure essential for the functional priming signal for DNA replication of the broad host range plasmid RSF1010.

The two single-strand DNA initiation signals, ssiA(RSF1010) and ssiB(RSF1010) of the broad host-range plasmid RSF1010 contain proposed stem-loop structures. Nine single base-change mutations in the stem of the ssiA structure, each of which destroyed a relevant base pairing, damaged the ssiA activity. A second single-base change was introduced into each of the nine ssiA mutants in such a way that the base pairing was restored. Only three out of nine second base changes that restored the base pairing restored the ssiA activity up to the wild-type level. Thus, the three are intramolecular suppressors. The results strongly suggested that, in the area of the stem of ssiA where the suppressor mutations fell, base pairing was the most important structural parameter for the ssiA activity. By contrast, it is most probable that, in the other part of the stem of ssiA, both base-pairing and the intrinsic base sequence were the major determinants of the ssiA activity.

Base Sequence↗