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Localization of an origin of replication in Corynebacterium diphtheriae broad host range plasmid pNG2 that also functions in Escherichia coli.

Subcloning and protoplast transformation studies identified a 2.6 kb fragment of Corynebacterium diphtheriae plasmid pNG2 which contains an origin of replication (oriR). Molecular combination of the 2.6 kb oriR cartridge with Escherichia coli plasmid pUC18CmR enabled the E. coli cloning vector to replicate within several species of Corynebacterium host cells. A 2.6 kb plasmid formed from the oriR cartridge alone is capable of replicating in E. coli. This suggests that a single origin could be used in vectors shuttling between Corynebacterium spp. and E. coli.

Cloning, Molecular↗

Isolation of novel herpes simplex virus type 1 derivatives with tandem duplications of DNA sequences encoding immediate-early mRNA-5 and an origin of replication.

Two naturally occurring variations of herpes simplex virus type 1 (Patton strain) with novel tandem DNA sequence duplications in the S component were isolated, and the DNA was characterized. These variants were identified among a number of plaque isolates by the appearance of new restriction enzyme fragments that hybridized with radiolabeled DNA from the BamHI Z fragment (map coordinates 0.936 to 0.949) located in the unique S region. One isolate, SP26-3, carried a 3.1-kilobase-pair duplication defined by recombination between a site in the BamHI Z fragment and a site near the origin of replication in the inverted repeat sequence of the S component carried by the EcoRI H fragment. The other isolate, SP22-4, carried a 3.5-kilobase-pair duplication defined by a recombination event between a tandem repeat array in the BamHI Z fragment and a site near the amino terminus of the Vmw175 gene in the S-region inverted repeat sequence contained in the EcoRI K fragment. Both duplicated segments contained the entire immediate early mRNA-5 coding region as well as the origin of replication located in the inverted repeat sequence of the S component. The DNA sequence of each duplication joint was determined.

Base Sequence↗

Anti-cruciform DNA affinity purification of active mammalian origins of replication.

A novel approach that employs anti-cruciform DNA monoclonal antibodies was used to isolate segments of cruciform-containing DNA from genomic DNA, in an effort to obtain fragments containing active origins of replication. High molecular weight DNA (greater than 50 kb) was extracted from log phase CV-1 cells and 6 micrograms incubated with approximately 2.5 micrograms of a monoclonal antibody, 2D3, specific for cruciform-containing DNA. The 2D3-bound DNA was digested with EcoRI and antibody-bound fragments were recovered using rabbit anti-mouse immunobeads. The beads were washed free of nonspecifically bound DNA and the 2D3-bound DNA was eluted with 2% sodium dodecyl sulphate (SDS). The yield of DNA recovered by 2D3 was 2000-fold less than the initial amount and was 17-20-fold more than that recovered nonspecifically using the control mAb, P3. The 2D3-bound DNA ranged from 0.15- greater than 23 kb with a major peak at approximately 12 kb. Specific enrichment of origin-containing DNA by 2D3 over P3 was suggested by a 10-100-fold greater recovery of a 9 kb fragment hybridizable to a low-copy monkey autonomously replicating sequence, ors 8. 20 ng of affinity-purified DNA was cloned into lambda Zap II and excised into Bluescript phagemids in vivo. Of nine randomly-selected clones between 0.15 and 3.2 kb, four were able to replicate autonomously when transfected into HeLa cells. Two of the nine clones contained sequences hybridizable to both monkey alpha-satellite and human Alu DNA, and two others to Alu alone. The present work provides further evidence for the involvement of cruciforms at active mammalian origins of DNA replication.

Animals↗

A. E. Braunstein Plenary Lecture. Nuclear skeleton, DNA domains and control of replication and transcription.

Chromosomal DNA is organized in loops or domains of about 100 kb. Their ends seem to be attached to special protein skeletal structures. The DNA-attachment sites can be subdivided into permanent and transient types. The permanent or constitutive attachment sites, which are retained in all types of cells (including those inactive in replication and transcription), either coincide with or are located close to replication origins. This observation provides a simple way for isolation of DNA fragments containing replication origins. Such fragments from the chicken alpha-globin gene domain and other regions of the chicken genome contain DNA sequences which interact with nuclear proteins present in dividing cells, but absent from non-dividing cells. Several new consensus sequences interacting with nuclear proteins were detected. The 5' end region of the alpha-globin gene domain containing a replication origin was found to possess enhancer activity lacking tissue specificity. Hence, the domain organization of DNA is related to the organization of replication process. Other sets of data indicate that the integrity of DNA domains is important for maintaining transcription within the domain. According to these data, even a single nick at an distance of about 100 kbp seems to be sufficient for blocking transcription within the whole domain at the stage of RNA elongation. Thus, topological integrity of DNA may be an important factor involved in formation of active chromatin.

Animals↗

Sequence and structural requirements for primase initiation in the SV40 origin of replication.

Primase synthesizes decaribonucleotides for priming of lagging and possibly leading strand synthesis at a replication fork. The sites of initiation by purified mouse primase were shown to be highly specific within the SV40 origin of replication. This study further examines the role of the 27-bp inverted repeat in the origin for initiation. A site is observed on the L-strand template at nucleotide position (np) 22 positioned a similar distance from the 27-bp inverted repeat as sites previously reported on the E-strand. The initiations adjacent to the 27-bp repeat have a higher Km for rATP than other sites. A deletion within the inverted repeat eliminated initiation at sites proximal to the hairpin on both E and L strands but had no effect at more distant sites. A deletion mutant which left the inverted repeat intact but deleted the initiation sites at np 5210-5220 on the E-strand was not active as a template for proximal sites. These results indicate that primase has two modes of recognition, one that requires the SV40 inverted repeat structure and a specific sequence and another that requires sequence alone. Additional regions of the SV40 genome have also been examined and of approximately 2000 nucleotides of single stranded template examined, only one additional site was observed at np 2412 on the E-strand. This indicates that primase initiations are highly specific for the SV40 origin and their potential functional role is discussed.

Animals↗

Identification of a biochemically unique DNA-membrane interaction involving the Escherichia coli origin of replication.

DNA-membrane complexes have been obtained from Escherichia coli by using a freeze-thaw lysis procedure that avoids lysozyme and detergents. Complexes made in this manner and containing DNA near the origin of replication are uniquely sensitive to ionic strength, Pronase, and trypsin. There is approximately one such complex per chromosomal origin. The sensitivities suggest that origin-specific binding is mediated by a protein. By using these unique characteristics to distinguish origin-specific complexes from the majority of DNA-membrane binding sites, it was found that the origin-specific binding persists after termination of chromosomal replication.

Cell Membrane↗

Site-specific initiation of DNA replication within the non-transcribed spacer of Physarum rDNA.

Physarum polycephalum rRNA genes are found on extrachromosomal 60 kb linear palindromic DNA molecules. Previous work using electron microscope visualization suggested that these molecules are duplicated from one of four potential replication origins located in the 24 kb central non-transcribed spacer [Vogt and Braun (1977) Eur. J. Biochem., 80, 557-566]. Considering the controversy on the nature of the replication origins in eukaryotic cells, where both site-specific or delocalized initiations have been described, we study here Physarum rDNA replication by two dimensional agarose gel electrophoresis and compare the results to those obtained by electron microscopy. Without the need of cell treatment or enrichment in replication intermediates, we detect hybridization signals corresponding to replicating rDNA fragments throughout the cell cycle, confirming that the synthesis of rDNA molecules is not under the control of S-phase. The patterns of replication intermediates along rDNA minichromosomes are consistent with the existence of four site-specific replication origins, whose localization in the central non-transcribed spacer is in agreement with the electron microscope mapping. It is also shown that, on a few molecules, at least two origins are active simultaneously.

Animals↗

Nuclear factor 1 (NF-1) binding sites in the genomes of human oncoviruses: a hypothetic role for reintegrated cellular origins of replication in malignant transformation.

We have found that genomes of human T cell leukemia-lymphoma virus type I (HTLV-I), BK virus (BKV), and a hepatitis B virus (HBV) DNA sequence integrated into DNA of a hepatoma-derived cell line contain binding sites for nuclear factor 1 (NF-1), a cellular protein which binds to adenoviral and putative cellular origins of DNA replication. We suggest that cellular origins of DNA replication acquired by oncoviruses may play a role in malignant transformation after reintegration into the cellular genome by providing new targets for cellular factors initiating DNA replication and by perturbing the temporal order of replication.

Binding Sites↗

A negative transcriptional control region of a developmentally-regulated gene co-localizes with the origin of replication of an endogenous plasmid in Dictyostelium.

The endogenous nuclear plasmid Ddp1 from the wild-type Dictyostelium discoideum strain NC4 has been cloned, its origin of replication has been localized, and plasmid-encoded genes have been mapped that are preferentially expressed during growth or development. Here we present an analysis of the regulation of the Ddp1-encoded gene d5, which, in wild-type cells, is expressed only during the multicellular stages of development. In this study, we show that sequences 3' to the d5 coding region are required to suppress constitutive expression of d5 from aberrant transcriptional start sites and that this regulatory region acts at a distance and in an orientation-independent manner. The cis-acting negative regulatory element(s) necessary for repression of aberrant d5 expression is either very tightly linked or identical to sequences required for extrachromosomal replication, such that all 3' deletions that cause constitutive d5 expression result in the integration of the plasmid into the D. discoideum genome. Placing d5 (without the 3' regions containing the Ddp1 origin) on an extrachromosomal vector based on another endogenous plasmid (Ddp2) did not restore proper transcriptional regulation, suggesting that an extrachromosomal environment alone is not sufficient to confer proper transcriptional regulation to d5.

Animals↗

Binding of simian virus 40 a protein to DNA with deletions at the origin of replication.

Previous studies with wild-type simian virus 40 DNA have shown that the sequence 5'-GAGGC-3' directs the binding of A protein (T antigen). The functional origin of replication contains four recognition pentanucleotides each of which is separated by a single base pair and arranged a two pairs of direct repetitions that are inverted relative to each other. Analysis of A protein binding to a series of nonviable mutants progressively deleting these contact sites leads to the following conclusions: (i) stable binding of subunits of A protein to three origin pentanucleotides is not sufficient for the initiation of DNA replication, (ii) the stability of DNA binding depends on interactions between bound protein subunits, and (iii) a single pentanucleotide is sufficient to bind and orient a subunit of A protein.

Base Sequence↗

SV40 viral minichromosome: preferential exposure of the origin of replication as probed by restriction endonucleases.

Isolated SV40 minichromosomes [1-3] were treated with different single-cut restriction endonucleases to probe the arrangement of nucleosomes in relation to the SV70 DNA sequence. While Eco RI and Bam HI each cut 22-27% of the SV40 minichromosomes under limit-digest conditions, Bgl I, which cuts SV40 DNA at or very near the origin of replication [4,5], cleaves 90-95% of the minichromosomes in a preparation. Similar results were obtained with minichromosomes which had been fixed with formaldehyde before endonuclease treatment. One possible interpretation of these findings is that the arrangement of nucleosomes in the compact SV40 minichromosomes is nonrandom at least with regard to sequences near the origin of DNA replication.

Binding Sites↗

Change of DNA near the origin of replication enhances the transforming capacity of human papovavirus BK.

A turbid-plaque-forming mutant (pm522) of human papovavirus BK, which has a small deletion at about 0.7 map unit and grows somewhat more slowly in human cells than does wild-type BK virus, transformed hamster and rat cells in culture much more efficiently than did wild-type virus. Another plaque morphology mutant, pm525, forming turbid plaques larger than those of pm522 also had a high transforming capacity. The similar difference in transforming capability between wild-type and plaque morphology viruses was observed with DNAs extracted from virions. Recombinant viruses were constructed from the wild-type DNA fragment lacking HindIII-C (0.62 to 0.73 map unit) and pm522 HindIII-C (including the origin of replication) by the molecular cloning method. Characterization of the recombinants showed that the change near the origin of DNA replication was responsible both for the altered plaque morphology and for the enhanced transforming capacity of the BK virus mutant.

Animals↗

Transcription-induced deletions in Escherichia coli plasmids.

Characterization of functions that render DNA susceptible to rearrangement is important for a better understanding of genome instability. In a previous work, we showed that sequences located downstream of a strong promoter are particularly prone to deletion. In this paper, the parameters that influence transcription-induced deletions were studied. pBR322 derivatives carrying the M13 (+) replication origin and a PTac-dependent transcription region were used. Deletion formation was analysed in the presence of the replication protein of M13, which introduces a nick at the phage replication origin, and in a rep- strain to avoid M13-driven replication. Our study showed that: (i) 4 h after induction of transcription, a few per cent of the plasmids have experienced a deletion; (ii) these deletions result in joining of the M13 replication origin to a nucleotide located in or downstream of the transcribed region; (iii) deletion formation strongly depends on the orientation of transcription, on promoter strength and transcript length, but is independent of translation; (iv) formation of transcription-induced supercoiling domains does not induce deletion formation. We propose that deletions in the transcribed region result from collisions between converging replication and transcription machineries.

Base Sequence↗

Differential induction of structural changes in the simian virus 40 origin of replication by T antigen.

The ATP-dependent binding of the simian virus 40 (SV40) large tumor antigen (T antigen) to the SV40 origin of replication (ori) results in the structural distortion of two critical elements within flanking regions of ori and the untwisting of the DNA helix. We examined the effect of changes in temperature, ATP concentration, and other reaction parameters on the generation of these DNA structural changes. We found that induction of the two localized structural transitions were highly and differentially sensitive to reaction conditions. Significant distortion of the early palindrome element, shown previously to result from DNA melting, required low levels of ATP (10 to 30 microM) but temperatures above 25 degrees C. Distortion of the AT tract occurred at low temperatures (5 degrees C) but required relatively high concentrations of ATP (greater than 300 microM). Thus, T antigen can induce structural changes within one critical element of ori without generating significant structural distortion within the second element. The response of ori untwisting to reaction conditions generally increased in parallel with or fell intermediate between the inductions of localized structural transitions. We suggest that ori untwisting and localized structural distortions are interdependent consequences of T-antigen binding to ori. These results suggest a model for the structural events occurring during the initial steps of SV40 DNA replication.

Adenosine Triphosphate↗

The Xenopus Xmus101 protein is required for the recruitment of Cdc45 to origins of DNA replication.

The initiation of eukaryotic DNA replication involves origin recruitment and activation of the MCM2-7 complex, the putative replicative helicase. Mini-chromosome maintenance (MCM)2-7 recruitment to origins in G1 requires origin recognition complex (ORC), Cdt1, and Cdc6, and activation at G1/S requires MCM10 and the protein kinases Cdc7 and S-Cdk, which together recruit Cdc45, a putative MCM2-7 cofactor required for origin unwinding. Here, we show that the Xenopus BRCA1 COOH terminus repeat-containing Xmus101 protein is required for loading of Cdc45 onto the origin. Xmus101 chromatin association is dependent on ORC, and independent of S-Cdk and MCM2-7. These results define a new factor that is required for Cdc45 loading. Additionally, these findings indicate that the initiation complex assembly pathway bifurcates early, after ORC association with the origin, and that two parallel pathways, one controlled by MCM2-7, and the other by Xmus101, cooperate to load Cdc45 onto the origin.

Animals↗

Functional characterization of Marek's disease virus (MDV) origin-binding protein (OBP): analysis of its origin-binding properties.

In previous studies, we identified a Marek's disease virus (MDV) origin-binding protein (OBP) gene that is highly homologous to the herpes simplex virus type 1 UL9 gene that encodes an OBP and functions as an initiator protein for viral DNA replication. In this study, a protein of 95 kDa was produced in coupled in vitro transcription-translation reaction with the plasmid containing the wild type MDV OBP gene. The in vitro synthesized protein was detected by immunoprecipitation with a penta-histidine specific monoclonal antibody. Further characterization of MDV OBP was accomplished using electrophoretic mobility shift assay (EMSA) with the in vitro expressed MDV OBP using a double-stranded (ds) 26-mer oligonucleotide as the probe, which was designed from the putative MDV OBP binding site present in the serotype 1 or 2 MDV replication origin. The EMSA results indicated that MDV OBP could form a protein-DNA complex with the ds 26-mer oligonucleotide designed from serotype 1 or 2 replication origin. A series of 26-mer oligonucleotides with two-base-pair (bp) substitution across the putative MDV OBP binding site were used in competitive EMSA to determine the recognition sequence for the MDV OBP. The results demonstrated that the recognition sequence for MDV OBP was the TTCGCACC that is a subset of a 9-bp element (CGTTCGCAC) conserved in the replication origins of alphaherpesviruses. Furthermore, the results of EMSA with a series of deletion mutants from the N-terminus of MDV OBP indicated that the origin-binding domain was located at the amino acids region 528 to 841 of the wild-type MDV OBP. Taken together, our results suggest that the MDV OBP gene encodes an OBP of MDV.

Amino Acid Sequence↗

Synthesis of single-stranded plasmid pT181 DNA in vitro. Initiation and termination of DNA replication.

The origin of replication of plasmid pT181 is nicked by the plasmid-encoded RepC protein. The free 3'-hydroxyl end at the nick is presumably used as primer for leading strand DNA synthesis. In vitro replication of pT181 was found to generate single-stranded DNA in addition to the supercoiled, double-stranded DNA. The single-stranded DNA was circular and corresponded to the pT181 leading strand. Recombinant plasmids were constructed that contain two pT181 origins of replication in either direct or inverted orientation. In vitro replication of the plasmid carrying two origins in direct orientation was shown to generate circular, single-stranded DNA that corresponded to initiation of replication at one origin sequence and termination at the other origin. These results demonstrate that the origin of pT181 leading strand DNA replication also serves as the site for termination of replication. Interestingly, the presence of two origins in inverted orientation resulted in initiation of replication at one origin and stalling of the replisome at the other origin. These results suggest that RepC can reinitiate replication at the second origin by nicking partially replicated, relaxed DNA. These data are consistent with the replication of pT181 by a rolling circle mechanism and indicate that single-stranded DNA is an intermediate in pT181 replication.

Blotting, Southern↗

DNA replication initiates at different sites in early and late S phase within human ribosomal RNA genes.

Metazoan replication origins often contain multiple potential initiation sites, and the selection of which of the potential sites are used appears to be dependent upon multiple factors, including the state of differentiation, cell metabolism, and local transcriptional activity. Numerous studies have shown that a replication origin exists within the non-transcribed spacer region of the human ribosomal RNA gene. We here analyze nascent leading strand DNA from S phase human lymphoid cells, and find that while the majority of rDNA replicates in mid- and late S phase and preferentially initiates replication 6 kbp from the transcription start site, in very early S phase the preferred initiation site is much closer to the transcription start site and may involve rDNA promoter sequences. This early site is coincident with a minimum GC skew value, diagnostic for replication origins in bacteria and yeast. These results suggest that replication timing can influence initiation site selection. The timing and nucleolar localization of rDNA further suggest that this site likely participates in the small number of perinucleolar initiation foci observed in very early S phase cells that represent the beginning of cellular DNA replication.

Animals↗