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Location of the origin of DNA replication in adenovirus Type 2.

Utilizing the isolated left and right halves of both adenovirus type 2 and the nondefective adenovirus simian virus 40 hybrid (Ad2(+)ND(1)), studies were undertaken to find the site on the DNA molecules at which replication begins. The data are consistent with several models which include an initiation event at both ends and bidirectional growth.

Adenoviridae↗

Incomplete genomes of the parvovirus minute virus of mice: selective conservation of genome termini, including the origin for DNA replication.

Deletion mutants of minute virus of mice arising during a single high-multiplicity passage and after serial undiluted passage have been isolated, and the incomplete viral genomes contained therein have been analyzed. The DNA isolated from incomplete virions derived from a single high-multiplicity passage was heterogeneous, ranging in size from 15 to 70% of the intact viral genome, with an average molecular length of approximately, 2,000 nucleotides. Two distinct types of molecules, designated as type I D-DNA and type II D-DNA, could be distinguished on the basis of their degree of secondary structure, and these were present in roughly equal amounts. Type I D-DNAs were predominantly single-stranded, recombinant molecules in which the self-complementary sequences derived from both genomic termini were conserved. The 5' terminus was modified relative to the analogous wild-type structure. Although virtually all of the wild-type genome sequence was seen in the total type I D-DNA population, sequences which map between coordinates 47.3 and 87.1 were clearly underrepresented. However, the extent and position of the deletions in individual molecules varied significantly. The shortest molecules in the population lacked between 90 and 95% of the internal wild-type genome sequence and consisted of sequences derived almost exclusively from within 5.0 map units (250 nucleotides) at both ends of the viral genome. Moreover, these miniature recombinant molecules were selectively amplified during serial undiluted passage and were therefore believed to contain all of the critical recognition sites necessary for the replication of minute virus of mice viral DNA. Type II D-DNAs were virus-specific, double-stranded hairpin molecules whose complementary strands were covalently continuous at variable sites distal to the 5' end of the viral minus strand. In sharp contrast to the type I genomes, these hairpin molecules consisted of sequences which mapped entirely at the 5' end of the viral genome between positions 85.0 and 100. Furthermore, type II molecules were gradually lost from the total D-DNA population during serial undiluted passage, suggesting that these molecules are not competent for DNA Replication but arise as the result of fatal replication errors. Deletion mutants of the type described here for minute virus of mice should be valuable generally as aids to future studies on parvovirus DNA replication, transcription, and cell-virus interactions.

Base Sequence↗

Repression of polyoma virus DNA replication by 5'-flanking region of mouse DNA polymerase beta gene containing transcriptional silencer elements.

Dual cis-acting silencer elements are located upstream of the mouse DNA polymerase beta gene (Yamaguchi, M., Hayashi, Y., and Matsukage, A. (1989) J. Biochem. (Tokyo) 105, 79-83). In order to examine possible involvement of transcriptional silencer elements in the regulation of DNA replication, we have utilized a transient replication system of the plasmid DNA carrying replication origin of polyoma virus DNA in mouse MOP8 cells, which is constitutively producing polyoma virus large T-antigen. The polyoma virus origin of DNA replication is composed of three cis-acting genetic elements called alpha, beta, and core, in which alpha and beta elements correspond to enhancer domains. When the 5'-flanking regions of the DNA polymerase beta gene containing silencer elements were placed at the late gene border of alpha element, they effectively repressed the DNA replication. However, when placed at the early gene border of core element, it only marginally repressed the DNA replication. These results suggest that the silencer elements at cis position repress polyoma virus DNA replication by impeding the enhancer function that activates the DNA replication.

Animals↗

[Restriction mapping of T4 bacteriophage late gene region which contains the origins of DNA replication].

DNAs of lambda T4 recombinants 596-27 (genes 50-5), 596-30 (genes 50-8), 596-29 (genes 50-12), 591-16 (genes 6-8), 591-1 (genes 9-12), 596-13 (genes 13-16), 596-17 (genes 18-20) and 596-11 (genes 25-29) were mapped with the use of EcoRI, HindIII, SmaI, SalI and BamHI restriction enzymes. T4 dcDNA was digested with HindIII restriction endonuclease and resulting fragments were cloned into HindIII lambda vector 761. The recombinants 761-7, 761-17, 761-19, 761-24, 761-44, 761-50, 761-55 contained the region of genes 25-48 and 761-42, 761-26 and 761-16 contained a single HindIII-fragment with genes 6-12 in both orientations. Data obtained with the DNA of the latter recombinants allowed to show the correctness of the map established earlier which did not contain a full set of overlapping sequences. As a result of the experiments reported, the position of EcoRI and HindIII recognition sites in the region of genes 50-20 and 25-48 was determined and in the region of genes 25-48 BglII and XhoI restriction sites were mapped. The location of a single BamHI restriction site in the region of gene 8 was also established.

Base Sequence↗

Identification and characterization of a complex chromosomal replication origin in Schizosaccharomyces pombe.

In the budding yeast, S. cerevisiae, two-dimensional (2D) gel electrophoresis techniques permit mapping of DNA replication origins to short stretches of DNA (+/- 300 bp). In contrast, in mammalian cells and Drosophila, 2D gel techniques do not permit precise origin localization; the results have been interpreted to suggest that replication initiates in broad zones (several kbp or more). However, alternative techniques (replication timing, nascent strand polarity analysis, nascent strand size analysis) suggest that mammalian origins can be mapped to short DNA stretches, just like S. cerevisiae origins. Because the fission yeast, Schizosaccharomyces pombe, resembles higher organisms in several ways to a greater extent than does S. cerevisiae, we thought that S. pombe replication origins might prove to resemble--and thus be helpful models for--animal cell origins. An attempt to test this possibility using 2D gel techniques resulted in identification of a replication origin near the ura4 gene on chromosome III of S. pombe. The 2D gel patterns produced by this S. pombe origin indeed resemble the patterns produced by animal cell origins and show that the S. pombe origin cannot be precisely located. The data suggest an initiation zone of 3-5 kbp. Some aspects of the 2D gel patterns detected at the S. pombe origin cannot be explained by the rationale of initiation in broad zones, suggesting that future biochemical and genetic studies of this complex origin are likely to provide information useful in helping to understand the apparent conflict between the 2D gel mapping techniques and other mapping techniques at animal cell origins.

Chromosomes, Fungal↗

Addition of extra origins of replication to a minichromosome suppresses its mitotic loss in cdc6 and cdc14 mutants of Saccharomyces cerevisiae.

Many cell division cycle (cdc) mutants of Saccharomyces cerevisiae exhibit elevated mitotic loss of pDK243, a 14-kilobase minichromosome with a centromere and one autonomous replicating sequence (ARS). Tandem copies of different ARSs were added to pDK243. The addition of these ARS clusters to pDK243 had no effect on its mitotic loss in cdc7 (protein kinase), cdc9 (DNA ligase), or cdc16 or cdc17 (DNA polymerase) mutants. However, in cdc6 and cdc14 mutants, the mitotic loss of pDK243 with an ARS cluster was suppressed by a factor of 6-8 compared to pDK243 without the cluster. This suppression was dependent upon the number of ARSs in the cluster and the integrity of the ARS consensus sequence in each ARS of the cluster. ARSs are known to be DNA replication origins. Therefore, the suppression of mini-chromosome loss by ARSs in cdc6 and cdc14 mutants suggests that these mutants are defective in the initiation of DNA replication. Since the CDC6 protein appears to act at the G1/S phase transition, the CDC6 protein may be a factor required at the beginning of S phase to initiate DNA replication at origins. In contrast, the CDC14 protein acts after mitosis. We suggest that the CDC14 protein performs a function late in the cell cycle that may be required for efficient initiation of DNA replication during S phase of the next cell cycle.

Cell Cycle↗

The activities of eukaryotic replication origins in chromatin.

DNA replication initiates at chromosomal positions called replication origins. This review will focus on the activity, regulation and roles of replication origins in Saccharomyces cerevisiae. All eukaryotic cells, including S. cerevisiae, depend on the initiation (activity) of hundreds of replication origins during a single cell cycle for the duplication of their genomes. However, not all origins are identical. For example, there is a temporal order to origin activation with some origins firing early during the S-phase and some origins firing later. Recent studies provide evidence that posttranslational chromatin modifications, heterochromatin-binding proteins and nucleosome positioning can control the efficiency and/or timing of chromosomal origin activity in yeast. Many more origins exist than are necessary for efficient replication. The availability of excess replication origins leaves individual origins free to evolve distinct forms of regulation and/or roles in chromosomes beyond their fundamental role in DNA synthesis. We propose that some origins have acquired roles in controlling chromatin structure and/or gene expression. These roles are not linked obligatorily to replication origin activity per se, but instead exploit multi-subunit replication proteins with the potential to form context-dependent protein-protein interactions.

Acetylation↗

Identification and autonomous replication capability of a chromosomal replication origin from the archaeon Sulfolobus solfataricus.

Here, we describe the identification of a chromosomal DNA replication origin (oriC) from the hyperthermophilic archaeon Sulfolobus solfataricus (subdomain of Crenarchaeota). By means of a cumulative GC-skew analysis of the Sulfolobus genome sequence, a candidate oriC was mapped within a 1.12-kb region located between the two divergently transcribed MCM- and cdc6-like genes. We demonstrated that plasmids containing the Sulfolobus oriC sequence and a hygromycin-resistance selectable marker were maintained in an episomal state in transformed S. solfataricus cells under selective pressure. The proposed location of the origin was confirmed by 2-D gel electrophoresis experiments. This is the first report on the functional cloning of a chromosomal oriC from an archaeon and represents an important step toward the reconstitution of an archaeal in vitro DNA replication system.

Archaea↗

A mammalian origin of bidirectional DNA replication within the Chinese hamster RPS14 locus.

Two complementary experimental approaches have been used to identify a chromosomal origin of bidirectional DNA replication within or immediately downstream of the Chinese hamster ribosomal protein S14 gene (RPS14). The replication origin, designated oriS14, maps within a 1.6- to 2.0-kbp region of RPS14 that includes the gene's third and fourth introns, exons IV plus V, and approximately 500 bp of proximal downstream flanking DNA. The nucleic acid sequence encoding oriS14 closely resembles the other mammalian chromosomal replication origins whose primary structures are known. It contains DNA binding sites for a large number of transcription factors, replication proteins, and mammalian oncogenes as well as several dinucleotide repeat motifs, an AT-rich region, and a sequence that is likely to bend the DNA. In contrast to the other well-characterized mammalian replication origins, which are autosomal and therefore carried as two copies per somatic cell, oriS14 is encoded by single-copy DNA within a hemizygous segment of chromosome 2q in CHO-K1 cells. Also, other known mammalian replication origins are situated in nontranscribed, intergenic DNA, whereas the DNA sequence encoding oriS14 substantially overlaps the transcribed portion of a constitutively expressed housekeeping gene.

Animals↗

The chromosomal origin of replication (oriC) of Erwinia carotovora.

The chromosomal DNA replication origin (oriC) of the plant pathogen Erwinia carotovora has been isolated and sequenced. The minimal E. carotovora oriC regional functional in Escherichia coli is a 374 base pair region located on a 7.9 kilobase pair SalI fragment which also contains a functional asnA gene. Differences between the nucleotide sequence of the minimal origin regions of E. carotovora and those of E. coli and Salmonella typhimurium are clustered nucleotide substitutions, with regions of complete homology, up to 19 base pairs long, between the three origins. Nine GATC sites are found in the minimal origin, and all are conserved. In contrast, the region toward asnA from the minimal origin shows little clustering and the differences occur mainly every third nucleotide, suggesting that this region is a protein coding region.

Base Sequence↗

Start sites of bidirectional DNA synthesis at the human lamin B2 origin.

The initiation sites of bidirectional synthesis at the DNA replication origin located at the 3' end of the human lamin B2 gene were investigated. RNA-primed nascent DNA molecules were subjected to second-strand synthesis with appropriate primers, amplified by ligation-mediated polymerase chain reaction, and size fractionated. Evidence for precise start sites was obtained. Exploration of close to 1 kilobase, coupled to inhibition of Okazaki fragment synthesis, demonstrates that the leading strands initiate at precise nucleotides on either helix, overlapping by three base pairs, within the area bound to a protein complex possibly analogous to the prereplicative complex of yeast.

AT Rich Sequence↗