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Effect of dam methylation on the activity of the E. coli replication origin, oriC.

Methylation of GATC sites by the dam methylase is required for efficient initiation of DNA replication at the replication origin, oriC, of Escherichia coli. This is demonstrated by the inability of minichromosomes to be maintained in dam mutant strains. The requirement for methylated GATC sites is less stringent in vitro than in vivo. The time required for complete methylation of the origin region apparently determines the minimal spacing of replication forks on the chromosome.

Chromosomes, Bacterial↗

Selection of homeotic proteins for binding to a human DNA replication origin.

We have previously shown that a cell cycle-dependent nucleoprotein complex assembles in vivo on a 74 bp sequence within the human DNA replication origin associated to the Lamin B2 gene. Here, we report the identification, using a one-hybrid screen in yeast, of three proteins interacting with the 74 bp sequence. All of them, namely HOXA13, HOXC10 and HOXC13, are orthologues of the Abdominal-B gene of Drosophila melanogaster and are members of the homeogene family of developmental regulators. We describe the complete open reading frame sequence of HOXC10 and HOXC13 along with the structure of the HoxC13 gene. The specificity of binding of these two proteins to the Lamin B2 origin is confirmed by both band-shift and in vitro footprinting assays. In addition, the ability of HOXC10 and HOXC13 to increase the activity of a promoter containing the 74 bp sequence, as assayed by CAT-assay experiments, demonstrates a direct interaction of these homeoproteins with the origin sequence in mammalian cells. We also show that HOXC10 expression is cell-type-dependent and positively correlates with cell proliferation.

Amino Acid Sequence↗

DNA sequence of the Xenopus laevis mitochondrial heavy and light strand replication origins and flanking tRNA genes.

We have determined the primary structure of the two regions of the Xenopus laevis mitochondrial genome which encompass the origins of heavy (H) and light (L) strand replication. The first segment, which consists of 2398 nucleotides, contains the displacement loop (D-loop), the tRNA genes for threonine, proline and phenylalanine, the origin of H-strand replication, and the promoters of H- and L-strand transcription. The second segment, which consists of 447 nucleotides, contains the L-strand replication origin flanked by the tRNA genes for tryptophan, alanine, asparagine, cysteine, and tyrosine. A comparison of the sequences of the Xenopus laevis mitochondrial L-strand replication origin region and the eight tRNA genes with their counterparts from the mammalian mitochondrial genomes reveals that these regions are quite homologous, while its D-loop region shows only slight homology with those of the mammalian mitochondrial genomes.

Amino Acids↗

A novel nucleoprotein complex at a replication origin.

The viral protein p6, required for the protein-primed initiation of replication of Bacillus subtilis phage phi 29, forms a nucleoprotein complex at the viral replication origins that shows novel features. Deoxyribonuclease I and hydroxyl radical footprinting data, as well as the induction of positive supercoiling, support a model in which a DNA right-handed superhelix tightly wraps around a multimeric p6 core. The interaction occurs through the DNA minor groove. The activity of p6 not only requires the formation of the complex but also its correct positioning, indicating that the other proteins involved in the initiation of replication recognize, at a precise position, either the p6 core or the DNA conformational change induced by p6.

Bacillus subtilis↗

Cloning and sequencing of the replication origin (oriC) of the Spiroplasma citri chromosome and construction of autonomously replicating artificial plasmids.

A 5.6-kbp fragment of Spiroplasma citri DNA containing the dnaA gene has been cloned and sequenced. Nucleotide sequence analysis shows that this fragment harbors the genes for the replication initiator protein (dnaA), the beta subunit of DNA polymerase III (dnaN), and the DNA gyrase subunits A and B (gyrA and gyrB). The arrangement of these genes, dnaA-dnaN-gyrB-gyrA, is similar to that found in all Gram-positive bacterial genomes studied so far, except that no recF gene was found between dnaN and gyrB. Several DnaA-box consensus sequences were found upstream of dnaA and in the dnaA-dnaN intergenic region. The dnaA region with the flanking DnaA-boxes and the tetracycline resistance determinant, tetM, were linked into a circular recombinant DNA. This DNA was able to replicate autonomously when introduced by electroporation into S. citri cells. These experiments show that the dnaA region with the DnaA-boxes is the origin of replication of S. citri and can be used to construct gene vectors.

Amino Acid Sequence↗

The ease of DNA unwinding as a determinant of initiation at yeast replication origins.

We have localized the DNA sequence that facilitates unwinding of a yeast replication origin, the H4 ARS. The readily unwound sequence lies adjacent to the previously characterized consensus core sequence of the ARS. Unwinding is detected through the formation of a single-strand-specific nuclease hypersensitive site in H4 ARS mutant derivatives present on supercoiled plasmids. Linker-scanning and linker-deletion derivatives exhibit wild-type nuclease hypersensitivity and ARS function, while large external deletions reduce or eliminate nuclease detectable unwinding and origin function. ARS unwinding and origin function can be rescued in the deletion mutants by inserting a biologically unrelated sequence with DNA unwinding properties similar to a functional ARS. The data clarify the nature of DNA sequence requirements in the ARS by suggesting that small substitutions, insertions, and deletions are tolerated in the region flanking the consensus core sequence because they do not significantly alter the unwinding properties of the region.

DNA Mutational Analysis↗

Unique sequence requirements for the P1 plasmid replication origin.

We have carried out a detailed genetic analysis of the P1 plasmid replication origin and shown that it has four major structural requirements: the DnaA box, a series of five 7-base pair (bp) repeats, a GC-rich spacer and five 19-bp repeats that bind the P1 RepA protein. The origin requires the DnaA protein and its recognition sequence (the DnaA box). However, although five boxes are present in two separate blocks in the wild type, just one, placed either to the left or right of the core origin sequences, is sufficient for function as long as the box conforms exactly to the proposed consensus. Each of the five 7-bp repeats that constitute the core of the origin is required; mutations within any of the first six base pairs can block origin function. The required bases include, but are not limited to, those constituting dam methylation sites. Also essential is a 39-bp GC-rich sequence. We show this to be a spacer of critical length that separates the 7-bp repeats from the last required region; a series of 19-bp repeats that bind the P1 RepA initiator protein.

Bacterial Proteins↗

Localization and DNA sequence of a replication origin in the rhodopsin gene locus of Chinese hamster cells.

A chromosomal origin of DNA replication has been localized within the single-copy rhodopsin gene locus in Chinese hamster (line CHO) cells using two methods. In the first method, single-copy segments were identified at 3 to 15 kb intervals within approximately 75 kb (kb = 10(3) bases) of cloned genomic DNA containing the early-replicating rhodopsin gene near its middle. The cloned single-copy segments were then used as hybridization probes to quantify the replication of their corresponding genomic segments as synchronized cells progressed into S phase. In the second method, genomic DNA synthesized in vivo or in permeabilized early S phase cells was hybridized with slot-blots of the cloned single-copy DNA segments to identify the earliest replicating part of the 75 kb mapped region. The first method indicates that the earliest replicating DNA is located within a 10 kb region beginning 4 kb upstream from and extending 1 kb beyond the rhodopsin gene. The second method confirms the location in the vicinity of the rhodopsin gene and indicates that the earliest replicating region is located within or very near the 4.5 kb rhodopsin gene itself. An extended region of 12 kb that encompasses the entire early-replicating region has been sequenced for analysis and comparison with currently characterized origin regions associated with the CHO dihydrofolate reductase (dhfr) and human c-myc genes. There are several sequence similarities between the dhfr rhodopsin origin regions, including common transcription promoter consensus sequences, rodent Alu repeats with their 3'-A+T rich flanking sequences, A+T-rich yeast ARS and Drosophila SAR consensus sequences, and simple (GA)n repeats, but there are no extended regions of direct similarity. The rhodopsin gene locus is the second sequenced CHO origin region.

Animals↗

A single-stranded DNA binding protein that specifically recognizes cis-acting sequences in the replication origin and transcriptional promoter region of Tetrahymena rDNA.

Type I repeat sequences are evolutionarily conserved sequence elements found in the replication origin and transcriptional promoter region of the rRNA genes (rDNA) in Tetrahymena thermophila. An abundant single-stranded DNA binding protein, ssA-TIBF, specifically interacts with the A-rich strand of the Type I repeat sequence. Quantitative binding competition experiments performed with purified ssA-TIBF demonstrate that the binding site for ssA-TIBF includes sequences both within the conserved 33 nt element and in a 3' flanking region: addition of the 3' flanking sequence to the Type I repeat oligonucleotide increases the binding affinity of ssA-TIBF by nearly 100-fold (apparent Kd = 3.0 x 10(-10) M). A mutation in the ssA-TIBF binding site previously shown to be the determinant of an rDNA replication defect in vivo results in a 25-fold decrease in ssA-TIBF binding affinity in vitro. ssA-TIBF also binds with high affinity to a copy of the Type I repeat sequence within the essential promoter region defined by in vitro transcription assays. The affinity of ssA-TIBF for the promoter repeat, which differs from other copies of the repeat at 8 out of 33 positions, is at least equal to its affinity for the Type I repeat sequences in the origin region. The biochemical properties of ssA-TIBF in vitro suggest that it could play a role in both replication and transcription of Tetrahymena rDNA in vivo.

Animals↗

ATR and ATM regulate the timing of DNA replication origin firing.

Timing of DNA replication initiation is dependent on S-phase-promoting kinase (SPK) activity at discrete origins and the simultaneous function of many replicons. DNA damage prevents origin firing through the ATM- and ATR-dependent inhibition of Cdk2 and Cdc7 SPKs. Here, we establish that modulation of ATM- and ATR-signalling pathways controls origin firing in the absence of DNA damage. Inhibition of ATM and ATR with caffeine or specific neutralizing antibodies, or upregulation of Cdk2 or Cdc7, promoted rapid and synchronous origin firing; conversely, inhibition of Cdc25A slowed DNA replication. Cdk2 was in equilibrium between active and inactive states, and the concentration of replication protein A (RPA)-bound single-stranded DNA (ssDNA) correlated with Chk1 activation and inhibition of origin firing. Furthermore, ATM was transiently activated during ongoing replication. We propose that ATR and ATM regulate SPK activity through a feedback mechanism originating at active replicons. Our observations establish that ATM- and ATR-signalling pathways operate during an unperturbed cell cycle to regulate initiation and progression of DNA synthesis, and are therefore poised to halt replication in the presence of DNA damage.

Animals↗

Activation of TRAF5 and TRAF6 signal cascades negatively regulates the latent replication origin of Epstein-Barr virus through p38 mitogen-activated protein kinase.

Latent Epstein-Barr virus (EBV) is maintained by the virus replication origin oriP that initiates DNA replication with the viral oriP-binding factor EBNA1. However, it is not known whether oriP's replicator activity is regulated by virus proteins or extracellular signals. By using a transient replication assay, we found that a low level of expression of viral signal transduction activator latent membrane protein 1 (LMP1) suppressed oriP activity. The binding site of the tumor necrosis factor receptor-associated factor (TRAF) of LMP1 was essential for this suppressive effect. Activation of the TRAF signal cascade by overexpression of TRAF5 and/or TRAF6 also suppressed oriP activity. Conversely, blocking of TRAF signaling with dominant negative mutants of TRAF5 and TRAF6, as well as inhibition of a downstream signal mediator p38 MAPK, released the LMP1-induced oriP suppression. Furthermore, activation of TRAF6 signal cascade by lipopolysaccharides (LPS) resulted in loss of EBV from Burkitt's lymphoma cell line Akata, and inhibition of p38 MAPK abolished the suppressive effect of LPS. These results suggested that the level of oriP activity is regulated by LMP1 and extracellular signals through TRAF5- and TRAF6-mediated signal cascades.

Binding Sites↗

Use of time-lapse microscopy to visualize rapid movement of the replication origin region of the chromosome during the cell cycle in Bacillus subtilis.

We describe the use of time-lapse fluorescence microscopy to visualize the movement of the DNA replication origin and terminus regions on the Bacillus subtilis chromosome during the course of the cell cycle. The origin and terminus regions were tagged with a cassette of tandem lac operator repeats and visualized through the use of a fusion of the green fluorescent protein to the LacI repressor. We have discovered that origin regions abruptly move apart towards the cell poles during a brief interval of the cell cycle. This movement was also seen in the absence of cell wall growth and in the absence of the product of the parB homologue spo0J. The origin regions moved apart an average distance of 1.4 microm in an 11 min period of abrupt movement, representing an average velocity of 0.17 microm min(-1), and reaching a maximum velocity of greater than 0.27 microm min(-1). The terminus region also exhibited a striking pattern of movement but not as far or a rapid as the origin region. These results provide evidence for a mitotic-like motor that is responsible for segregation of the origin regions of the chromosomes.

Bacillus subtilis↗

Two binding sites for the herpes simplex virus type 1 UL9 protein are required for efficient activity of the oriS replication origin.

Two sites within the short region origin of DNA replication (oriS) in herpes simplex virus type 1 (HSV-1) which bind the product of the UL9 gene have previously been identified. One of these sites (site I) contains an 11 bp sequence which is also present in oriS of varicella-zoster virus, and the other (site II) includes a related element differing in two positions. A third sequence (motif III), which lies close to binding site I, differs from the site I element at only a single position. We have deleted specifically each of these three 11 bp sequences from within functional copies of HSV-1 oriS and have examined the effects on origin activity and binding of the UL9 protein. Gel retardation analyses confirmed the important roles of the regions deleted from sites I and II in interacting with the UL9 protein. In transient replication assays, copies of oriS lacking the site I or II elements exhibited undetectable or residual (4 to 8%) activity respectively. The UL9 protein did not bind to motif III even in the absence of site I sequences, although removal of the motif III sequence caused a small reduction in oriS activity. A single base change which converted the sequence within binding site I to that of motif III was sufficient to abolish both the interaction of the UL9 gene product at this locus and the replicative ability of oriS. Therefore, interaction of the UL9 protein with binding site I is essential for origin activity, but the presence of binding site II is also required for efficient replication.

Base Sequence↗

The replication origin of pSC101: the nucleotide sequence and replication functions of the ori region.

The nucleotide sequence of a 770-bp ori region of plasmid pSC101 is presented. The sequence shows homologies to some parts of Escherichia coli oriC and phage G4 ori. Several other features are an 80-bp A + T-rich region overlapping a part of the region homologous to oriC, three direct repeats of an 18-bp sequence adjacent to the A + T-rich region, a typical promoter sequence just upstream of the longest open reading frame (ORF) and a long inverted repeat sequence overlapping the putative promoter region. Analysis of successive deletions by BAL31 exonuclease demonstrated that one of the regions homologous to oriC along with the A + T-rich region are essential for autonomous replication of the plasmid. The three 18-bp repeats are responsible for incompatibility phenotype. The region containing the promoter-like sequence is required for expression of a trans-acting function.

Base Sequence↗

Sequence-specific interaction with the viral AL1 protein identifies a geminivirus DNA replication origin.

The bipartite geminiviruses such as tomato golden mosaic virus (TGMV) and squash leaf curl virus (SqLCV) have two single-stranded circular genomic DNAs, the A and B components, thought to be replicated from double-stranded circular DNA intermediates. Although it has been presumed that the origin sequences for viral replication are located in the highly conserved 200-nucleotide common region (CR) present in both genomic components and that the viral-encoded AL1 protein interacts with these sequences to effect replication, there has been no evidence that this is in fact so. We have investigated these questions, demonstrating selectivity and sequence specificity in this protein-DNA interaction. Simple component switching between the DNAs of TGMV and SqLCV and analysis of replication in leaf discs showed that whereas the A components of both TGMV and SqLCV promote their own replication and that of their cognate B component, neither replicates the noncognate B component. Furthermore, using an in vivo functional replication assay, we found that cloned viral CR sequences function as a replication origin and direct the replication of nonviral sequences in the presence of AL1, with both circular single-stranded and double-stranded DNA being synthesized. Finally, by the creation of chimeric viral CRs and specific subfragments of the viral CR, we demonstrated sequence-specific recognition of the replication origin by the AL1 protein, thereby localizing the origin to an approximately 90-nucleotide segment in the AL1 proximal side of the CR that includes the conserved geminiviral stem-loop structure and approximately 60 nucleotides of 5' upstream sequence. By deletional analysis, we further demonstrated that the conserved stem-loop structure is essential for replication. These studies identify the functional viral origin of replication within the CR, demonstrating that sequence-specific recognition of this origin by the AL1 protein is required for replication.

Base Sequence↗

Enforcement of late replication origin firing by clusters of short G-rich DNA sequences.

Previous studies in budding yeast suggested that the default firing time of most DNA replication origins is early in S phase and that origins can be forced to fire later by proximity to certain cis-acting sequences. However, these cis-acting sequences were not well defined. We have attempted to characterize cis-acting sequences that affect replication timing in the fission yeast. We identified a stretch of 200 bp that was sufficient to compel nearby origins to fire late. The 200-bp stretch was able to force an origin to fire late whether adjacent to the origin or approximately 800 bp away in opposite orientation. The stretch contains a cluster of three close matches to a G-rich, 10-bp late consensus sequence (LCS). The three LCS elements cooperate with each other and with other sequences within the 200-bp stretch to enforce late replication. Although only a few origins that fire in very late S phase have been identified in fission yeast, all of them are located close to a cluster of LCS elements.

Base Sequence↗

Cancer: involvement of replicative origins?

The assumption is made that movable genetic elements related to cancer are replicons and/or replicative origins. Some evidence is provided that certain mobile Alu-origins may represent candidates for precursors of chromosomal insertions. They could incorporate and interact with "fixed" chromosomal origins converting them to "procaryotic" ones. In other words, cancer is considered the result of a short and compact "re-evolution" from eucaryotic to "procaryotic" replication units.

Animals↗

Genes and their organization in the replication origin region of the bacterial chromosome.

Genes and their organization are conserved in the replication origin region of the bacterial chromosome. To determine the extent of the conserved region in Gram-positive and Gram-negative bacteria, which diverged 1.2 billion years ago, we have further sequenced the region upstream from the dnaA genes in Bacillus subtilis and Pseudomonas putida. Fifteen open reading frames (ORFs) and 11 ORFs were identified in the 13.6 kb and the 9.8 kb fragments in B. subtilis and P. putida, respectively. Eight consecutive P. putida genes, except for one small ORF (homologous to gene 9K of Escherichia coli) in between, are homologous in sequence and relative locations to genes in B. subtilis. Altogether, 12 genes and their organization are conserved in B. subtilis and P. putida in the origin region. We found that the conserved region terminated on one side after the orf290 in P. putida (orf282 in B. subtilis). In the B. subtilis chromosome, five additional ORFs were found in between the conserved genes, suggesting that they are added after Gram-positive bacteria were diverged from the Gram-negative bacteria. One of the ORFs is a duplicate of the conserved gene. The third non-translatable region containing multiple repeats of DnaA-box (second in the case of P. putida) was found flanking gidA in both organisms. This result shows clearly that E. coli oriC and flanking genes gidA and gidB have been translocated by the inversion of some 40 kb fragment.

Amino Acid Sequence↗