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Effects of base damages on DNA replication--mechanism of preferential purine nucleotide insertion opposite abasic site in template DNA.

DNA polymerase preferentially inserts purine nucleotides opposite non-instructive lesions such as abasic sites during DNA replication. In order to elucidate the mechanism of the preferential insertion, a DNA template containing a model abasic site and primers containing 4 different nucleotides (A,G,C,T) at primer terminus were synthesized. The stability of the primer terminus nucleotide placed opposite the abasic site was evaluated on the basis of its sensitivity to 3'-5' exonuclease associated with DNA polymerase.

DNA↗

[A possible molecular mechanism of the impairment of the stability of the genome in cells capable of replicating DNA in acute and chronic forms of radiation sickness].

On the basis of the experimentally grounded concept concerning the functional antagonism of various domains of chromosomal SSB-proteins, that play a major role in the implementation of the contrary processes which either provide stability of DNA macromolecules or bear the responsibility for their degradation, a possible molecular mechanism of the disturbance of cell genome stability upon acute and chronic radiation sickness is discussed.

Acute Disease↗

The effect of regulatory sequence elements upon the initiation of DNA replication of the minute virus of mice.

The minute virus of mice (MVM) genome is a linear single-stranded length of approximately 5000 nucleotides of DNA with unique terminal palindromic sequences at both ends. The left(3') hairpin is used to prime the initiation of DNA synthesis on parental single-strand DNA while the right (5') hairpin or stem-plus-arms structure can also prime the initiation of DNA synthesis during synthesis of dimer and higher oligomers as well as synthesis of progeny single strands. Previous studies have shown that if viral duplex DNA was input into an in vitro DNA replication system using extracts from uninfected HeLa cells, the 5' end of the molecule was able to form a hairpin and initiate DNA synthesis by DNA polymerase delta (Cossons et al. (1996), Virology 216, 258-264). In this study, the effect of the deletion of known cis-acting genetic elements upon the initiation of DNA replication was studied using a series of MVM mutants with deletions within the 5' terminal region. Mutants containing deletions of elements A (nucleotides 4489-4636), B (nucleotides 4636-4695), and either one or both of the 65-bp repeats (nucleotides 4720-4785 and 4785-4849) were used as template in the in vitro DNA replication system. When element A was deleted, the efficiency of initiation decreased significantly. Subsequent removal of element B, leaving just the two 65-bp repeats, restored levels of initiation back to those seen in the wild-type genome. In the absence of either A or B both 65-bp repeats were necessary for efficient initiation, and removal of one of these repeats caused a decrease in efficiency. Thus, element B appeared to have a negative regulatory effect (in the absence of element A), and element A appeared to have a positive regulatory effect, at least in the presence of element B. These data demonstrate, for the first time, a complex interaction between these cis-acting regulatory elements which can function as both positive or negative regulators in the initiation of MVM DNA replication.

Animals↗

Regulation of DNA replication by the nuclear envelope.

Recent evidence suggests that the nuclear envelope is directly involved in regulating DNA replication. It does this in at least three ways. First, replication is dependent on assembly of an intact nuclear envelope capable of nuclear transport. Second, the nuclear membrane defines the nucleus as the fundamental unit of replication and determines the timing of initiation. Third, the nuclear membrane is essential for coupling DNA replication to the cell cycle. Thus, regulated DNA replication in eukaryotic cells depends on a structurally intact and functional nuclear envelope.

Animals↗

Comparison of plastid DNA replication in different cells and tissues of the rice plant.

In a previous study, we mapped replication origin regions of the plastid DNA around the 3' end of the 23S rRNA gene in rice suspension-cultured cells. Here, we examined initiation of the plastid DNA replication in different rice cells by two-dimensional agarose gel electrophoresis. We show for the first time, to our knowledge, that the replication origin region of the plastid DNA differs among cultured cells, coleoptiles and mature leaves. In addition, digestion of the replication intermediates from the rice cultured cells with mung bean nuclease, a single-strand-specific nuclease, revealed that both two single strands of the double-stranded parental DNA were simultaneously replicated in the origin region. This was further confirmed by two-dimensional agarose gel analysis with single-stranded RNA probes. Thus, the mode of plastid DNA replication presented here differs from the unidirectional replication started by forming displacement loops (D-loops), in which the two D-loops on the opposite strands expand toward each other and only one parental strand serves as a template.

Bacterial Proteins↗

[cDNA microarray to identify the significance of DNA replication and damage repair genes associated with benzene poisoning].

OBJECTIVE: To screen DNA replication, and damage repair genes associated with benzene poisoning by using gene expression profile analysis. METHODS: Leucocytes in peripheral blood of seven patients and seven normal controls were collected and total RNA was extracted. The cDNA probes were prepared by labeling cell RNA with Cy3-dUTP and Cy5-dUTP with reverse transcription. The arrays with 141 genes were hybridized against the cDNA probe mixture, and the fluorescent signals were scanned. RESULTS: Twenty five differentially expressed genes were screened out. Among these genes, 16 genes were up-regulated and 9 down-regulated. They were DNA replication genes such as PRIM2A, ORC1L etc; DNA synthesis, recombination and repair genes such as POLK etc; DNA damage signaling/repair proteins and DNA ligases such as RECQL, PRKDC, G22P1, ERCC3, ERCC1, CRY1, CHES1, BRCA2, APEX etc; proteins involved in recombination such as RECQL; and other DNA synthesis, recombination, and repair proteins such as SKIV2L, RBMS1, SON, SET. CONCLUSIONS: Some DNA replication, and damage repair genes associated with benzene poisoning show differential expression, which provides the basis for screening biomarkers of benzene poisoning.

Benzene↗

The Role of DNA Polymerase delta in HeLa Cell DNA Replication Studied by Antisense Technology.

We have investigated the biological role of DNA polymerase delta in HeLa cell DNA replication using antisense technology with the Lipofectin Delivery and the GPT selection method. Both of the oligonucleotides designed to inhibit the expression of DNA polymerase delta and alpha can specifically reduce the DNA replication level in HeLa cells. This is the first report directly proving that DNA polymerase delta plays an important role in mammalian cell DNA replication.

Journal Article↗

Paradoxes of eukaryotic DNA replication: MCM proteins and the random completion problem.

Eukaryotic DNA replication initiates at multiple origins. In early fly and frog embryos, chromosomal replication is very rapid and initiates without sequence specificity. Despite this apparent randomness, the spacing of these numerous initiation sites must be sufficiently regular for the genome to be completely replicated on time. Studies in various eukaryotes have revealed that there is a strict temporal separation of origin "licensing" prior to S phase and origin activation during S phase. This may suggest that replicon size must be already established at the licensing stage. However, recent experiments suggest that a large excess of potential origins are assembled along chromatin during licensing. Thus, a regular replicon size may result from the selection of origins during S phase. We review single molecule analyses of origin activation and other experiments addressing this issue and their general significance for eukaryotic DNA replication.

Animals↗

Adenovirus DNA replication in vitro is stimulated by RNA from uninfected HeLa cells.

Adenovirus DNA replication was studied in a partially reconstituted system consisting of purified viral proteins (DNA-binding protein, precursor terminal protein and Ad DNA polymerase) and a nuclear extract from uninfected HeLa cells. Optimal DNA replication required the presence of a heat-stable, ribonuclease-sensitive fraction from the cytosol of uninfected cells. This fraction stimulated the initiation about 3-fold and the replication of origin fragments 5-10-fold. Sedimentation analysis indicated the presence of a fast-sedimenting and a slow-sedimenting component which complemented each other. At least part of the stimulation was caused by low-molecular-mass RNA.

Adenoviruses, Human↗

A novel regulatory mechanism couples deoxyribonucleotide synthesis and DNA replication in Escherichia coli.

We present evidence for a complex regulatory interplay between the initiation of DNA replication and deoxyribonucleotide synthesis. In Escherichia coli, the ATP-bound DnaA protein initiates chromosomal replication. Upon loading of the beta-clamp subunit (DnaN) of the replicase, DnaA is inactivated as its intrinsic ATPase activity is stimulated by the protein Hda. The beta-subunit acts as a matchmaker between Hda and DnaA. Chain elongation of DNA requires a sufficient supply of deoxyribonucleotides (dNTPs), which are produced by ribonucleotide reductase (RNR). We present evidence suggesting that the molecular switch from ATP-DnaA to ADP-DnaA is a critical step coordinating DNA replication with increased deoxyribonucleotide synthesis. Characterization of dnaA and dnaN mutations that result in a constitutively high expression of RNR reveal this mechanism. We propose that the nucleotide bound state of DnaA regulates the transcription of the genes encoding ribonucleotide reductase (nrdAB). Accordingly, the conversion of ATP-DnaA to ADP-DnaA after initiation and loading of the beta-subunit DnaN would allow increased nrdAB expression, and consequently, coordinated RNR synthesis and DNA replication during the cell cycle.

Adenosine Diphosphate↗

Plasmid models for bacteriophage T4 DNA replication: requirements for fork proteins.

Bacteriophage T4 DNA replication initiates from origins at early times of infection and from recombinational intermediates as the infection progresses. Plasmids containing cloned T4 origins replicate during T4 infection, providing a model system for studying origin-dependent replication. In addition, recombination-dependent replication can be analyzed by using cloned nonorigin fragments of T4 DNA, which direct plasmid replication that requires phage-encoded recombination proteins. We have tested in vivo requirements for both plasmid replication model systems by infecting plasmid-containing cells with mutant phage. Replication of origin and nonorigin plasmids strictly required components of the T4 DNA polymerase holoenzyme complex. Recombination-dependent plasmid replication also strictly required the T4 single-stranded DNA-binding protein (gene product 32 [gp32]), and replication of origin-containing plasmids was greatly reduced by 32 amber mutations. gp32 is therefore important in both modes of replication. An amber mutation in gene 41, which encodes the replicative helicase of T4, reduced but did not eliminate both recombination- and origin-dependent plasmid replication. Therefore, gp41 may normally be utilized for replication of both plasmids but is apparently not required for either. An amber mutation in gene 61, which encodes the T4 RNA primase, did not eliminate either recombination- or origin-dependent plasmid replication. However, plasmid replication was severely delayed by the 61 amber mutation, suggesting that the protein may normally play an important, though nonessential, role in replication. We deleted gene 61 from the T4 genome to test whether the observed replication was due to residual gp61 in the amber mutant infection. The replication phenotype of the deletion mutant was identical to that of the amber mutant. Therefore, gp61 is not required for in vivo T4 replication. Furthermore, the deletion mutant is viable, demonstrating that the gp61 primase is not an essential T4 protein.

Bacteriophage T4↗

Studies on the DNA elongation inhibitor and its proliferating cell nuclear antigen-dependent control in simian virus 40 DNA replication in vitro.

A 120-kDa protein that blocks DNA termini has been purified from extracts of HeLa cells. This protein inhibits the action of a number of enzymes that catalyze reactions involving the 5' and 3' ends of DNA (DNA ligase, 3' and 5' exonucleases, and DNA polymerase alpha). The 120-kDa protein blocks the synthesis of long DNA chains that are normally formed during simian virus 40 DNA replication, causing the accumulation of small DNA fragments. The effects of this protein can be reversed by the addition of proliferating cell nuclear antigen and other protein fractions (activators).

Antigens, Neoplasm↗

Dual functional regulators coordinate DNA replication and gene expression in proliferating cells.

Gene products for cell growth must meet the pace of DNA replication and vice versa during the cell division cycle, therefore coordination of DNA replication and gene expression is vital to proliferating cells. During development in multicellular organisms when rapid cell divisions must be accompanied by the expression of particular gene sets in differentiating tissues, this coordination is even more crucial. Undoubtedly, multiple strategies are used to ensure the coordination of gene expression and DNA replication. In this review, we focus on the strategy that uses dual functional factors to serve both the functions of replication initiator and transcription regulator. Classical examples are the dual functional replication initiator/transcription regulators, DnaA of E. coli and T antigen of SV40, which bind replication origins and regulate their own synthesis. Emerging examples in eukaryotes are the growth responsive transcription factor E2f, the MADS domain combinatorial transcription factor Mcm1, and a subunit of the MCM2-7 helicase, Mcm7.

Animals↗

Phosphorylation of large tumour antigen by cdc2 stimulates SV40 DNA replication.

Simian virus 40 large tumour antigen (T) is a replication origin binding protein required for viral DNA synthesis. Unphosphorylated T antigen is deficient in promoting DNA replication in vitro but can be activated by phosphorylation at residue threonine 124 by the cdc2 protein kinase. This observation demonstrates that T is regulated by phosphorylation and provides a model for cdc2 function in the control of DNA replication.

Antigens, Polyomavirus Transforming↗

DNA replication and nuclear organization: prospects for a soluble in vitro system.

The role of nuclear structure in the replication of eukaryotic DNA has been the subject of debate for many decades. The recent demonstration that once-per-cell-cycle replication can take place in vitro without a nucleus, providing sufficiently high concentrations of replication factors are supplied, suggests that one role of the nucleus is to concentrate essential factors. This important finding has paved the way for the establishment of a purified biochemical system for replication of eukaryotic DNA. However, this soluble system, derived from Xenopus egg extracts, initiates replication within any DNA sequence and does not recapitulate the spatial and temporal regulation of DNA replication that is observed in most cells. In both Xenopus and Drosophila embryos, site-specific initiation of replication is not observed until after nuclei become transcriptionally active at the blastula stage of development. Furthermore, programmed changes in both the locations of origins and the time during S-phase at which sequences are replicated accompany key stages of metazoan development. Recent findings indicate that these changes correlate with changes in nuclear organization and that the spatial and temporal program for replication is established early in G1-phase when nuclei are structurally and functionally reorganized after mitosis.

Animals↗

A role for Cdk2 kinase in negatively regulating DNA replication during S phase of the cell cycle.

Using cell-free extracts made from Xenopus eggs, we show that cdk2-cyclin E and A kinases play an important role in negatively regulating DNA replication. Specifically, we demonstrate that the cdk2 kinase concentration surrounding chromatin in extracts increases 200-fold once the chromatin is assembled into nuclei. Further, we find that if the cdk2-cyclin E or A concentration in egg cytosol is increased 16-fold before the addition of sperm chromatin, the chromatin fails to initiate DNA replication once assembled into nuclei. This demonstrates that cdk2-cyclin E or A can negatively regulate DNA replication. With respect to how this negative regulation occurs, we show that high levels of cdk2-cyclin E do not block the association of the protein complex ORC with sperm chromatin but do prevent association of MCM3, a protein essential for replication. Importantly, we find that MCM3 that is prebound to chromatin does not dissociate when cdk2-cyclin E levels are increased. Taken together our results strongly suggest that during the embryonic cell cycle, the low concentrations of cdk2-cyclin E present in the cytosol after mitosis and before nuclear formation allow proteins essential for potentiating DNA replication to bind to chromatin, and that the high concentration of cdk2-cyclin E within nuclei prevents MCM from reassociating with chromatin after replication. This situation could serve, in part, to limit DNA replication to a single round per cell cycle.

Animals↗