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Human papillomavirus DNA replication compartments in a transient DNA replication system.

Many DNA viruses replicate their genomes at nuclear foci in infected cells. Using indirect immunofluorescence in combination with fluorescence in situ hybridization, we colocalized the human papillomavirus (HPV) replicating proteins E1 and E2 and the replicating origin-containing plasmid to nuclear foci in transiently transfected cells. The host replication protein A (RP-A) was also colocalized to these foci. These nuclear structures were identified as active sites of viral DNA synthesis by bromodeoxyuridine (BrdU) pulse-labeling. Unexpectedly, the great majority of RP-A and BrdU incorporation was found in these HPV replication domains. Furthermore, E1, E2, and RP-A were also colocalized to nuclear foci in the absence of an origin-containing plasmid. These observations suggest a spatial reorganization of the host DNA replication machinery upon HPV DNA replication or E1 and E2 expression. Alternatively, viral DNA replication might be targeted to host nuclear domains that are active during the late S phase, when such domains are limited in number. In a fraction of cells expressing E1 and E2, the promyelocytic leukemia protein, a component of nuclear domain 10 (ND10), was either partially or completely colocalized with E1 and E2. Since ND10 structures were recently hypothesized to be sites of bovine papillomavirus virion assembly, our observation suggests that HPV DNA amplification might be partially coupled to virion assembly.

Cell Nucleus↗

Bleomycin-induced alterations in DNA replication: relationship to DNA damage.

Bleomycin (BLM), a well-known DNA scission agent, is assumed to inhibit intracellular DNA replication by damaging the DNA template (cis-acting mechanism), although other DNA damaging compounds can alter DNA replication through modulation of crucial replication factor(s) (trans-acting mechanism). The present study examines the relationship between DNA damage and inhibition of replication caused by BLM in the well-defined simian virus 40 (SV40) intracellular and cell-free in vitro systems. Treatment of SV40-infected BSC-1 cells for 2 h with BLM at 50 microg/mL, induced 0.3 break/viral genome. Under the same treatment conditions, analysis of replication intermediates on two-dimensional gels showed a decrease in both mass of SV40 replication intermediates and replication activity. The mass of SV40 intermediates was decreased to about 30%, whereas replication activity was reduced to less than 5%. These results suggest that BLM inhibits both initiation and elongation phases of SV40 replication. In a cell-free DNA replication system, extracts from BLM-treated cells (50 micro/mL) were able to support SV40 DNA replication by only 50%. In this study, non-drug-treated DNA template was used, implying that BLM can induce a trans-acting effect. Finally, the drug-induced effects on SV40 DNA replication in cell-free and intracellular viral systems were compared to the effects on genomic DNA replication in BSC-1 cells. Overall, the results support the concept that BLM-induced inhibition of DNA replication occurs by both trans- (inhibition of replication of nondamaged template) and cis-acting mechanisms (template damage).

Animals↗

Ability of N-methyl-N'-nitro-N-nitrosoguanidine, 4-nitroquinoline 1-oxide, dimethylnitrosamine, and NaCl to induce unscheduled DNA synthesis, stimulate replicative DNA synthesis, and produce DNA single-strand breaks in pyloric mucosa of rat stomach.

Male F344 rats were given test chemicals orally, and samples of their pyloric mucosa were incubated in vitro. Induction of unscheduled DNA synthesis (UDS) and stimulation of replicative DNA synthesis in the pyloric mucosa were then examined by addition of [3H]thymidine and simultaneous determinations of DNA synthesis in the presence and absence of hydroxyurea, an inhibitor of replicative DNA synthesis. DNA damage was also examined by the alkaline elution method with DNA single-strand scission as a marker. The results showed four types of abilities of the chemicals to affect UDS and replicative DNA synthesis in the pyloric mucosa of rat stomach 1-2 h after their administration: (1) induction of UDS and stimulation of replicative DNA synthesis by N-methyl-N'-nitro-N-nitrosoguanidine (MNNG), a glandular stomach carcinogen, (2) induction of only UDS by 4-nitroquinoline 1-oxide (4NQO), a glandular stomach carcinogen, (3) stimulation of only replicative DNA synthesis by NaCl, a glandular stomach tumor promoter, and (4) neither induction of UDS nor stimulation of replicative DNA synthesis by dimethylnitrosamine (DMN), a liver carcinogen. DNA single-strand scission was induced by MNNG and 4NQO, being maximal 2 h after their administration, but was not induced by NaCl or DMN. Thus it correlated well with the induction of UDS. The present results indicate four types of inductive abilities of chemicals on UDS and replicative DNA synthesis in rat stomach pyloric mucosa and show that this method can detect differences in the action mechanisms and organ specificities of glandular stomach carcinogens.

4-Nitroquinoline-1-oxide↗

Reversal of terminal differentiation and control of DNA replication: cyclin A and Cdk2 specifically localize at subnuclear sites of DNA replication.

DNA replication in mammalian cells occurs in discrete nuclear foci. Here we show that terminally differentiated myotubes can be induced to reenter S phase and show the same pattern of replication foci as cycling cells. We used this cellular system to analyze the interaction of cell cycle proteins with these foci in vivo. Cyclin A and cdk2, but not cyclin B1 and cdc2, were specifically localized at nuclear replication foci, just like the replication protein proliferating cell nuclear antigen. A potential target of cyclin A and cdk2 is the 34 kd subunit of replication protein A (RPA34). In contrast with the 70 kd subunit, which localizes to the foci, RPA34 was not detected at these replication sites, which may reflect a transient interaction. The specific localization of cyclin A and cdk2 at nuclear replication foci provides a direct link between cell cycle regulation and DNA replication.

Animals↗

The effect of cytosine arabinoside on the synthesis of rapidly labeled RNA during DNA replicating and non-DNA replicating periods of the cell cycle.

The effects of various concentrations of cytosine arabinoside (Ara-C) on the rates of DNA and RNA synthesis were investigated during the peak of DNA synthesis, using a naturally synchronized culture of Aedes aegypti (mosquito) cells. During this stage of the cell cycle, the synthesis of both DNA and RNA was found to be progressively inhibited with increasing concentrations of Ara-C. When the same concentrations of Ara-C were added to the culture at a time period when no DNA was being synthesized, it was found that the synthesis of RNA was not inhibited. Rapidly labeled polysomal RNA species were isolated from cultured cells in which DNA was being synthesized. The synthesis of these RNA species is inhibited completely in the presence of a concentration of Ara-C which inhibits 90% of DNA synthesis. It is suggested that during periods of DNA replication, Ara-C is a selective inhibitor of the synthesis of rapidly labeled RNA species or of the processing of these RNA species from the nucleus to the polysomes.

Aedes↗

Requirement of RecBC enzyme and an elevated level of activated RecA for induced stable DNA replication in Escherichia coli.

During SOS induction, Escherichia coli cells acquire the ability to replicate DNA in the absence of protein synthesis, i.e., induced stable DNA replication (iSDR). Initiation of iSDR can occur in the absence of transcription and DnaA protein activity, which are both required for initiation of normal DNA replication at the origin of replication, oriC. In this study we examined the requirement of recB, recC, and recA for the induction and maintenance of iSDR. We found that recB and recC mutations blocked the induction of iSDR by UV irradiation and nalidixic acid treatment. In recB(Ts) strains, iSDR activity induced at 30 degrees C was inhibited by subsequent incubation at 42 degrees C. In addition, iSDR that was induced after heat activation of the RecA441 protein was abolished by the recB21 mutation. These results indicated that the RecBC enzyme was essential not only for SOS signal generation but also for the reinitiation of DNA synthesis following DNA damage. recAo(Con) lexA3(Ind-) strains were found to be capable of iSDR after nalidixic acid treatment, indicating that the derepression of the recA gene and the activation of the elevated level of RecA protein were the necessary and sufficient conditions for the induction of iSDR.

DNA Replication↗

Interacting fidelity defects in the replicative DNA polymerase of bacteriophage RB69.

The DNA polymerases (gp43s) of the related bacteriophages T4 and RB69 are B family (polymerase alpha class) enzymes that determine the fidelity of phage DNA replication. A T4 whose gene 43 has been mutationally inactivated can be replicated by a cognate RB69 gp43 encoded by a recombinant plasmid in T4-infected Escherichia coli. We used this phage-plasmid complementation assay to obtain rapid and sensitive measurements of the mutational specificities of mutator derivatives of the RB69 enzyme. RB69 gp43s lacking proofreading function (Exo(-) enzymes) and/or substituted with alanine, serine, or threonine at the conserved polymerase function residue Tyr(567) (Pol(Y567(A/S/T)) enzymes) were examined for their effects on the reversion of specific mutations in the T4 rII gene and on forward mutation in the T4 rI gene. The results reveal that Tyr(567) is a key determinant of the fidelity of base selection and that the Pol and Exo functions are strongly coupled in this B family enzyme. In vitro assays show that the Pol(Y567A) Exo(-) enzyme generates mispairs more frequently but extends them less efficiently than does a Pol(+) Exo(-) enzyme. Other replicative DNA polymerases may control fidelity by strategies similar to those used by RB69 gp43.

Alanine↗

The effects of corticotrophin (ACTH1-24), cyclic AMP and TPA (12-O-tetradecanoyl phorbol-13-acetate) on DNA replication and proliferation of primary rabbit adrenocortical cells in a synthetic medium.

ACTH1-24 stimulated the parenchymal cells in cultures of rat adrenal cortex in serum-free synthetic HiWoBa 2000 medium to replicate DNA, enter mitosis and divide. But ACTH's principal mediator, cyclic AMP, was not a complete mitogen: the adenylate cyclase-stimulating cholera toxin and dibutyryl cyclic AMP stimulated parenchymal cells to replicate DNA but not to enter mitosis. Thus, there must have been an additional mediator of the response to ACTH1-24 that enabled the parenchymal cells to enter mitosis. This additional mediator might have been protein kinase C because a protein kinase C activator and cyclic AMP elevator, TPA, stimulated the adrenocortical parenchymal cells to replicate DNA, enter mitosis and divide.

Adrenal Cortex↗

Induction of replicative DNA synthesis in quiescent human fibroblasts by DNA damaging agents.

A marked induction of DNA replication was observed in confluent human diploid fibroblast cultures treated with low relatively nontoxic doses of UV radiation, N-methyl-N-nitrosourea (MNU), and N-acetoxy-2-acetylaminofluorene (AAAF). Isopycnic CsCl density gradient analysis of newly synthesized DNA labeled with BrdUrd indicated that most of the synthesis was semiconservative. The rate of semiconservative DNA synthesis was maximal 24 hr after damage. This induction of DNA replication was greatest at approximately equal to 3 J/m2 UV, 0.5 mM MNU, or 1.0 microM AAAF; was inhibited by hydroxyurea and aphidicolin; and also occurred in repair-deficient xeroderma pigmentosum fibroblasts. Autoradiographic examination of both confluent cultures and serum-arrested cultures showed a large increase in the fraction of densely labeled (S phase) cells after UV treatment. These densely labeled cells retain the capacity for cell division and subsequent proliferation. We conclude that low doses of at least three different DNA damaging agents are capable of recruiting quiescent cells into a state of DNA replication similar to that observed in the normal cell cycle.

Acetoxyacetylaminofluorene↗

High-resolution analysis of DNA replication in released chromatin fibers containing 5-bromodeoxyuridine.

A strategy has been devised to physically map replication sites in released chromatin of mammalian cells. When added to the culture medium, 5-bromodeoxyuridine (BrdU) is incorporated into replicating DNA, partially replacing thymidine. BrdU pulses as short as one minute can be visualized on preparations of straightened chromatin fibers from protein-extracted nuclei by means of monoclonal anti-BrdU antibody. Short BrdU pulses (< 10 min) appear as strings of fluorescent signals that are 50-300 kb in length. This corresponds to the estimated size of individual replication units. Pulse chase experiments reveal that replicating DNA is tightly associated with the residual nuclear matrix, whereas newly replicated DNA is positioned on the released loop chromatin of nuclear halo preparations. Simultaneous fluorescence in situ hybridization (FISH) on BrdU-substituted released chromatin fibers suggests that replication can initiate at multiple sites anywhere within an alpha-satellite array of several Mb.

Bromodeoxyuridine↗

Evidence for a ligation step in the DNA replication of the autonomous parvovirus minute virus of mice.

Newly replicated DNA of the autonomous parvovirus minute virus of mice was pulse-labeled with 32PO4 during the time of maximal viral DNA replication in highly synchronized A9 cells. The subsequent processing of viral DNA-protein complexes was monitored during a chase period with no label. Several distinct classes of duplex replicative-form and progeny single-stranded DNA molecules were characterized and found to accumulate at different times during infection. Analysis of the terminal structures associated with these various forms provided new insights into the mechanism by which viral DNA replicates and, in particular, suggested that interstrand ligation occurs during this process.

Animals↗

DNA replication in Physarum polycephalum. Analysis of replicating nuclear DNA using the electron microscope.

DNA has been isolated from Physarum polycephalum nuclei obtained from macroplasmodia at different stages in the mitotic cycle, and examined using the electron microscope. Putative replicating structures were identified, the majority of which contained clusters of 2--37 'microbubbles', each microbubble corresponding to a segment of DNA 100--5000 nucleotides long. The microbubble-containing structures are unstable in the formamide hyperphase used to prepare specimens for electron microscopy, possibly due to dissociation of newly replicated nascent DNA fragments from the parental DNA template during manipulation. The microbubble clusters present in early S-phase DNA extent over segments averaging 16400 nucleotide residues, and are separated by non-replicated regions of DNA varying in length from 10000 to 50000 nucleotides. It is suggested that each microbubble cluster may represent a 'replicon', and that many 'replicons' in Physarum DNA may contain several sites for the initiation of DNA synthesis that are active during S-phase.

Cell Nucleus↗

The effect of retroviral transformation on DNA replication and DNA polymerase-gamma activity in chick embryo fibroblast mitochondria.

The effect of transformation by oncogenic Rous sarcoma viruses on the replication of mitochondrial DNA (mtDNA) in chick embryo fibroblasts (CEF) was investigated, extending our previous report of a three- to five-fold increase in the rate of mtDNA replication, which is strictly linked to the expression of the transformed state, is mitochondria-specific, and is not attributable to virus production per se or different growth rates between normal and transformed CEF. In this paper, in vivo pulse-label and pulse-chase analysis shows an increased specific activity in all the replicative and topological forms of transformed cell mtDNA I, labeled within a 10-min pulse, 30-min chase period, reflecting about the same proportion of total label incorporated into D-loop strands (approximately 9S) relative to full-length closed circular forms (approximately 37S) of mtDNA from both cell types. In contrast to the concomitant changes observed in many other systems with elevated DNA synthesis, neither the estimated intramitochondrial pool size of the labeled DNA precursor (dTTP), nor the total level of the mtDNA-replicating enzyme (mt gamma-polymerase) is increased in the transformed cells. Notably, however, in both cell types the mitochondrial dTTP pools relative to the mtDNA complement are significantly larger than whole-cell pools relative to the nuclear DNA complement, confirming recent reports in HeLa cells. The solubilized mt gamma-polymerases from normal and transformed CEF, respectively, are both precipitated by 50% ammonium sulfate, inhibited by N-ethylmaleimide, have similar sedimentation coefficients, and exhibit optimal activity when poly(rA) . d(pT)10 is used as the template-primer. On the other hand, the transformed cell enzyme demonstrates an altered response to thiol compounds, a decreased tendency to aggregate during sedimentation, and is significantly less tightly attached to the mitochondria than the normal cell enzyme. We conclude that, as a result of transformation, an increased fraction of mtDNA molecules replicate at a given time, and that this increased replication rate in vivo is correlated with the expression of several altered endogenous properties, which possibly include a modified intramitochondrial structural attachment of the mt gamma-polymerase in situ. This experimental system may be well suitable for use in the identification of regulatory factors which function during the replication of the mitochondrial genome in vivo.

Animals↗

Replication of kinetoplast DNA in isolated kinetoplasts from Crithidia fasciculata. Identification of minicircle DNA replication intermediates.

The kinetoplast DNA (kDNA) of trypanosomes is comprised of thousands of DNA minicircles and 20-50 maxicircles catenated into a single network. We show that kinetoplasts isolated from the trypanosomatid species Crithidia fasciculata incorporate labeled nucleotides and support minicircle DNA replication in a manner which mimics two characteristics of minicircle replication in vivo: 1) the minicircles are replicated as free molecules and subsequently reattached to the kDNA network, and 2) a replication intermediate having a structure consistent with a highly gapped minicircle species is generated. In addition, a class of minicircle DNA replication intermediates is observed containing discontinuities at specific sites within each of the newly synthesized DNA strands. By using a strain of C. fasciculata possessing nearly homogenous minicircles, we were able to map the discontinuities to two small regions situated 180 degrees apart on the minicircle. Each region has two sites at which a discontinuity can occur, one on each strand and separated by approximately 100 base pairs. These sites may represent origins of minicircle DNA replication.

Animals↗

Evading the proofreading machinery of a replicative DNA polymerase: induction of a mutation by an environmental carcinogen.

DNA replication fidelity is dictated by DNA polymerase enzymes and associated proteins. When the template DNA is damaged by a carcinogen, the fidelity of DNA replication is sometimes compromized, allowing mispaired bases to persist and be incorporated into the DNA, resulting in a mutation. A key question in chemical carcinogenesis by metabolically activated polycyclic aromatic hydrocarbons (PAHs) is the nature of the interactions between the carcinogen-damaged DNA and the replicating polymerase protein that permits the mutagenic misincorporation to occur. PAHs are environmental carcinogens that, upon metabolic activation, can react with DNA to form bulky covalently linked combination molecules known as carcinogen-DNA adducts. Benzo[a]pyrene (BP) is a common PAH found in a wide range of material ingested by humans, including cigarette smoke, car exhaust, broiled meats and fish, and as a contaminant in other foods. BP is metabolically activated into several highly reactive intermediates, including the highly tumorigenic (+)-anti-benzo[a]pyrene diol epoxide (BPDE). The primary product of the reaction of (+)-anti-BPDE with DNA, the (+)-trans-anti-benzo[a]pyrene diol epoxide-N(2)-dG ((+)-ta-[BP]G) adduct, is the most mutagenic BP adduct in mammalian systems and primarily causes G-to-T transversion mutations, resulting from the mismatch of adenine with BP-damaged guanine during replication. In order to elucidate the structural characteristics and interactions between the DNA polymerase and carcinogen-damaged DNA that allow a misincorporation opposite a DNA lesion, we have modeled a (+)-ta-[BP]G adduct at a primer-template junction within the replicative phage T7 DNA polymerase containing an incoming dATP, the nucleotide most commonly mismatched with the (+)-ta-[BP]G adduct during replication. A one nanosecond molecular dynamics simulation, using AMBER 5.0, has been carried out, and the resultant trajectory analyzed. The modeling and simulation have revealed that a (+)-ta-[BP]G:A mismatch can be accommodated stably in the active site so that the fidelity mechanisms of the polymerase are evaded and the polymerase accepts the incoming mutagenic base. In this structure, the modified guanine base is in the syn conformation, with the BP moiety positioned in the major groove, without interfering with the normal protein-DNA interactions required for faithful polymerase function. This structure is stabilized by a hydrogen bond between the modified guanine base and dATP partner, hydrophobic interactions between the BP moiety and the polymerase, a hydrogen bond between the modified guanine base and the polymerase, and several hydrogen bonds between the BP moiety and polymerase side-chains. Moreover, the G:A mismatch in this system closely resembles the size and shape of a normal Watson-Crick pair. These features reveal how the polymerase proofreading machinery may be evaded in the presence of a mutagenic carcinogen-damaged DNA, so that a mismatch can be accommodated readily, allowing bypass of the adduct by the replicative T7 DNA polymerase.

7,8-Dihydro-7,8-dihydroxybenzo(a)pyrene 9,10-oxide↗

Pharmacodynamics of formaldehyde: applications of a model for the arrest of DNA replication by DNA-protein cross-links.

A variety of evidence suggests that formaldehyde (HCHO)-induced DNA-protein cross-links (DPX) are genotoxic as a result of their ability to arrest DNA replication. Although DPX can be removed and the DNA can be repaired, failure to remove the blockage prior to cell division or excision followed by incomplete repair could cause cell death or a mutation. To characterize the concentration and time dependence of this mechanism, a biologically based model for DNA replication in the presence of DPX was developed based on the assumptions that (1) DPX are formed randomly in the DNA and (2) a replication fork can advance up to but not past a DPX. Using a combination of Poisson and binomial statistics, a quantitative relationship between the amount of newly synthesized DNA and the concentration of DPX was derived, which predicts that the rate of DNA replication should decrease nonlinearly with increasing concentrations of DPX. Because the latter is a nonlinear function of the airborne concentration of HCHO, an inverse sigmoidal relationship is predicted between the rate of DNA replication and the concentration of inhaled formaldehyde. The model was parameterized using data derived from a study of the incorporation of [methyl-(14)C]thymidine monophosphate into the DNA of the nasal respiratory mucosa of Fischer-344 rats exposed to (3)HCHO and H(14)CHO (6 ppm, 6 h). The model was then applied to measurements of DNA replication in the nasal mucosa of experimental animals exposed to wide ranges of H(14)CHO (rats: 0.7, 2, 6, or 15 ppm, 3 h; rhesus monkeys: 0.7, 2, or 6 ppm, 6 h). The results indicate that, at airborne concentrations above 6 ppm in rats, there is a marked decrease (ca. 62% at 15 ppm) in the amount of newly synthesized DNA due to DPX formation during a single 6-h exposure to HCHO. The arrest of DNA replication at high HCHO concentrations could result in cytolethality or genotoxicity, both of which are critical factors in the induction of rat nasal cancer by HCHO. However, at concentrations below 2 ppm in monkeys or 1 ppm in rats, the decrease in the rate of DNA replication is predicted to be <1% after a 6-h exposure. This small decrease is probably undetectable using currently available techniques. The parameterized model suggests that the arrest of DNA replication by DPX is mainly a high-dose phenomenon and that at ambient exposure concentrations it is unlikely to be a major risk factor.

Animals↗

Is the nuclear matrix the site of DNA replication in eukaryotic cells?

Four types of experiment were carried out to test the recently proposed model of matrix-bound replication in eukaryotic cells. In experiments with pulse-labelling we found preferential association of newly replicated DNA with the matrix only when the procedure for isolation includes first high-salt treatment of isolated nuclei and then digestion with nucleases, or when prior to digestion the nuclei have been stored for a prolonged time. In both cases, however, evidence was found that this preferential association is due to a secondary, artifactual binding of the newly replicated chromatin region to the matrix elements. Pulse-chase experiments and experiments with continuous labelling were carried out to answer the question whether during replication the DNA is reeled through the replication complexes, i.e., whether newly replicated DNA is temporarily or permanently associated with the matrix. The results showed that at that time the matrix DNA does not move from its site of attachment. Since, according to the model of matrix-bound replication, the forks are assumed to be firmly anchored to high-salt resistant proteinaceous matrix structures, the chromatin fragments isolated with endonuclease not recognizing newly replicated DNA and purified by sucrose gradient centrifugation should be free of replication intermediates. The electronmicroscopic analysis of such fragments revealed the existence of intact replication micro-bubbles. Moreover, the fragments with replication configurations appeared as smooth chromatin fibres not attached to elements characteristic for the matrix. All these experiments suggest that the nuclear skeleton is not a native site of DNA replication in eukaryotic cells.

Animals↗