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Coordinating development with the cell cycle in Caulobacter.

During the Caulobacter life cycle, the timing of DNA replication, cell division and development is precisely coordinated. Recent work has begun to unravel the complex regulatory networks that couple these processes. A key aspect of these regulatory networks is the dynamic localization of multiple histidine protein kinases that control a master response regulator, thus driving downstream pathways.

Bacterial Proteins↗

Cellular and viral DNA hypomethylation associated with induction of Epstein-Barr virus lytic cycle.

Epstein-Barr virus (EBV) producer and nonproducer cell lines have been treated with a combination of phorbol 12-myristate 13-acetate and n-butyrate (sodium salt). These inducers caused a massive hypomethylation of the EBV producer line P3HR-1 DNA (about 30%) at the time when DNA replication was inhibited. The viral DNA in these cells is heavily methylated as judged by digestion with Hpa II and probing with the Bam HI H fragment of EBV. However, upon induction with phorbol 12-myristate 13-acetate and n-butyrate, total hypomethylation of this viral DNA region was observed within 24 hr. This hypomethylation preceded EBV amplification, which became apparent only 32-36 hr after induction. When induction was carried out in the presence of retinoic acid, hypomethylation of cellular and viral DNA, viral DNA amplification, and production of the viral early antigen and viral capsid antigen were substantially inhibited. EBV DNA in another producer line (Jijoye nude) and in the nonproducer line Raji was hypomethylated and did not undergo further hypomethylation in response to induction. The observed hypomethylation of P3HR-1 and EBV DNA in the absence of DNA replication suggests that it is achieved by an active demethylation mechanism. This changes our perception of the DNA methylation phenomenon, since it has been generally accepted that hypomethylation of DNA takes place by a passive mechanism that involves DNA replication in the absence of methylation.

Butyrates↗

Evolution of base composition in the insulin and insulin-like growth factor genes.

The genomes of homeothermic (warm-blooded) vertebrates are mosaic interspersions of homogeneously GC-rich and GC-poor regions (isochores). Evolution of genome compartmentalization and GC-rich isochores is hypothesized to reflect either selective advantages of an elevated GC content or chromosome location and mutational pressure associated with the timing of DNA replication in germ cells. To address the present controversy regarding the origins and maintenance of isochores in homeothermic vertebrates, newly obtained as well as published nucleotide sequences of the insulin and insulin-like growth factor (IGF) genes, members of a well-characterized gene family believed to have evolved by repeated duplication and divergence, were utilized to examine the evolution of base composition in nonconstrained (flanking) and weakly constrained (introns and fourfold degenerate sites) regions. A phylogeny derived from amino acid sequences supports a common evolutionary history for the insulin/IGF family genes. In cold-blooded vertebrates, insulin and the IGFs were similar in base composition. In contrast, insulin and IGF-II demonstrate dramatic increases in GC richness in mammals, but no such trend occurred in IGF-I. Base composition of the coding portions of the insulin and IGF genes across vertebrates correlated (r = 0.90) with that of the introns and flanking regions. The GC content of homologous introns differed dramatically between insulin/IGF-II and IGF-I genes in mammals but was similar to the GC level of noncoding regions in neighboring genes. Our findings suggest that the base composition of introns and flanking regions is determined by chromosomal location and the mutational pressure of the isochore in which the sequences are embedded. An elevated GC content at codon third positions in the insulin and the IGF genes may reflect selective constraints on the usage of synonymous codons.

Animals↗

Partial triplication and deletion of 13q: study of a family presenting with bilateral retinoblastomas.

This report compares the pathogenetic influences of selective deletion and triplicaton of chromosome 13 derived from a familial 12;13 insertional translocation. In the proband a heritable chromosomal basis for his bilateral retinoblastomas is established [46,XY,del (13) (pter leads to q12.5: :q22.1 leads to qter)mat], and in his sister the relatively modest effects of triplication of the mid-portions of 13q are demonstrated [46,XX,ins(12;13) (12pter leads to 12p11.2: :13q22.1 leads to 13q12.5: :12p11.2 leads to 12qter)mat]. Qualitative and quantitative gene marker studies and chromosomal staining techniques to differentiate timing of DNA replication failed to indicate functional gene changes about the breakpoints.

Child, Preschool↗

Altered patterns of ribonucleic acid synthesis during the cell cycle: a mechanism compensating for variation in gene concentration.

In the fission yeast Schizosaccharomyces pombe, a series of diploid mutants divides at smaller cell sizes than wild type. In these smaller strains, the mean gene concentration (defined by previous authors as the DNA to protein ratio) is higher than in wild type. Such an increase in gene concentration should also increase the concentration of those components such as messenger and ribosomal RNA, whose rate of synthesis is determined by gene dosage. We show that the mean concentrations of these 2 RNA species in the small cells are not increased, but are the same as in wild type. The small mutant cells are thus able to compensate for changes in gene concentration. This compensation is shown to operate through differences in the patterns of synthesis of RNA during the cell cycle. In all the strains of the diploid series, the rates of synthesis of messenger and ribosomal RNA double as steps once in each cell cycle. The timings of the steps in the cell cycle appear to be cell-size related, since the smaller the cell at division, the later are the steps in the cell cycle. In contrast, there is comparatively little variation in the timing of DNA replication in the cycles of cells of different sizes. We propose that after DNA replication, there is a delay before doubling in the rate of transcription. Such a cell mass-related delay is all that is required to compensate for increased gene concentration, and results in the same mean functional DNA concentration in all strains. This mechanism will maintain the same mean messenger and ribosomal RNA concentrations in cells dividing at different sizes. Ways in which the cell size-related control over transcription may operate are discussed.

Adenine↗

Regulation of deoxyribonucleic acid replication and cell division in Escherichia coli B-r.

Synchronous cultures of Escherichia coli strain B/r were used to investigate the relationship between deoxyribonucleic acid (DNA) replication and cell division. We have determined that terminal steps in division can proceed in the absence of DNA synthesis. Inhibition of DNA replication with nalidixic acid prior to the start of a new round of replication does not stop cell division, which indicates that the start of the round is not essential in triggering cell division. Inhibition of DNA replication at any time prior to the termination of a round of replication completely blocks cell division, which suggests that there may be a link between the end of the replication cycle and the commitment of the cell to divide. Studies that use a temperature-sensitive mutant which is unable to synthesize DNA at the nonpermissive temperature are in complete agreement with those that use nalidixic acid to inhibit DNA synthesis. This adds support to the idea that the treatments employed limit their action to DNA synthesis. Investigation of minicell production indicates that the production of minicells is blocked when DNA synthesis is inhibited with nalidixic acid. Although nuclear segregation is not required for cell division, DNA synthesis is still required to trigger division. The evidence presented suggests strongly that (i) DNA synthesis is essential for cell division, (ii) the end of a round of replication triggers cell division, and (iii) there is considerable time lapse (one-half generation) between the completion of a round of DNA replication and physical separation of the cells.

Carbon Isotopes↗

Participation of the human beta-globin locus control region in initiation of DNA replication.

The human beta-globin locus control region (LCR) controls the transcription, chromatin structure, and replication timing of the entire locus. DNA replication was found to initiate in a transcription-independent manner within a region located 50 kilobases downstream of the LCR in human, mouse, and chicken cells containing the entire human beta-globin locus. However, DNA replication did not initiate within a deletion mutant locus lacking the sequences that encompass the LCR. This mutant locus replicated in the 3' to 5' direction. Thus, interactions between distantly separated sequences can be required for replication initiation, and factors mediating this interaction appear to be conserved in evolution.

Animals↗

Dependence of timing of mitotic events on the rate of protein synthesis and DNA replication in sea urchin early cleavages.

To understand what processes affect the cell-cycle timing of mitotic events in early cleavage cycles of sea urchin embryos, a study was made on the effects of (a) reducing protein synthesis with emetine and (b) DNA replication with aphidicolin, on the timing of nuclear envelope breakdown, anaphase onset and cytokinesis. When protein synthesis was slightly inhibited by administration of emetine, the delay in the mitotic events increased, with an increase in the delay in accumulation of proteins up to the levels to which cells must synthesize the proteins to execute the cleavage. This indicated that protein synthesis affects the timing of mitotic events. The delay in cleavage cycles caused by a slight inhibition of DNA replication with aphidicolin was in proportion to the concentration of aphidicolin administered, suggesting that DNA replication also affects the timing of mitotic events. Furthermore, it was confirmed that accumulation of the proteins to the levels required for execution of the first cleavage precedes completion of DNA replication as a requirement for execution of the first cleavage. These results imply the existence of process(es) affected by protein synthesis that are included in a feedback control system which prevents the initiation of mitosis until after the completion of DNA replication; it is the characteristic of a cell-cycle control system that has been predicted theoretically.

Anaphase↗

Synthesis of virus-specific ribonucleic acid in KB cells infected with type 2 adenovirus.

By using the technique of deoxyribonucleic acid (DNA)-ribonucleic acid (RNA) hybridization, virus-specific RNA (cRNA) was detected 6 hr after infection in preparations of total RNA from cells infected with type 2 adenovirus in the presence of 2 mum 5-fluorodeoxyuridine. In the absence of 5-fluorodeoxyuridine, there was a continuous increase in the incorporation of (3)H-uridine into viral cRNA until 20 hr after infection, at which time approximately 40% of the (3)H-uridine entering RNA was found in virus-specific RNA. When RNA was prepared from polyribosome fractions obtained from cytoplasmic extracts of infected cells, virus-directed transcription was detected at 3 hr after infection (i.e., 3 to 4 hr before the initiation of viral DNA synthesis). Viral cRNA species synthesized at different times after infection were compared by the technique of DNA-RNA hybridization-inhibition ("presaturation" hybridization-competition). Three hybridization-inhibition techniques were compared. The techniques differed in the manner in which the DNA-RNA complex was isolated after the first hybridization reaction. Depending on the procedure employed, various degrees of inhibition were measured. The variation could be essentially eliminated if prior to hybridization the inhibitory RNA species were alkali-degraded to a uniform size of about 4S. Undegraded RNA could be used if the DNA-RNA complex was isolated by using a procedure involving rigorous washing (preferably including ribonuclease treatment) before the second hybridization with labeled RNA. When a rigorous hybridization-inhibition procedure was used, three classes of virus-specific RNA species could be distinguished: (i) early RNA class I whose synthesis began prior to viral DNA replication and stopped at some time after the initiation of viral DNA replication-it comprised about 70% of the early RNA species and was apparently degraded by 18 hr after infection; (ii) early RNA class II whose synthesis began prior to viral DNA replication and apparently continued at an enhanced rate late in infection; and (iii) late RNA whose synthesis began after the initiation of viral DNA synthesis.

Adenoviridae↗

Sequence of DNA replication in 277 R- and Q-bands of human chromosomes using a BrdU treatment.

Replication times for all important chromosome bands, of both types R and Q (277 structures) are analysed. The R-bands form a group of structures whose DNA replicates during the early S-phase, while the DNA situated in the Q-bands replicates during the late S-phase. There may not exist overlapping between replication times of these two types of structures. The widest R-bands are those which are the earliest to replicate; in general, the most intense Q-bands are those which are the latest to replicate. Especially among these last ones, a certain asynchronism exists between the replication times. Finally the heterochromatin of chromosomes 1, 16 and Y and of the short arms of the acrocentrics could contain two types of DNA which replicate at different times.

Bromodeoxyuridine↗

The effect of 2,2'-dichlorodiethyl sulfide on DNA synthesis of a murine stratified keratinocyte culture system.

A primary stratified keratinocyte culture resembling the epidermis in situ was used as a model for studying the effects of exposure to 2,2'-dichlorodiethyl sulfide, or sulfur mustard (SM), on DNA synthesis. A method that distinguishes between semi-conservative (s.c.) DNA synthesis and repair synthesis was used to determine if the former was inhibited following treatment with SM. In this method the density of the newly synthesized DNA was increased by incorporation of 5-bromo-2-deoxyuridine. Density gradient centrifugation was then used to isolate the heavy DNA for quantification. It was demonstrated that topically applied SM in the dose range of 1-10 nmole/cm2 inhibited s.c. DNA synthesis (replication) in a dose and time related manner. Inhibition of DNA replication by SM would result in inhibition of cell division which must be preceded by s.c. DNA synthesis. This failure to replace damaged germinative cells may lead to the destruction of the basal layer which is observed in vivo and in our epidermal culture following exposure to SM. This may also be related to development of vesication observed in exposed intact human skin.

Animals↗

Specific initiation site for simian virus 40 deoxyribonucleic acid replication.

Replicating simian virus 40 (SV40) deoxyribonucleic acid (DNA) molecules have been isolated under conditions in which the newly synthesized DNA is uniformly labeled with (3)H-thymidine. These newly synthesized strands are released from the replicative intermediate molecules by alkaline treatment, and it has been possible to isolate single-stranded SV40 DNA which varies in size from 157,000 daltons (from molecules that are 10% replicated) to 1,360,000 daltons (85% replicated). The rates of duplex formation of newly synthesized DNA have been used to relate their genetic complexity to the extent of DNA replication. As DNA replication proceeds, the time required to effect 50% renaturation of the newly synthesized DNA increases at a proportional rate. The data establish that DNA replication is not initiated at random, but rather that there is a single specific initiation site for DNA replication.

Animals↗

Cell cycle parameters of Proteus mirabilis: interdependence of the biosynthetic cell cycle and the interdivision cycle.

We investigated the time periods of DNA replication, lateral cell wall extension, and septum formation within the cell cycle of Proteus mirabilis. Cells were cultivated under three different conditions, yielding interdivision times of approximately 55, 57, and 160 min, respectively. Synchrony was achieved by sucrose density gradient centrifugation. The time periods were estimated by division inhibition studies with cephalexin, mecillinam, and nalidixic acid. In addition, DNA replication was measured by thymidine incorporation, and murein biosynthesis was measured by incorporation of N-acetylglucosamine into sodium dodecyl sulfate-insoluble murein sacculi. At interdivision times of 55 to 57 min murein biosynthesis for reproduction of a unit cell lasted longer than the interdivision time itself, whereas DNA replication finished within 40 min. Surprisingly, inhibition of DNA replication by nalidixic acid did not inhibit the subsequent cell division but rather the one after that. Because P. mirabilis fails to express several reactions of the recA-dependent SOS functions known from Escherichia coli, the drug allowed us to determine which DNA replication period actually governed which cell division. Taken together, the results indicate that at an interdivision time of 55 to 57 min, the biosynthetic cell cycle of P. mirabilis lasts approximately 120 min. To achieve the observed interdivision time, it is necessary that two subsequent biosynthetic cell cycles be tightly interlocked. The implications of these findings for the regulation of the cell cycle are discussed.

Cell Cycle↗

Replication patterns of repetitive DNA sequences on the W chromosome are altered during development of the chick embryo.

A novel method was developed to study developmental changes in the replication pattern of repetitive DNA sequences on the W chromosome (W-DNA) of the female chick embryo. The amount of total nuclear DNA and W-DNA as well as 5-bromodeoxyuridine (BrdU) incorporation was successively measured on the same cells using multiparametric microfluorometry. With this method we first examined the possibility of changes in replication patterns of W-DNA during development. Measurements were conducted on various heterogeneous cell populations obtained from whole embryo on Day 0.4 and Day 1, and from pectoral muscle, neural tube, liver, and oogonium on Day 9. Parameters of W-DNA replication, duration, and timing were found to vary according to the stage of embryonic development. Developmental features of these changes were further studied on specific cell types during their critical developmental processes. In scutate scale dermis, the W-DNA replication duration showed a characteristic lengthening from around 0.45C during Day 5 through Day 7.4 to 0.9C during Day 7.7 through Day 7.9 and shortening to 0.37C during Day 8.1 through Day 12. Transient lengthening in W-DNA replication duration was also observed in erythrocytes; 0.65C ->1.0C ->0.6C during Day 0.9 through Day 2.17. Timing also shifted earlier in accord with changes in the duration. Replication rate of whole genome DNA was monitored by measuring BrdU incorporation on respective cells and found, to a large extent, comparable to that of W-DNA. The data suggest that a link might be operative between replication patterns of genes and the developmental program.

Animals↗

Intranuclear accumulation of subgenomic noninfectious human cytomegalovirus DNA in infected cells in the presence of ganciclovir.

In preparation for an attempt to elucidate some aspects of the interaction between ganciclovir and human cytomegalovirus (HCMV) DNA replication in cells infected with HCMV, we developed a dot blot DNA-DNA hybridization technique to quantify intracellular HCMV DNA replication. We studied the effect of ganciclovir on the time course of HCMV DNA replication in human fibroblasts. Ganciclovir resulted in complete cessation of the production of infectious virus, as detected by the plaque assay. However, viral DNA synthesis, as measured by dot blot DNA-DNA hybridization with cloned HCMV DNA BamHI C fragment probe, continued in the presence of ganciclovir at 10 times the 50% effective dose (i.e., 10 micrograms/ml). The continuation of viral DNA synthesis in ganciclovir-treated cultures leads to the intranuclear accumulation of short (subgenomic) HCMV DNA fragments. These DNA fragments are neither packaged nor released into the culture medium. Furthermore, the short DNA fragments were detected only by the BamHI C probe from the center of the unique long segment of the HCMV genome. The failure of the DNA probes from the termini of HCMV genome (BamHI-Q and HindIII-M) to detect the short DNA fragments and the intranuclear localization of these fragments suggest that these short fragments may lack the signal sequences necessary for packaging and release as infectious virions. These data strongly suggest that the anti-HCMV activity of ganciclovir is due mainly to the prevention of viral DNA chain elongation which results in the intranuclear accumulation of incomplete noninfectious viral DNA fragments.

Cells, Cultured↗