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R M Benbow

Publications and source records attributed to R M Benbow.

11 recordsLinked to original sources

On the nature of origins of DNA replication in eukaryotes.

Chromosomal origins of DNA replication in higher eukaryotes differ significantly from those of E. coli (oriC) and the tumor virus, SV40 (ori sequence). Initiation events appear to occur throughout broad zones rather than at specific origin sequences. Analysis of four chromosomal origin regions reveals that they share common modular sequence elements. These include DNA unwinding elements, pyrimidine tracts that may serve as strong DNA polymerase-primase start sites, scaffold associated regions, transcriptional regulatory sequences, and, possibly, initiator protein binding sites and inherently destabilized regions. Based on the novel organization of chromosomal origin regions, we propose a model for initiation of DNA replication in higher eukaryotes. Unwinding of duplex DNA during initiation may be uncoupled, both temporally and spatially, from DNA synthesis, resulting in transient single-stranded intermediates that function in lieu of conventional replication forks during chromosomal DNA replication. DNA synthesis begins subsequently at multiple sites within the unwound regions rather than at specific origin sequences.

Animals

Chromosome structures.

Chromosomes are large subcellular structures, visible in the light microscope, that are found in the nuclei of most eukaryotic cells. Each chromosome consists of a single very long DNA molecule that has been compacted approximately 10,000-fold by interactions with proteins, such that the resulting chromosome structure fits within a typical eukaryotic nucleus of only 10 microns in diameter. Several levels of structural organisation are involved in the formation of chromosomes. Most chromosomal DNA is wrapped in left-handed superhelical turns around protein 'spools', called histone octamers, to form nucleosomes. Arrays of these nucleosomes, or 'beads on a string', are further compacted into solenoidal structures, called 30 nm chromatin fibres. The chromatin fibres are, in turn, compacted approximately 250-fold to form topologically independent 'looped' DNA domains, each loop containing about 20,000-100,000 nucleotide pairs of DNA extending from a proteinaceous central scaffold. Some chromosomes, such as lampbrush and polytene chromosomes, can be seen in certain specialised cells during interphase. Metaphase chromosomes, which can be stained to reveal characteristic banding patterns, are formed in most eukaryotic cells during mitosis. Formation of chromosome structures and the nuclei that envelop them involves discrete steps of nucleosome assembly, scaffold assembly, and nuclear envelope assembly, and can be carried out in cell-free extracts of animal eggs. Centromeres, the regions that mediate attachment of a chromosome to a meiotic or mitotic spindle, and telomeres, the natural ends of chromosomes, are structures that ensure that the correct number of full length chromosomes are maintained during the cell cycle. Most chromosome structures (nucleosomes, chromatin fibres, and scaffold loop domains) form from virtually any DNA sequence, but centromeres and telomeres are both composed of specific DNA sequences complexed with specific binding proteins. Recently, complete DNA sequences of entire chromosomes have been determined, and our rapidly emerging knowledge of chromosome structures is beginning to provide insights into the molecular basis of human disease.

Cell Cycle

Differential compartmentalization of plasmid DNA microinjected into Xenopus laevis embryos relates to replication efficiency.

Circular plasmid DNA molecules and linear concatemers formed from the same plasmid exhibit strikingly different fates following microinjection into Xenopus laevis embryos. In this report, we prove quantitatively that only a minority of small, circular DNA molecules were replicated (mean = 14%) from fertilization through the blastula stage of development. At all concentrations tested, very few molecules (approximately 1%) underwent more than one round of DNA synthesis within these multiple cell cycles. In addition, unlike endogenous chromatin, the majority of circular templates became resistant to cleavage by micrococcal nuclease. The extent of nuclease resistance was similar for both replicated and unreplicated templates. Sequestration of circular molecules within a membranous compartment (pseudonucleus), rather than the formation of nucleosomes with abnormal size or spacing, apparently conferred the nuclease resistance. In contrast, most linearly concatenated DNA molecules (derived from end-to-end joining of microinjected monomeric plasmid DNA) underwent at least two rounds of DNA replication during this same period. Linear concatemers also exhibited micrococcal nuclease digestion patterns similar to those seen for endogenous chromatin yet, as judged by their failure to persist in later stages of embryogenesis, were likely to be replicated and maintained extrachromosomally. We propose, therefore, that template size and conformation determine the efficiency of replication of microinjected plasmid DNA by directing DNA to a particular compartment within the cell following injection. Template-dependent compartmentalization may result from differential localization within endogenous nuclei versus extranuclear compartments or from supramolecular assembly processes that depend on template configuration (e.g., association with nuclear matrix or nuclear envelope).

Animals

DNA synthesis in a multi-enzyme system from Xenopus laevis eggs.

Cytoplasm from unfertilized eggs of the frog Xenopus laevis was separated by DEAE-cellulose column chromatography into nine fractions. Supercoiled pXir 11 DNA molecules (pXir 11 is a Col El-based recombinant plasmid containing part of the Xenopus laevis 18S and 28S ribosomal genes and transcribed spacer region) were incubated with each fraction singly and in various combinations. After incubation for 4 hr at 26 degrees C, the pXir 11 DNA was reisolated and examined by electron microscopy. Using appropriate reaction conditions (pH 7.2, 10 mM Mg2+, 250 micron NTP, 50 50 micron dNTP, 50 MM KCl, fractions III and IV or VI), at least 5-10% of the input DNA was converted to theta structures (presumed intermediates in DNA replication).

Animals

Recombinant DNA formation in a cell-free system from Xenopus laevis eggs.

A cell-free system is described which formed very high levels of recombinant DNA structures in 4 hr at 26 degrees C. It consisted of a single fraction of a high speed supernatant prepared from an extract of unfertilized eggs of the frog Xenopus laevis. This fraction eluted at 0.16-0.18 M Tris homogenization buffer from a DEAE-cellulose column. When two partially homologous supercoiled DNA molecules of different contour lengths were incubated simultaneously in this system, high levels of heterologous figure eight DNA structures were formed and observed by electron microscopy. Subsequently cleavage of the newly formed figure eight structures with Bam HI and Eco RI restriction endonucleases gave rise to "alpha structures" and "chi structures." The observed figure eight structures presumably represent the recombination intermediate predicted by the Holliday model for genetic recombination.

Adenosine Triphosphate

Recombinant DNA molecules of bacteriophage phi chi174.

Phi chi174 DNA structures containing two different parental genomes were detected genetically and examined by electron microscopy. These structures consisted of two monomeric double-stranded DNA molecules linked in a figure 8 configuration. Such DNA structures were observed to be formed preferentially in host recA+ cells or recA+ cell-free systems. Since the host recA+ allele is required for most phi chi174 recombinant formation, we conclude that the observed figure 8 molecules are intermediates in, or end products of, 1 phi chi174 recombination event. We propose that recombinant figure 8 DNA molecules arise as a result of "single-strand aggression," are stabilized by double-strand "branch migration," and represent a specific example of a common intermediate in genetic recombination.

Cell-Free System

Cytoplasmic control of nuclear DNA synthesis during early development of Xenopus laevis: a cell-free assay.

Nuclei isolated from nondividing cells were induced to synthesize DNA by incubation with cytoplasm from early embryos of Xenopus laevis. Numerous replication eyes were formed in the nuclear DNA molecules, and high levels of [3-H]dTTP were incorporated. With this assay a protein(s) which appears to initiate DNA synthesis was found at high levels in the cytoplasm of eggs, blastulae, or gastrulae, but only at low levels in the cytoplasm of oocytes, hatched embryos, or adult tissues.

Animals