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At least 127 records · Page 7Linked to original sources

Construction of double-helical DNA structures based on dinucleotide building blocks.

We present a new method for building full 3-D structures of DNA sequences. A database of the conformational properties of dinucleotide steps has been compiled using X-ray crystal structures of oligonucleotides. The protocol uses these dinucleotides as building blocks to generate three dimensional structures of any required sequence in any required conformation.

Crystallography, X-Ray↗

Non-B-DNA structures on the interferon-beta promoter?

The high mobility group (HMG) I protein intervenes as an essential factor during the virus induced expression of the interferon-beta (IFN-beta) gene. It is a non-histone chromatine associated protein that has the dual capacity of binding to a non-B-DNA structure such as cruciform-DNA as well as to AT rich B-DNA sequences. In this work we compare the binding affinity of HMGI for a synthetic cruciform-DNA to its binding affinity for the HMGI-binding-site present in the positive regulatory domain II (PRDII) of the IFN-beta promoter. Using gel retardation experiments, we show that HMGI protein binds with at least ten times more affinity to the synthetic cruciform-DNA structure than to the PRDII B-DNA sequence. DNA hairpin sequences are present in both the human and the murine PRDII-DNAs. We discuss in this work the presence of, yet putative, non-B-DNA structures in the IFN-beta promoter.

Base Sequence↗

Nucleosome core particles containing a poly(dA.dT) sequence element exhibit a locally distorted DNA structure.

Poly(dA.dT) DNA sequence elements are thought to promote transcription by either excluding nucleosomes or by altering their structural or dynamic properties. Here, the stability and structure of a defined nucleosome core particle containing a 16 base-pair poly(dA.dT) element (A16 NCP) was investigated. The A16 NCP requires a significantly higher temperature for histone octamer sliding in vitro compared to comparable nucleosomes that do not contain a poly(dA.dT) element. Fluorescence resonance energy transfer showed that the interactions between the nucleosomal DNA ends and the histone octamer were destabilized in A16 NCP. The crystal structure of A16 NCP was determined to a resolution of 3.2 A. The overall structure was maintained except for local deviations in DNA conformation. These results are consistent with previous in vivo and in vitro observations that poly(dA.dT) elements cause only modest changes in DNA accessibility and modest increases in steady-state transcription levels.

Crystallography, X-Ray↗

Mitochondrial DNA structure and expression in specialized subtypes of mammalian striated muscle.

Mitochondrial DNA (mt DNA) in cells of vertebrate organisms can assume an unusual triplex DNA structure known as the displacement loop (D loop). This triplex DNA structure forms when a partially replicated heavy strand of mtDNA (7S mtDNA) remains annealed to the light strand, displacing the native heavy strand in this region. The D-loop region contains the promoters for both heavy- and light-strand transcription as well as the origin of heavy-strand replication. However, the distribution of triplex and duplex forms of mtDNA in relation to respiratory activity of mammalian tissues has not been systematically characterized, and the functional significance of the D-loop structure is unknown. In comparisons of specialized muscle subtypes within the same species and of the same muscle subtype in different species, the relative proportion of D-loop versus duplex forms of mtDNA in striated muscle tissues of several mammalian species demonstrated marked variation, ranging from 1% in glycolytic fast skeletal fibers of the rabbit to 65% in the mouse heart. There was a consistent and direct correlation between the ratio of triplex to duplex forms of mtDNA and the capacity of these tissues for oxidative metabolism. The proportion of D-loop forms likewise correlated directly with mtDNA copy number, mtRNA abundance, and the specific activity of the mtDNA (gamma) polymerase. The D-loop form of mtDNA does not appear to be transcribed at greater efficiency than the duplex form, since the ratio of mtDNA copy number to mtRNA was unrelated to the proportion of triplex mtDNA genomes. However, tissues with a preponderance of D-loop forms tended to express greater levels of cytochrome b mRNA relative to mitochondrial rRNA transcripts, suggesting that the triplex structure may be associated with variations in partial versus full-length transcription of the heavy strand.

Animals↗

Photochemical approach to probing different DNA structures.

The various conformations of DNA--the A, B, and Z forms, the protein-induced DNA kink, and the G-quartet form--are thought to play important biological roles in processes such as DNA replication, gene expression and regulation, and the repair of DNA damage. The investigation of local DNA conformational changes associated with biological events is therefore essential for understanding the function of DNA. In this Minireview, we discuss the use of photochemical dehalogenation of 5-halouracil-containing DNA to probe the structure of DNA. Hydrogen abstraction by the resultant uracil-5-yl radicals is atom-specific and highly dependent on the structure of the DNA, suggesting that this photochemical approach could be applied as a probe of DNA conformations in living cells.

Crystallography, X-Ray↗

DNA structural alterations induced by bis-netropsins modulate human DNA topoisomerase I cleavage activity and poisoning by camptothecin.

Bis-netropsins (bis-Nts) are efficient catalytic inhibitors of human DNA topoisomerase I (top I). These DNA minor groove binders are considered to serve as suppressors of top I-linked DNA breaks, which is generally believed to be related to their affinity to DNA. In this study, it was found that bis-Nts exhibit sequence-specificity of suppression of the strong top I-specific DNA cleavage sites and that this sequence-specificity is determined by differential ligand-induced structural alterations of DNA. Raman scattering analysis of bis-Nts interactions with double-stranded oligonucleotides, each containing the site of specific affinity to one of bis-Nts and a distinctly located top I degenerate consensus, demonstrated that bis-Nts induce not only structural changes in duplex DNA at their loading position, but also conformational changes in a distant top I-specific DNA cleavage site. The ability to alter the DNA structure correlates with the anti-top I inhibitory activities of the ligands. In addition, DNA structural alterations induced by bis-Nts were shown to be responsible for modulation of the camptothecin (CPT)-mediated DNA cleavage by top I. This effect is expressed in the bis-Nts-induced enhancement of some of the CPT-dependent DNA cleavage sites as well as in the CPT-induced enhancement of some of the top I-specific DNA cleavage sites suppressed by bis-Nts in the absence of CPT.

Base Sequence↗

DNA structure, hydration and dynamics.

Although the double helical model of DNA structure is now 40 years old, there is still considerable effort being made to elucidate the range of conformations that can be adopted by this flexible molecule. We review the current state of our knowledge of DNA structure which is available from both experimental and computational approaches.

DNA↗

Symmetry elements in DNA structure important for recognition/methylation by DNA [amino]-methyltransferases.

The phage T4Dam and EcoDam DNA-[adenine-N6] methyltransferases (MTases) methylate GATC palindromic sequences, while the BamHI DNA-[cytosine-N4] MTase methylates the GGATCC palindrome (which contains GATC) at the internal cytosine residue. We compared the ability of these enzymes to interact productively with defective duplexes in which individual elements were deleted on one chain. A sharp decrease in kcat was observed for all three enzymes if a particular element of structural symmetry was disrupted. For the BamHI MTase, integrity of the ATCC was critical, while an intact GAT sequence was necessary for the activity of T4Dam, and an intact GA was necessary for EcoDam. Theoretical alignment of the region of best contacts between the protein and DNA showed that in the case of a palindromic interaction site, a zone covering the 5'-symmetric residues is located in the major groove versus a zone of contact covering the 3'-symmetric residues in the minor groove. Our data fit a simple rule of thumb that the most important contacts are aligned around the methylation target base: if the target base is in the 5' half of the palindrome, the interaction between the enzyme and the DNA occurs mainly in the major groove; if it is in the 3' half, the interaction occurs mainly in the minor groove.

Amines↗

[Effects of lymphokines on DNA structure of in vitro cultured human lymphocytes. Connection with cAMP and oligoadenylate synthetase systems].

We investigated the influence of recombinant interferons (INF) alpha 2 and gamma and interleukin (IL) 2 and natural purified IL 1 on the activity of oligoadenylate synthetase proliferation level and the DNA structure of cultured in vitro human peripheral blood lymphocytes. It was shown that the proliferation of mitogen-stimulated lymphocytes increased in the presence of IL 1, IL 2 and INF gamma, but there was no proliferation in the presence of INF alpha 2. Oligoadenylate synthetase activity was increased after 18 hours incubation in the presence of all these lymphokines, but after 48 and 72 hours it was increased only in the presence of INF alpha 2 or ConA or INF alpha 2 with ConA together. INF alpha 2, INF gamma and IL 1 stabilized the DNA structure of intact and mitogen-stimulated lymphocytes. cAMP and oligoA synthetase are the specific second messengers of the interferon system and they stabilized the lymphocytes DNA structure too. Cultivation of lymphocytes in the presence of RNA and protein biosynthesis inhibitors--actinomycin D and cycloheximide was followed by accumulation of alkali-labile sites in their DNA. That means that some short lived proteins are needed for the stabilization of native DNA structure.

2',5'-Oligoadenylate Synthetase↗

Evolution of DNA structure: direction, mechanism, rate.

On the basis of the results of an analysis of frequencies of pyrimidine oligonucleotides, the degree of pyrimidine clustering of DNA in species from different taxa has been determined. A tendency for an increase in the index of clustering of DNA was revealed in the sequence: invertebrates, fishes, amphibians, reptiles, birds, mammals. A mechanism is postulated, according to which the increase in the degree of clustering of DNA d-ring the evolution may be associated with the accumulation of mutations, Purine equalibrium Pyrimidine transversions, resulting in a selective enrichment of one of the chains of DNA with pyrimidines and the other- with purines, i.e. in an increase in the degree of purine-pyrimidine imbalance (asymmetry) of DNA complementary chains. This mechanism of DNA evolution is supported by the presence of positive correlation between the degree of clustering and the degree of the chain asymmetry of natural DNAs, as well as the character of the amino acid substitutions in cytochromes c in different species. The progressive evolution of different groups of organisms on the whole may have been accompanied by an acceleration of the rates of evolution of the DNA structure. On the basis of the amino acid sequence of cytochromes c in different species the degree of clustering and the degree of the chain asymmetry of the corresponding structural genes of DNA was found to have a general tendency towards an increase in the following order: invertebrates, fishes, amphibians, reptiles, birds, mammals. Thus, evolution of cytochrome c cistron is a vector process based on a selection of mutations which, on the one hand, are neurtral to protein, and, on the other hand, result in the sense chain of DNA being enriched with pyrimidines and the nonsense one (and the corresponding mRNA)- with purines. Hence, it is the polynucleotide template rather than protein, that must have been the "object of selection". The frequency of substitutions in cytochromes c cistron for vertebrates is 1.56x13(-9) per nucleotide per year. It is believed that the evolutionary modification of the DNA structure may be associated with an increase in the interference resistance of the translation, i.e. with selection for codons of highest readout stability.

Amino Acid Sequence↗

DNA structure properties and phospholipid composition of Salmonella derby.

The properties of DNA structure and the phospholipid content of Salmonella derby cells were studied with respect to their plasmid content and radiosensitivity. The role of R-plasmid in determining the qualitative and quantitative compositions of S. derby phospholipids was revealed. The radiosensitivity of plasmid-carrying S. derby mutants was shown to be most likely determined by the structure of DNA, its GC content, and the level of methylation. We suggest that the phospholipid molecules and their interaction with DNA play a key role in formation of the radio-resistance of plasmid-free S. derby cells.

DNA Methylation↗

Inhibition of DNA synthesis and alteration to DNA structure by the phenacetin analog p-aminophenol.

p-Aminophenol a structural analog and minor metabolite of phenacetin has previously been shown to be a potent nephrotoxic agent. In this report we have shown that p-aminophenol has a marked effect on DNA function and structure. DNA synthesis was inhibited in a dose-dependent manner in human lymphoblastoid cells after exposure to p-aminophenol. Results suggest that DNA synthesis is inhibited by the action of p-aminophenol on DNA structure. At low concentrations of p-aminophenol a reduction in the degree of supercoiling of cellular DNA is observed, as determined by sedimentation under neutral conditions. However at higher concentrations an increase in sedimentation of nucleoids (supercoiled molecules) is obtained which is indicative of an increased level of supercoiling or a more compact structural form of DNA due to folding or aggregation. The number of single strand breaks in DNA, when determined by sedimentation in alkaline sucrose gradients, increases with increasing dose of p-aminophenol. The increase in strand breakage observed at lower concentrations of p-aminophenol agrees with the reduced sedimentation rate obtained under neutral conditions. At higher concentrations of p-aminophenol the extent of breakage of DNA increases under alkaline conditions but an increase in sedimentation occurs under neutral conditions.

Aminophenols↗

Probing DNA structure with nanoparticles.

Semiconductor nanoparticles, also known as quantum dots, are receiving increasing attention for their biological applications. These nanomaterials are photoluminescent and are being developed both as dyes and as sensors. Here we describe our "sensor" use of quantum dots to detect different intrinsic DNA structures. Structural polymorphism in DNA may serve as a biological signal in vivo, highlighting the need for recognition of DNA structure in addition to DNA sequence in biotechnology assays.

Animals↗

A transient decrease of electrochemical gradient stabilizes DNA structural change in single mitochondria of living cells.

The effect of controlled and reversible perturbation of the electrochemical gradient on the structural changes of mitochondrial DNA has been studied in living cells by fluorescence microscopy. Electrochemical gradient perturbations were induced by the protonophore carbonyl cyanide p-trifluoromethoxyphenylhydrazone and quantified by measuring the mitochondrial membrane potential using tetramethyl rhodamine methyl ester. Under our experimental conditions, we have shown that ethidium fluorescence was mainly due to ethidium molecules intercalated in mtDNA. Ethidium fluorescence variations have been used to probe DNA structural changes. This showed that: i) electrochemical gradient perturbations induced mtDNA structural change; ii) this change was readily reversible following a total but short collapse of the electrochemical gradient; iii) in contrast, a short and weak perturbation of the electrochemical gradient stabilized the mtDNA structural change; and iv) the degree of weak depolarization varied from cell to cell, showing the necessity of studying the effect of energetic perturbations at the level of an individual cell.

Animals↗

Synthetic gene design to investigate the role of cis-acting DNA structural elements in regulation of gene expression in vivo.

To delineate the DNA structural elements responsible for transcriptional control in vivo, we have developed a novel approach taking advantage of the degeneracy of the genetic code. Using synthetic oligonucleotides as structural cassettes we have been able to replace, within a gene, segments of DNA coding for the same amino acid sequence but capable of adopting unusual DNA structures and monitor the effect of such structural elements on gene expression in vivo. We find that the presence of an inverted repeat sequence, with a potential to adopt cruciform structure, within the beta-galactosidase gene down regulates its expression in vivo.

Amino Acid Sequence↗

[New type of DNA structural organization in the composition of bacteriophage Sb-1 particles].

Spectrophotometric melting and chemical modification procedures were used for comparative study of parameters of DNA structure in particles of phages Sb-1 and FI-5 possessing spherical symmetry of the heads. Like in other phages of this morphological group, some part of DNA structure in FI-5 phage particles is disarrayed and has changed reactive capacity of basic aminogroups. Another type of DNA structural organization in situ was found with staphylococcal phage Sb-1. According to the results of melting process and pattern of interaction with 4.5% formaldehyde, DNA in particles of this phage throughout had base stacking. Basic aminogroups of DNA in situ are most likely completely involved in intramolecular complementary interactions and are not subjected to oximethylation under reaction conditions.

Amino Acids↗

High dosage Rhp51 suppression of the MMS sensitivity of DNA structure checkpoint mutants reveals a relationship between Crb2 and Rhp51.

BACKGROUND: In eukaryotic cells DNA structure checkpoints organize the cellular responses of DNA repair and transient cell cycle arrest and thereby ensure genomic stability. To investigate the exact role of crb2+ in the DNA damage checkpoint response, a genetic screen was carried out in order to identify suppressors of the conditional MMS sensitivity of a crb2-1 mutant. Here we report the isolation of rhp51+ as a multicopy suppressor. RESULTS: We show that suppression is not specific for the checkpoint mutant while it is specific for the MMS treatment. Rescue by rhp51+ over-expression is not a consequence of increased recombination repair or checkpoint compensation and epistasis analysis confirms that crb2+ and rhp51+ function in different pathways. A tight linkage between the two pathways is nevertheless suggested by the complementary expression or modification of Crb2 and Rhp51 proteins. Crb2 protein stability is down-regulated when Rhp51 is over-expressed and up-regulated in the absence of Rhp51. The up-regulation of Crb2 is independent of the activation of DNA structure checkpoints. Conversely Rhp51 is more readily activated and differentially modified in the absence of Crb2 or other checkpoint proteins. CONCLUSIONS: We conclude that fission yeast Crb2 and Rhp51 function in two parallel, tightly connected and coordinately regulated pathways.

Cell Cycle↗

Use of the hydroxyl radical and gel electrophoresis to study DNA structure.

The hydroxyl radical has been used as a chemical probe to study in solution the structure of DNA and DNA-protein complexes. The hydroxyl radical abstracts a deoxyribose hydrogen atom, cleaving one strand of the DNA. The cutting pattern, visualized by separating the cleavage products using gel electrophoresis, shows the reactivity of each backbone position toward the radical. This method has been applied to studies of DNA bending and helical twist. Phased runs of adenines (adenine tracts) cause sequence-directed DNA bending. The hydroxyl radical cleavage of a bent DNA fragment containing short adenine tracts phased with the helix screw gives rise to an unusual cutting pattern. The hydroxyl radical cleavage rate decreases in the 5' to 3' direction along each adenine tract, with a minimum at the 3' end of each adenine tract. The cleavage of the matching thymine tract is similar, but the minimum in the pattern is offset in the 3' direction. This pattern on the autoradiograph of the gel is interpreted to indicate that bending is accompanied by a narrow minor groove in the DNA molecule. Furthermore, hydroxyl radical cleavage results in different cutting patterns for two similar sequences, (CGA4T4)5 and (CGT4A4)5, which have been shown to be bent and relatively straight, respectively. The hydroxyl radical method has also been used to determine the helical repeat of the metallothionein IIA gene to be about 10.5 base pairs per turn. Methods of optimizing the hydroxyl radical reaction for DNA-protein footprinting are discussed. Because individual gel bands give information about cutting frequency at particular positions in the backbone, gel resolution and clear autoradiographs are important to this work.(ABSTRACT TRUNCATED AT 250 WORDS)

Autoradiography↗