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At least 253 records · Page 14Linked to original sources

DNA structure influences sequence specific cleavage by bleomycin.

We have examined the cleavage of several synthetic DNA sequences by iron(II)-bleomycin. We find that, although bleomycin cuts mixed sequence DNAs with a preference for GC = GT > GA >> GG, it efficiently cleaves regions of (AT)n cutting exclusively at ApT, not TpA. Isolated ApT steps show very little cleavage while blocks of three or more contiguous ATs are cut as efficiently as GpT. This cleavage is specific for (AT)n, since sequences of the type (TAA)n.(TTA)n and (ATT)n.(AAT)n are hardly cut at all. No cleavage is observed at ApC or CpA within sequences of the type (AC)n.(GT)n; regions of An.Tn are also not cut. Although the cobalt-bleomycin complex (which binds to but does not cleave DNA) yields good DNase I footprints at GT and GC sites, no footprints are observed within (AT)n, suggesting that although the cleavage reaction is efficient, the binding affinity is relatively weak. We propose a model in which bleomycin cleavage is determined by local DNA structure, while strong binding requires the presence of a guanine residue.

Base Composition↗

Distribution of bent DNA structures in the fission yeast centromere.

To gain a clue as to the functional significance of DNA curvature, we experimentally characterized the distribution of bent DNA structures throughout the 35-kb cen1 sequence, one of the isolated functional centromeric DNA of the fission yeast, Schizosaccharomyces pombe. It was revealed that a relatively large central portion of cen1, covering a 2.2-kb DNA sequence, displays a remarkable DNA curvature.

Centromere↗

Osmotic effectors and DNA structure: effect of glycine on precipitation of DNA by multivalent cations.

We have investigated the effect of glycine (an organic osmolyte) on DNA precipitation induced by spermine4+, spermidine3+ and Tb3+ addition, using circular dichroism (CD), UV spectroscopy (UV), and electric linear dichroism (ELD) techniques. DNA precipitation by the three compounds is perturbed by glycine: more spermine4+, spermidine3+ and Tb3+ must be added to obtain the same extent of precipitation as compared to the behaviour in absence of this organic osmolyte. It seems that glycine has a general effect on the DNA environment. Calculations based on experimental results and Manning's counterion condensation theory show that glycine could modify the electrostatic environment of DNA as a consequence of a change in dielectric constant.

Animals↗

Increased nuclear factor 1 binding to its nucleosomal site mediated by sequence-dependent DNA structure.

The organization of DNA into chromatin is important in the regulation of transcription, by influencing the access of transcription factors to their DNA binding sites. Nuclear factor 1 (NF-1) is a transcription factor which binds to DNA constitutively and which interacts with its cognate DNA site with high affinity. However, this affinity is drastically reduced, approximately 100- to 300-fold, when the binding site is organized into a nucleosome. Here we demonstrate that the introduction of stretches of adenines of length 5 nt (A-tracts) on both sides of the NF-1 binding site has a distinct effect on NF-1 binding to a nucleosomal, but not to a free, NF-1 binding site. The position of the A-tracts, relative to the rotational phase of a synthetic DNA bending sequence, the TG-motif, decides whether the NF-1 affinity increases or decreases. The NF-1 binding affinity is seven times stronger when the flanking A-tracts are positioned out-of-phase with the TG-motif than it is when the A-tracts are positioned in-phase with the TG-motif. We demonstrate that this effect correlates with differences in DNA curvature and apparent histone octamer affinity. We conclude that DNA curvature influences the local histone-DNA contacts and hence the accessibility of the NF-1 site in a nucleosome context.

Base Sequence↗

Experimental evaluation of the Liu-Beveridge dinucleotide step model of DNA structure.

Methods for predicting DNA curvature have many possible applications. Dinucleotide step models describe DNA shape by characterization of helical twist, deflection angles and the direction of deflection for nearest neighbor base pairs. Liu and Beveridge have extended previous applications of dinucleotide step models with the development and qualitative validation of a predictive method for sequence-dependent DNA curvature (the LB model). We tested whether the LB model accurately predicts experimentally deduced curvature angles and helical repeat parameters for DNA sequences not in its training set, particularly when challenged with quantitative data and subtle sequence phasings. We examined a series of 17 well-characterized DNA sequences to compare electrophoretic and computational results. The LB model is superior to two other models in the prediction of helical repeat parameters. We observed a strong linear correlation between curvature magnitudes predicted using the LB model and those determined by electrophoretic ligation ladder experiments, although the LB model somewhat underestimated apparent curvature. With longer electrophoretic phasing probes the LB model slightly overestimated gel mobility anomalies, with modest deviations in predicted helical repeat parameters. Overall, our analyses suggest that the LB model provides reasonably accurate predictions for the electrophoretic behavior of DNA.

Base Sequence↗

"Small is beautiful": major modifications in DNA structure or dynamics by small substituents or ligands.

This short review assembles the contributions of the author's laboratory to the structural aspects of DNA. DNA was modified by small ligands and/or substituents. There are three aspects to this work: a) Protonation of guanosine and DNA and the formation of triple- and quadruple-strands of guanosine, its nucleotides, their polymers and DNA. b) Substitution of the 2'-position of deoxyribose by the most polar atom, fluorine: studies on 2'-deoxy-2'-fluro-nucleosides, -nucleotides and their polymers, studied both by structural and biological methods. c) The effect of introducing the methyl group in the large groove of DNA: NMR studies of oligonucleotides containing N6-methylated adenine residues, and enzymatic and molecular biology work on Dam methylase are reported.

Adenine↗

DNA structure in peripheral blood lymphocytes from patients with chronic viral liver damages.

We studied DNA damages (single-strand breaks and alkali-labile sites) in peripheral blood lymphocytes from patients with chronic viral hepatitis and cirrhosis of mixed etiology. The structure of DNA was estimated fluorometrically by changes in the intensity of ethidium bromide fluorescence. Monoinfection with hepatitis B and C viruses was not accompanied by considerable changes in DNA structure in peripheral blood lymphocytes from patients with chronic diseases. The incidence of DNA damages in lymphocytes increased in patients with hepatitis G virus and TTV monoinfection. This is probably related to replication of these viruses in nucleated blood cells. Our results suggest that hepatitis C virus potentiates damaging effect of hepatitis G virus on DNA in lymphocytes.

Adolescent↗

Precise analyses of DNA structure by NMR.

Novel 1H NMR techniques were developed and applied to the analyses of the DNA structure. They distinguished the base proton signals of cytosine (uracil) from those of the other bases. Two dimensional experiments were also performed by using these techniques, and were found to be useful for signal assignments. Moreover, the (2'R)-[2'-2H]-labeled DNA 10-mer and 17-mer were synthesized to be used for the determination of precise structures. These stereoselective [2'-2H]-labeling made possible explicit stereospecific assignments and exact determination of the vicinal coupling constants, 3JHH, and thus the conformation of each deoxyribose ring was accurately determined.

Cytosine↗

Force field dependence of NMR-Based, restrained molecular dynamics DNA structure calculations including an analysis of the influence of residual dipolar coupling restraints.

Restrained molecular dynamics is widely used to calculate DNA structures from NMR data. Here, results of an in silico experiment show that the force field can be significant compared to the NMR restraints in driving the final structures to converge. Specifically, we observed that i) the influence of the force field leads to artificially tight convergence within final families of structures and ii) the precision and character of resulting structures depend on the choice of force field used in the calculations. A canonical B-DNA model was used as a target structure. Distances, dihedral angles, and simulated residual dipolar couplings were measured in the target structure and used as restraints. X-PLOR and Discover, which use force fields developed for CHARMM and AMBER programs, respectively, were tested and found to produce different final structures despite the use of identical distance and dihedral restraints. Incorporation of residual dipolar coupling restraints in X-PLOR improves convergence with the target structure and between families of structures indicating that the force field dependence can potentially be overcome if residual dipolar coupling restraints are employed.

Algorithms↗

A tetrameric DNA structure with protonated cytosine.cytosine base pairs.

Oligomers containing tracts of cytidine form hemiprotonated base pairs at acid pH and have been considered to be double-stranded. We have solved the structure of the DNA oligomer 5'-d(TCCCCC) at acid pH and find that it is a four-stranded complex in which two base-paired parallel-stranded duplexes are intimately associated, with their base pairs fully intercalated. The relative orientation of the duplexes is antiparallel, so that each base pair is face-to-face with its neighbours. The NMR spectrum displays only six spin systems, showing that the structure is highly symmetrical on the NMR timescale; the four strands are equivalent. A model derived by energy minimization and constrained molecular dynamics shows excellent compatibility with the observed nuclear Overhauser effects (NOEs) particularly for the very unusual inter-residue sugar-sugar NOEs H1'-H1', H1'-H2" and H1'-H4'. These NOEs are probably diagnostic for such tetrameric structures.

Base Composition↗

Nuclease-induced DNA structural changes assessed by flow cytometry with the intercalating dye propidium iodide.

A flow cytometric analysis of DNA structural changes induced by cleavage with nucleases was performed on isolated HeLa nuclei by assessing changes in stainability with the DNA-specific fluorochrome propidium iodide (PI). After mild digestion with DNAse I, micrococcal nuclease, or with the single-strand-specific S1 and Neurospora crassa nucleases, fluorescence intensity of nuclei stained with PI increased by about 15-30% above the value of undigested control samples. No significant modifications were observed with the restriction enzymes Eco RI, Alu I, and Not I. The DNAse I-induced increase in fluorescence intensity was also observed with the non-intercalating dye Hoechst 33258, but not with mithramycin. Nuclease-induced fluorescence intensity changes as determined with PI were found to be dependent on the dye concentration. A constant increase (about 20%) was measured at dye/DNA-P ratios greater than 0.11. Below this value (2 micrograms/ml PI), the fluorescence intensity of digested samples was 15-30% lower than that of undigested controls. This behaviour towards intercalating dyes is similar to that of the relaxed (nicked) vs. the supercoiled (intact) form of circular DNA. These results suggest that conformation- but not sequence-specific nucleases induce a relaxation of DNA supercoils.

Coloring Agents↗

Kinetic analysis of psi-DNA structure formation induced by histone H1 and its C-terminal domain.

In this paper we have studied the kinetics of psi-DNA structure formation induced by H1 and H1 peptides containing the C-terminal domain, namely the CTB peptide, obtained by thrombin digestion, and the CNBS peptide, derived from N-bromosuccinimide treatment of H1. The time course for the formation of the psi structure has been followed by measuring the changes in ellipticity at 270 nm as a function of time under different experimental conditions. In all cases studied here, we have observed the existence of two elementary processes: one fast, the other slow. Kinetic experiments performed with high molecular weight DNA showed that the greater the salt concentration, the higher was the apparent rate of psi structure formation. In complexes formed with sonicated DNA and H1, CNBS and CTB, we observed that the greater the content of the C-terminal domain, the higher was the apparent rate at which the final psi structure was reached. Thus, the presence of increasing amounts of either salt or C-terminal domain facilitates the formation of the psi structure. The molecular basis for these phenomena is discussed. The influence of the order of addition of the different components of the complex on the kinetics of psi structure induction is also studied.

Circular Dichroism↗

A-form conformational motifs in ligand-bound DNA structures.

Recognition and biochemical processing of DNA requires that proteins and other ligands are able to distinguish their DNA binding sites from other parts of the molecule. In addition to the direct recognition elements embedded in the linear sequence of bases (i.e. hydrogen bonding sites), these molecular agents seemingly sense and/or induce an "indirect" conformational response in the DNA base-pairs that facilitates close intermolecular fitting. As part of an effort to decipher this sequence-dependent structural code, we have analyzed the extent of B-->A conformational conversion at individual base-pair steps in protein and drug-bound DNA crystal complexes. We take advantage of a novel structural parameter, the position of the phosphorus atom in the dimer reference frame, as well as other documented measures of local helical structure, e.g. torsion angles, base-pair step parameters. Our analysis pinpoints ligand-induced conformational changes that are difficult to detect from the global perspective used in other studies of DNA structure. The collective data provide new structural details on the conformational pathway connecting A and B-form DNA and illustrate how both proteins and drugs take advantage of the intrinsic conformational mechanics of the double helix. Significantly, the base-pair steps which exhibit pure A-DNA conformations in the crystal complexes follow the scale of A-forming tendencies exhibited by synthetic oligonucleotides in solution and the known polymorphism of synthetic DNA fibers. Moreover, most crystallographic examples of complete B-to-A deformations occur in complexes of DNA with enzymes that perform cutting or sealing operations at the (O3'-P) phosphodiester linkage. The B-->A transformation selectively exposes sugar-phosphate atoms, such as the 3'-oxygen atom, ordinarily buried within the chain backbone for enzymatic attack. The forced remodeling of DNA to the A-form also provides a mechanism for smoothly bending the double helix, for controlling the widths of the major and minor grooves, and for accessing the minor groove edges of individual base-pairs.

Animals↗

[Characteristics of the primary and secondary DNA structure of staphylococcal phage SB-1].

Equilibrium centrifugation, spectral analysis of thermal denaturation and direct chemical determinations showed staphylococcal phage Sb-I DNA to be characterized by a standard set of nitric bases (28.5 mol.2./% G-C). No abnormal bases or other extracomponents were found. From the differential spectral analysis of melting interval it is concluded that G-C pairs are distributed along DNA molecule in a Gauss type. Spectrophotometric and thermodynamic parameters of melting show phage Sv-I DNA to have a typical double-stranded structure. DNA is characterized by enthalpies of conformational transitions of spiral=glome delta H=11.4 cal/g and delta H = 9.7 cal/g for 1 x SSC and 0.1 x SSC diluents, respectively.

Centrifugation, Density Gradient↗

[Fluorescence characteristics of dynamic changes in the DNA structure of peripheral blood cells in irradiated rats].

A simple approach is proposed to determine locally denatured sites and stability characteristics of secondary DNA structure. The method is based on the analysis of the initial part of melting curve and the determination of changes in the optical density of DNA after heating up to a fixed temperature. The potentiality of the approach is illustrated by the experiments with DNA containing defects in the secondary structure caused by gamma-irradiation in vitro. The sensitivity of the method is less than 0.2 Gy.

Animals↗

DNA structural elements required for FEN-1 binding.

In eukaryotic cells, a 5'-flap DNA endonuclease and a double-stranded DNA 5'-exonuclease activity reside within a 42-kDa enzyme called FEN-1 (flap endonuclease-1 and 5(five)'-exonuclease). This endo/exonuclease has been shown to be highly homologous to human XP-G, Saccharomyces cerevisiae RAD2, and S. cerevisiae YKL510. Like FEN-1, these related structure-specific nucleases recognize and cleave a branched DNA structure called a DNA flap and its derivative, called a pseudo Y-structure. To dissect the important structural components of the DNA flap structure, we have developed a mobility shift assay. We find that the Fadj strand (located adjacent to the displaced flap strand) is necessary for efficient binding and cleavage of flap structures by FEN-1. When this strand is absent or when it is present, but recessed from the elbow of the flap strand, binding efficiency drops. Further investigation of the role of the Fadj strand using double flap structures reveals that the Fadj strand is necessary to provide a double-stranded template upon which FEN-1 can bind near the elbow of the flap strand. These results provide a basis for understanding how this structure-specific nuclease recognizes a variety of DNA substrates.

Base Sequence↗

Monitoring DNA structures by dual fluorescence of pyrene derivatives.

We have developed a nucleotide modified by a pyrene derivative with dual fluorescence. The dual fluorescence of the fluorophore, which was incorporated into DNA, was effectively controlled at ambient temperature according to DNA structural status. Our nucleoside with dual fluorescence is effective as a conceptually new probe for monitoring DNA hybridization by the color change without multilabeling with fluorescent dyes.

DNA↗