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Long-range interactions of multiple DNA structural transitions within a common topological domain.

Local DNA conformations that are underwound with respect to the right-handed B form are favored in negatively supercoiled DNA. However, when multiple transitional events co-exist within a common topological domain, they must compete with one another for the available free energy of negative supercoiling. Recently we developed a general theoretical model capable of predicting the behavior at equilibrium of defined sequences in a variety of competitive situations. In the present work we have applied this theory to predict the formation of Z-DNA as a function of superhelicity in stretches of d(CG)m and d(CA)n when they are forced to compete with one another in the same plasmid. The observed behavior of these competing sequences is in close accord with theoretical predictions. These results indicate that sequences separated by large distances can effect the transitional behavior of each other in a complex manner which is independent of the relative orientation of the participating segments. The pattern of transitional events is strongly dependent on levels of DNA supercoiling, ambient conditions and on the nature and number of the sequences involved. Although in the present work we apply the model specifically to the Z-DNA conformational transition, the results of this study may have general relevance to a variety of biological processes in which the helical repeat of DNA is reversibly altered, including the initial steps in transcription, replication and recombination.

Computer Simulation↗

[Chemical reactions in double helical nucleic acids. XIII. Directed introduction of acylphosphate internucleotide bonds into the DNA-duplex structure].

DNA duplex, containing an acylphosphate internucleotide bond in a predetermined position of the sugar-phosphate backbone, was synthesized. The synthesis was carried out by condensing on the complementary matrix two heptanucleotides, one of which possessed at the 3'-end a glycine residue, connected with the oligonucleotide by the phosphoramide bond, whereas the 5'-end phosphate group of the other was activated with 1-ethyl-3-(3-dimethylaminopropyl)carbodiimide (EDAC). The yield of the oligonucleotide with an acylphosphate bond was 24%. The stability and chemical properties of the synthesized compound were studied in comparison with analogous oligonucleotide containing a substituted pyrophosphate internucleotide bond. The former was shown to be an effective acylating agent in the aqueous medium in contrast to the latter which is a phosphorylating agent.

Acylation↗

Theoretical study of a new DNA structure: the antiparallel Hoogsteen duplex.

The structure of a new form of duplex DNA, the antiparallel Hoogsteen duplex, is studied in polyd(AT) sequences by means of state-of-the-art molecular dynamics simulations in aqueous solution. The structure, which was found to be stable in all of the simulations, has many similarities with the standard Watson-Crick duplex in terms of general structure, flexibility, and molecular recognition patterns. Accurate MM-PB/SA (and MM-GB/SA) analysis shows that the new structure has an effective energy similar to that of the B-type duplex, while it is slightly disfavored by intramolecular entropic considerations. Overall, MD simulations strongly suggest that the antiparallel Hoogsteen duplex is an accessible structure for a polyd(AT) sequence, which might compete under proper experimental conditions with normal B-DNA. MD simulations also suggest that chimeras containing Watson-Crick duplex and Hoogsteen antiparallel helices might coexist in a common structure, but with the differential characteristics of both type of structures preserved.

DNA↗

DNA structures recognized by the human UV-DDB protein.

DNA recognition by the human UV-damaged DNA-binding (UV-DDB) protein was characterized. By circular permutation analyses, DNA duplexes containing the (6-4) photoproduct and the abasic site analog were found to be bent at angles of 54 degrees and 57 degrees, respectively, when they formed a complex with this protein. Although kinked NMR structures have been reported, fluorescence resonance energy transfer experiments revealed that these duplexes had no intrinsic bend. These results suggest that the UV-DDB protein binds DNA that can be bent easily at the above angle.

Base Sequence↗

Demonstration of the asymmetric effect of CC-1065 on local DNA structure using a site-directed adduct in a 117-base-pair fragment from M13mp1.

Using DNase I and Alu I endonuclease analysis of a site-directed CC-1065-[N3-adenine]DNA adduct in a 117-base-pair fragment from M13mp1 DNA, we have demonstrated that CC-1065 produces an asymmetric effect on DNA conformation that extends more than one helix turn to the 5' side of the covalently modified adenine. CC-1065 is a potent antitumor antibiotic produced by Streptomyces zelensis, which is believed to mediate its cytotoxic effects through covalent binding to DNA. Previous studies have demonstrated that CC-1065 binds covalently to N3 of adenine and lies within the minor groove of DNA spanning a 4-base-pair sequence to the 5' side of the modified adenine. DNase I footprinting of this site-directed CC-1065-DNA adduct on the noncovalently modified strand shows that inhibition of cleavage occurs over a 12-base region, which is bordered on the 3' side by a site of 2-fold enhancement of cleavage. On the covalently modified strand a much less pronounced inhibition/enhancement pattern of cleavage occurs as far as 11 bases to the 5' side of the covalently modified adenine. While Hae III is able to cleave the DNA on both strands on the 3' side of the covalently modified adenine, Alu I is only able to cleave the covalently modified strand on the 5' side of the adduct. By taking into account the recently published structure of DNase I, we are able to interpret these results and develop a model for the effect of CC-1065 on local DNA structure. In this model, we propose selective drug-induced distortion of the covalently modified strand as a consequence of the alkylation of adenine by CC-1065.

Adenine↗

Control of cell cycle arrest by the Mec1sc/Rad3sp DNA structure checkpoint pathway.

The Mec1(sc)/Rad3(sp) protein family is central to the checkpoint pathways of cells. Functions upstream and downstream of Mec1(sc)/Rad3(sp) show both similarities and differences when compared between organisms. Analogy with a related protein, DNAPKcs, suggests that different subunits may activate Mec1(sc)/Rad3(sp) in response to specific DNA or DNA-protein structures.

Adenosine Triphosphatases↗

DNA structures, repeat expansions and human hereditary disorders.

Expansions of simple DNA repeats are responsible for more than two dozen hereditary disorders in humans, including fragile X syndrome, myotonic dystrophy, Huntington's disease, various spinocerebellar ataxias, Friedreich's ataxia and others. During the past decade, it became clear that unusual structural features of expandable repeats greatly contribute to their instability and could lead to their expansion. Furthermore, DNA replication, repair and recombination are implicated in the formation of repeat expansions, as shown in various experimental systems. The replication model of repeat expansion stipulates that unusual structures of expandable repeats stall replication fork progression, whereas extra repeats are added during replication fork restart. It also explains the bias toward repeat expansion or contraction that was observed in different organisms.

DNA↗

DNA structure: evidence from electron microscopy.

The contour lengths of phiX174 DNA duplex and RNA-DNA hybrid molecules were measured by several commonly used electron microscopic techniques. The countour length of the hybrid molecules corresponds to a rise of 2.5 to 2.6 angstroms per base pair, as expected for the A conformation, while the length of phiX174 duplex DNA similarly measured corresponds to a 2.9-angstrom rise, very different from 3.4 angstroms of the classic B form. Thus any chromatin structure parameter based on electron microscopy and a rise of 3.4 angstroms must be reappraised. The possibility that DNA in dilute solution also has a rise of 2.9 angstroms and a screw of 10.5 base pairs per turn is discussed.

Coliphages↗

Interresidue quiet NOEs for DNA structural studies.

The potential utility of long-range NOEs in DNA has not been exploited since the observed signals have contributions both from the direct magnetization route and from multiple diffusion pathways. The Quiet NOE approach can be used to select for the direct magnetization transfer pathway by suppressing spin diffusion. A single-band Quiet NOE, which allows detection of the direct NOEs between protons in a selected chemical shift window, has been demonstrated on two duplex DNAs, and the NOEs observed can contain important structural information.

Crystallography↗

In vitro formation of multimeric DNA structures mediated by purified simian virus 40 chromatin.

Simian virus 40 chromatin was incubated after purification by sucrose density-gradient centrifugation with various circular double-stranded DNA substrates. Monomeric rings were converted in the presence of Mg2+ to structures possessing a higher degree of complexity. Dimeric catenanes, as well as multimeric linear structures and concatemers, were generated, indicating that recombination events had occurred in vitro involving covalent linkage between different DNA molecules. Furthermore, apparently fused dimeric rings were observed. Their structures suggest that they may be recombination intermediates such as those described in a prokaryotic system [Potter, H. & Dressler, D. (1976) Proc. Natl. Acad. Sci. USA 73, 3000-3004]. Recombination did not take place between heterologous DNA substrates, as exclusively homologous multimeric DNA structures were observed.

Bacteriocin Plasmids↗

Detection of drug binding to DNA by hydroxyl radical footprinting. Relationship of distamycin binding sites to DNA structure and positioned nucleosomes on 5S RNA genes of Xenopus.

We report the use of hydroxyl radical footprinting to analyze the interaction of distamycin and actinomycin with the 5S ribosomal RNA genes of Xenopus. There is a qualitative difference in the hydroxyl radical footprints of the two drugs. Distamycin gives a conventional (albeit high-resolution) footprint, while actinomycin does not protect DNA from hydroxyl radical attack, but instead induces discrete sites of hyperreactivity. We find concentration-dependent changes in the locations of distamycin binding sites on the somatic 5S gene of Xenopus borealis. A high-affinity site, containing a G.C base pair, is replaced at higher levels of bound drug by a periodic array of different lower affinity sites that coincide with the places where the minor groove of the DNA would face in toward a nucleosome core that is known to bind to the same sequence. These results suggest that distamycin recognizes potential binding sites more by the shape of the DNA than by the specific sequence that is contained in the site and that structures of many sequences are deformable to a shape that allows drug binding. We discuss the utility of hydroxyl radical footprinting of distamycin for investigating the underlying structure of DNA.

Animals↗

Antimetabolite incorporation into DNA: structural and thermodynamic basis for anticancer activity.

Antimetabolites are a class of effective anticancer drugs that structurally resemble naturally occurring biochemicals and interfere in essential biochemical processes. In this review, the recent literature describing investigations of the structural and thermodynamic basis for the anticancer activity of three antipyrimidines [1-beta-D-arabinofuranosyl cytidine (AraC). 2',2'-difluoro deoxycytidine (dFdC), and 5-fluoro-2'-deoxyuridine (FdUrd)] is summarized. Our laboratory, and others, have shown that misincorporation of any of these three antipyrimidines into DNA perturbs the structure and decreases the stability of duplex DNA. These data are useful for rationalizing the effects of antipyrimidine misincorporation on the activities of proteins required for DNA replication and repair such as DNA topoisomerase 1 and DNA polymerases. The studies completed to date and summarized in this review demonstrate the utility of investigations into the structure-function relationships between antipyrimidine-substituted DNA complexed with DNA-modifying proteins for the purpose of understanding the basis for effective antipyrimidine cancer chemotherapy and the future design of novel anticancer drugs.

Antimetabolites, Antineoplastic↗

Ion-induced DNA structure change in nucleosomes.

Physical methods have been used to study calcium binding to the nucleosome core particle. Equilibrium dialysis of Ca2+ and spectroscopic analysis of a Ca2+ analogue show that the ion binds tightly to the particles, resulting in a significant change of DNA circular dichroism. This suggests that base stacking may be altered as a result of Ca2+ binding. In the presence of Ca2+, the absorbance and fluorescence properties of methylene blue (MB), a DNA-specific intercalator, confirm that the dye binds tightly to nucleosomes by intercalation. However, secondary changes occur which suggest that the MB binding site is altered as a result of Ca2+ binding. Triplet state anisotropy decay and triplet lifetime quenching both show that in the Ca2+-nucleosome complex, methylene blue is capable of wobbling over a substantial angular range at its binding site. To explain these data, it is proposed that Ca2+ binding to nucleosomes causes DNA to fold by means of a series of sharp bends (kinks). The properties of bound MB are best explained if it is presumed that the intercalator binds tightly to such kinked sites in the nucleosome. On the basis of these observations, we discuss the possibility that multivalent ion concentration in the nucleus is high enough that the smooth to kinked helix equilibrium may be near to its midpoint. Near such a midpoint, the secondary structure of DNA in the nucleosome might prove to be sensitive to effector molecule binding and to site-specific variation of DNA or histone composition within genes.

Animals↗

Resolution of model Holliday junctions by yeast endonuclease: effect of DNA structure and sequence.

The resolution of Holliday junctions in DNA involves specific cleavage at or close to the site of the junction. A nuclease from Saccharomyces cerevisiae cleaves model Holliday junctions in vitro by the introduction of nicks in regions of duplex DNA adjacent to the crossover point. In previous studies [Parsons and West (1988) Cell, 52, 621-629] it was shown that cleavage occurred within homologous arm sequences with precise symmetry across the junction. In contrast, junctions with heterologous arm sequences were cleaved asymmetrically. In this work, we have studied the effect of sequence changes and base modification upon the site of cleavage. It is shown that the specificity of cleavage is unchanged providing that perfect homology is maintained between opposing arm sequences. However, in the absence of homology, cleavage depends upon sequence context and is affected by minor changes such as base modification. These data support the proposed mechanism for cleavage of a Holliday junction, which requires homologous alignment of arm sequences in an enzyme--DNA complex as a prerequisite for symmetrical cleavage by the yeast endonuclease.

Base Sequence↗

DNA structure checkpoint pathways in Schizosaccharomyces pombe.

The response to DNA damage includes a delay to progression through the cell cycle to aid DNA repair. Incorrectly replicated chromosomes (replication checkpoint) or DNA damage (DNA damage checkpoint) delay the onset of mitosis. These checkpoint pathways detect DNA perturbations and generate a signal. The signal is amplified and transmitted to the cell cycle machinery. Since the checkpoint pathways are essential for genome stability, the related proteins which are found in all eukaryotes (from yeast to mammals) are expected to have similar functions to the yeast progenitors. This review article focuses on the function of checkpoint proteins in the model system Schizosaccharomyces pombe. Checkpoint controls in Saccharomyces cerevisiae and mammalian cells are mentioned briefly to underscore common or diverse features.

DNA Replication↗