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Analysis of non-B DNA structure at chromosomal sites in the mammalian genome.

Changes at sites of genetic instability ultimately involve DNA repair pathways. Some sites of genetic instability in the mammalian genome appear to be unstable because they adopt a non-B DNA conformation. We describe two structural approaches for determination of whether a genomic region is configured in a non-B DNA conformation. Our studies indicate that at least some chromosomal fragile sites can be explained by such altered DNA conformations. One of the methods that we describe is called the bisulfite modification assay. This is a powerful assay because it provides information on individual DNA molecules. The second approach uses preexisting DNA structural reagents, but describes our specific application of them to analysis of DNA in vivo.

Animals↗

Strong sequence patterns in eukaryotic promoter regions: potential implications for DNA structure.

1. Analysis of eukaryotic sequences reveals recurring trends in upstream regions. Oligomers composed of (G/C)n and (A/T)m blocks are preferentially flanked by (G/C)2 doublets on their 3' rather than on their 5' ends, that is (G/C)n(A/T)m(G/C)2 > (G/C)n+2(A/T)m. 2. These trends are stronger for larger n and smaller m. Additional trends are outlined below. 3. The trends are correlated with DNA structural parameters, in particular with twist and roll angles. 4. Generally, the trends hold if the base pair step joining the 5' (G/C)2 doublet to the (G/C)n (A/T)m oligomer is not undertwisted and is not strongly rolled into the major groove. 5. Other DNA parameters crucial for DNA-protein interactions are discussed as well.

Base Composition↗

Agrobacterium-mediated transformation of Aspergillus awamori in the absence of full-length VirD2, VirC2, or VirE2 leads to insertion of aberrant T-DNA structures.

Reductions to 2, 5, and 42% of the wild-type transformation efficiency were found when Agrobacterium mutants carrying transposon insertions in virD2, virC2, and virE2, respectively, were used to transform Aspergillus awamori. The structures of the T-DNAs integrated into the host genome by these mutants were analyzed by Southern and sequence analyses. The T-DNAs of transformants obtained with the virE2 mutant had left-border truncations, whereas those obtained with the virD2 mutant had truncated right ends. From this analysis, it was concluded that the virulence proteins VirD2 and VirE2 are required for full-length T-DNA integration and that these proteins play a role in protecting the right and left T-DNA borders, respectively. Multicopy and truncated T-DNA structures were detected in the majority of the transformants obtained with the virC2 mutant, indicating that VirC2 plays a role in correct T-DNA processing and is required for single-copy T-DNA integration.

Aspergillus↗

G-DNA: a twice-folded DNA structure adopted by single-stranded oligo(dG) and its implications for telomeres.

Our dimethyl sulfate modification experiments suggest that (dG)n stretches within single-stranded DNA fragments, which represent the simplest model for telomeric sequences, adopt a complex intrastrand structure other than a simple hairpin. We present a molecular model for the DNA structure that conforms to dimethyl sulfate methylation data. The principal element of this G-DNA structure is a quadruple helix formed by pairwise antiparallel segments of the twice-folded (dG)n stretch. This quadruple core has two wide and two narrow grooves connected by three loop-shaped segments. The strong stacking interactions of the neighboring guanine tetrads and the large number of hydrogen bonds formed can be the primary reasons that such structures are favored over a common hairpin for long (dG)n stretches. Such compact structures may be formed from (dG)n stretches of telomeric sequences.

Chromosomes↗

A method for radioprobing DNA structures using Auger electrons.

PURPOSE: To present a new method for radioprobing a DNA triple helix structure by Auger electrons emitted in the decay of 125I using theoretical/computational approaches. MATERIALS AND METHODS: A Monte Carlo track structure method was used to simulate the damage to a triplex resulting from Auger electrons emitted in the decay of an incorporated 125I atom in plasmid DNA. Comparison of the theoretical frequency distributions of single-strand breaks induced on the Pu and Py strands with the experimental data and a knowledge of the distances from the strand breaks to the iodine provide information on the structures otherwise difficult to obtain with X-ray crystallography. RESULTS: In comparing theoretical frequency distributions of single-strand breaks with the experimental data it is found that the results are very sensitive to the conformation of the triplex model used. It is found that the best fit to the experimental data results from using a hybrid triplex model, in which the base-step geometry is A-like, while the sugar puckers adopt the B-like C2'-endo conformation. CONCLUSIONS: The approach and technique presented here represent a valuable new addition to the methods available for DNA structure determination since they provide information on medium-range structure otherwize difficult to obtain in the absence of X-ray crystallography. It is concluded that currently accepted models for triplex structure are not optimal, and a modified structure is proposed that fits the radioprobing results better, while maintaining agreement with the fibre diffraction and NMR data. Although the method has proved to be very useful for scoring alternative trial solutions, further studies combining experimental data from multiple iodine positions with track structure modelling are required for directing structural optimization.

Base Sequence↗

The quinternary chromatin-DNA structure. Three-dimensional reconstruction and functional significance.

Nuclear DNA-space images from Feulgen-stained HeLa cells synchronized at 1, 3, 5, 8, 12, 15, and 18 h following mitosis are digitized and their densitometric-geometric patterns are analyzed by means of a Quantimet 720-D image analyzer on line with a PDP11/40 computer. Frequency distributions of picture point optical densities for the phases and subphases as seen in nuclear images show that DNA packing changes are evident by means of ordinary optical microscopy. Radii of gyration of the images, and optical density profiles and distributions for several squashes of similar cells reveal that in particular instances chromatin DNA is distributed mostly towards the periphery, and usually with high circular isotropy. Cross power spectra of individual scan lines suggest that existence of higher order "quinternary" periodic structure for chromatin that modulates during the cell cycle. Three-dimensional reconstruction 2- micrometer sections of intact, Feulgen-stained mammalian tumor tissue show stainable material only toward the nuclear perimeter and not in the center (compatible with the evidence that initial thymidine incorporation in HeLa cells is generally at the nuclear border). Densitometric properties of reconstructed interphase chromatin-DNA bodies are highly coupled with similar properties of the whole nucleus, showing that a more condensed nucleus is always accompanied by a more condensed interphase chromatin DNA. The effect of micrococcal nuclease digestion on the digitized nuclear images is also presented. All the above data are then discussed in terms of a quinternary chromatin-DNA structure and its modulation during the cell cycle.

Cell Cycle↗

Structural DNA and genetically active DNA in dinoflagellate chromosomes.

High resolution electron microscope autoradiographs of [3H]adenine incorporation in the dinoflagellate Prorocentrum micans suggest that RNA transcription occurs on extrachromosomal DNA filaments, but not on DNA in the main body of the chromosome. This genetically inactive DNA has an important role, however, in stabilising chromosome structure by its association with protein matrix. Evidence for the importance of this molecular association (which is probably cation-mediated) is provided by alkaline buffer extraction of the protein matrix in chromosomes of Amphidinium carterae , leading to complete destabilisation of the DNA framework. The clear distinction between structural DNA and genetically active DNA in these chromosomes provides a marked contrast to normal eucaryote chromosomes. This distinction is related to the occurrence of high DNA values in these organisms, and the evolutionary status of the dinoflagellate chromosome.

Adenine↗

A global but stable change in HeLa cell morphology induces reorganization of DNA structural loop domains within the cell nucleus.

DNA of higher eukaryotes is organized in supercoiled loops anchored to a nuclear matrix (NM). The DNA loops are attached to the NM by means of non-coding sequences known as matrix attachment regions (MARs). Attachments to the NM can be subdivided in transient and permanent, the second type is considered to represent the attachments that subdivide the genome into structural domains. As yet very little is known about the factors involved in modulating the MAR-NM interactions. It has been suggested that the cell is a vector field in which the linked cytoskeleton-nucleoskeleton may act as transducers of mechanical information. We have induced a stable change in the typical morphology of cultured HeLa cells, by chronic exposure of the cells to the polar compound dimethylsulfoxide (DMSO). Using a PCR-based method for mapping the position of any DNA sequence relative to the NM, we have monitored the position relative to the NM of sequences corresponding to four independent genetic loci located in separate chromosomes representing different territories within the cell nucleus. Here, we show that stable modification of the NM morphology correlates with the redefinition of DNA loop structural domains as evidenced by the shift of position relative to the NM of the c-myc locus and the multigene locus PRM1 --> PRM2 --> TNP2, suggesting that both cell and nuclear shape may act as cues in the choice of the potential MARs that should be attached to the NM.

Cell Nucleus↗

Detection of quadruplex DNA structures in human telomeres by a fluorescent carbazole derivative.

Single-stranded telomeric DNA tends to form a four-base-paired planar structure termed G-quadruplex. This structure was easily formed in vitro in the presence of monovalent cations. However, the existence of this structure in native human telomeres is unclear. Here we address this important question through the distinctive properties of 3,6-bis(1-methyl-4-vinylpyridinium)carbazole diiodide (BMVC) upon binding to various DNA structures. Although the fluorescence of BMVC increases significantly in the presence of DNA, BMVC has high sensitivity and binding preference to quadruplex d(T(2)AG(3))(4) over duplex DNA. In addition, the fluorescent emissions were characterized around 575 nm for quadruplex d(T(2)AG(3))(4) and 545 nm for most of duplex DNA. The 575-nm fluorescence emissions were detected in the mixtures of 2 nM BMVC with the chromosomal DNA that were extracted from human cells, suggesting the presence of quadruplex structure in human nucleus. Further analyzing the BMVC fluorescence at the ends of metaphase chromosomes and other regions of chromosomes, we detected the quadruplex-binding BMVC fluorescence at telomere-proximal regions. Together these results provide the first evidence for the presence of quadruplex structures in human telomeres.

Binding Sites↗

Targeting multi-stranded DNA structures.

The design of agents targeted toward a structure-specific molecular recognition of DNA triplexes or tetraplexes ( quadruplexes ) is discussed, where such structures are relevant to antigene-based chemotherapies and the in situ cellular inhibition of telomerase function, respectively. Using principles that stem from the development of earlier synthetic duplex-binding ligands, together with recent findings that probe structure thermodynamic linkages and kinetic features of stability, a rational approach is developed to exploit the distinct molecular templates offered by these high-order nucleic acid biotarget systems. Such analytical techniques can usefully augment conventional drug design methods, particularly where detailed structural information is unavailable or the mode of binding to form a persistent DNA biotarget ligand complex is not established. Examples from the author s laboratory are used to illustrate structure-specific (or structure-preferential) recognition and subsequent stabilization of DNA triplexes using intercalative or groove-mediated binding mechanisms, and the successful targeting of DNA tetraplexes using planar extended-aromatic ligands. In each case, chemical manipulation of the molecule by exploiting either (i) geometric isomers, (ii) redistribution of charged groups and/or H-bond donors/acceptors, or (iii) optimization of intermolecular pi-overlap can be used to improve the affinity or specificity of the underlying DNA drug binding events.

Animals↗

General nearest neighbor preferences in G/C oligomers interrupted by A/T: correlation with DNA structure.

The frequencies of occurrence of the 5' and 3' nearest neighbor doublets of oligonucleotides containing (G/C) and (A/T) blocks show strong trends. Specifically, the following trends are observed. Given a (G/C)n (A/T)m oligomer (where G/C)n indicates a sequence of length n composed solely of Gs and/or Cs and (A/T)m is a sequence of length m composed solely of As and/or Ts, and n = 3,2,1; m = 1,2,3) and a (G/mC)2 doublet, (G/C)n (A/T)m (G/C)2 greater than (G/C)n + 2 (A/T)m. That is the (G/C)2 doublet is preferentially located 3' of the oligomer, enclosing the (A/T)m stretch. The trends are strongest for n = 3, m = 1 and gradually weaken as the size of the (mG/C)n block decreases (with a concomitant increase of (A/T)m). (A/T)2 nearest neighbor flank preferentially encloses the (G/C)n block (to produce (A/T)2 (G/C)n (A/T)m). The (A/T)2 flank trends are weaker than the (G/C)2 flank ones. The (A/T)2 flank trends also decrease in strength as the size of the (G/C)n block decreases. The statistical significance of these trends in eukaryotes is very high. A possible correlation with DNA structural parameters, in particular groove geometry, is discussed.

Base Composition↗

Strong sequence-dependent polymorphism in adduct-induced DNA structure: analysis of single N-2-acetylaminofluorene residues bound within the NarI mutation hot spot.

We have used a set of chemical probes to characterize and to compare the structural deformation of double-stranded oligomers bearing a single N-2-acetylaminofluorene (AAF) adduct covalently bound to each of the three guanine residues located within the frameshift mutation hot spot sequence -G1G2CG3CC-(NarI site). Two classes of chemical probes have been used, probes that sense the geometry of the helix, giving rise to cuts at every nucleotide (for example, 1,10-phenanthroline-copper), and probes that react with specific bases depending on their conformation (e.g., diethyl pyrocarbonate). For all probes that were tested, a distinct pattern of reactivity was observed according to the position of the adduct within the DNA sequence, revealing an important polymorphism in the adduct-induced DNA structure. With 1,10-phenanthroline-copper at least three base pairs 3' of the AAF-modified guanine were reactive on each strand, showing that the deformation of the DNA helix extends over a region of 4-6 bases pairs centered around the adduct and sensed by the probe in both strands. With the base-specific probes, reactivities were limited to the base complementary to the modified guanine and to adjacent bases. Within this sequence context, the three possible AAF adducts have previously been shown to exhibit strong differences in biological responses such as excision repair [Seeberg, E., & Fuchs, R. P. P. (1990) Proc. Natl. Acad. Sci. U.S.A. 87, 191-194] and mutagenesis [Burnouf, D., Koehl, P., & Fuchs, R. P. P. (1989) Proc. Natl. Acad. Sci. U.S.A. 86, 4147-4151].(ABSTRACT TRUNCATED AT 250 WORDS)

2-Acetylaminofluorene↗

Human claspin is a ring-shaped DNA-binding protein with high affinity to branched DNA structures.

Claspin is an essential protein for the ATR-dependent activation of the DNA replication checkpoint response in Xenopus and human cells. Here we describe the purification and characterization of human Claspin. The protein has a ring-like structure and binds with high affinity to branched DNA molecules. These findings suggest that Claspin may be a component of the replication ensemble and plays a role in the replication checkpoint by directly associating with replication forks and with the various branched DNA structures likely to form at stalled replication forks because of DNA damage.

Adaptor Proteins, Signal Transducing↗

Precise sequence assignment of replication origin in the control region of chick mitochondrial DNA relative to 5' and 3' D-loop ends, secondary structure, DNA synthesis, and protein binding.

The data reported identify for the first time the sequence of an avian mitochondrial heavy-strand replication origin, OH, located only about 12 nucleotides (nt) downstream from the conserved sequence block CSB-1, as well as the sequence of premature synthesis arrest of the 781 (+/-1) nt D-loop strand, only 6-7 nt downstream from a TAS-like (termination-associated) element. Both sites are associated with putative cruciform secondary structures. A major sequence-specific DNA-binding/cleavage site of a potential regulatory protein, the approximately 36-kDa aMDP1 (shown previously to stimulate mtDNA synthesis), is located about 90 nt upstream of OH. Correlated in vivo analysis of avian genome-length mtDNA replication provides missing evidence on the functional equivalence of D-loop origin with nascent initiation, and on the direction, asymmetry and temporal aspects of a full round of replication. The importance of the results to understanding the regulation of linked replication/transcription and the unusual sequence evolution of avian mtDNA is

Animals↗

Binding of single-stranded oligonucleotides to a non-B-form DNA structure results in loss of promoter activity of the platelet-derived growth factor A-chain gene.

Levels of expression of the platelet-derived growth factor (PDGF) A-chain gene differ significantly in normal and transformed cells. We have identified an S1 nuclease-sensitive site in a GC box located at -55 to -72 in the PDGF A-chain promoter region. We now demonstrate that a 24-base, G-rich complementary oligonucleotide anneals specifically to the C-rich strand of the GC box and protects the GC box from nicking by S1 nuclease whereas the C-rich complementary oligonucleotide and its double-stranded counterpart do not. In transient transfection assays, expression of the PDGF A-chain gene is sharply reduced by deletions within the GC box or if the 24-base G-rich complementary oligonucleotide is preincubated with the promoter construct prior to transfection. The data suggest that the GC box of the PDGF A-chain gene may promote a non-B-form DNA structure, which is recognized by S1 nuclease and which anneals to a short complementary G-rich oligonucleotide. The data also suggest that this non-B-form DNA is important for efficient transcription of PDGF A-chain gene.

Animals↗

The influence of primary and secondary DNA structure in deletion and duplication between direct repeats in Escherichia coli.

We describe a system to measure the frequency of both deletions and duplications between direct repeats. Short 17- and 18-bp palindromic and nonpalindromic DNA sequences were cloned into the EcoRI site within the chloramphenicol acetyltransferase gene of plasmids pBR325 and pJT7. This creates an insert between direct repeated EcoRI sites and results in a chloramphenicol-sensitive phenotype. Selection for chloramphenicol resistance was utilized to select chloramphenicol resistant revertants that included those with precise deletion of the insert from plasmid pBR325 and duplication of the insert in plasmid pJT7. The frequency of deletion or duplication varied more than 500-fold depending on the sequence of the short sequence inserted into the EcoRI site. For the nonpalindromic inserts, multiple internal direct repeats and the length of the direct repeats appear to influence the frequency of deletion. Certain palindromic DNA sequences with the potential to form DNA hairpin structures that might stabilize the misalignment of direct repeats had a high frequency of deletion. Other DNA sequences with the potential to form structures that might destabilize misalignment of direct repeats had a very low frequency of deletion. Duplication mutations occurred at the highest frequency when the DNA between the direct repeats contained no direct or inverted repeats. The presence of inverted repeats dramatically reduced the frequency of duplications. The results support the slippage-misalignment model, suggesting that misalignment occurring during DNA replication leads to deletion and duplication mutations. The results also support the idea that the formation of DNA secondary structures during DNA replication can facilitate and direct specific mutagenic events.

Base Sequence↗

Covalent modification of guanine bases in double-stranded DNA. The 1.2-A Z-DNA structure of d(CGCGCG) in the presence of CuCl2.

We have solved the single crystal structure to 1.2-A resolution of the Z-DNA sequence d(CGCGCG) soaked with copper(II) chloride. This structure allows us to elucidate the structural properties of copper in a model that mimics a physiologically relevant environment. A copper(II) cation was observed to form a covalent coordinate bond to N-7 of each guanine base along the hexamer duplex. The occurrence of copper bound at each site was dependent on the exposure of the bases and the packing of the hexamers in the crystal. The copper at the highest occupied site was observed to form a regular octahedral complex, with four water ligands in the equatorial plane and a fifth water along with N-7 of the purine base at the axial positions. All other copper complexes appear to be variations of this structure. By using the octahedral complex as the prototype for copper(II) binding to guanine bases in the Z-DNA crystal, model structures were built showing that duplex B-DNA can accommodate octahedral copper(II) complexes at the guanine bases as well as copper complexes bridged at adjacent guanine residues by a reactive dioxygen species. The increased susceptibility to oxidative DNA cleavage induced by copper(II) ions in solution of the bases located 5' to one or more adjacent guanine residues can thus be explained in terms of the cation and DNA structures described by these models.

Base Sequence↗