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J Kypr

Publications and source records attributed to J Kypr.

At least 55 records · Page 3Linked to original sources

Conformational isomerizations of poly(dA-dT) are dramatically influenced by a substitution of a minor amount of adenine by purine or amino2purine.

We have synthesized poly(dA,dPu-dT) and poly(dA,n2dPu-dT) containing, respectively, 5.7% of purine and 7.4% of amino2purine in place of adenine to demonstrate that these apparently negligible perturbations of the primary structure have dramatic consequences for the polynucleotide conformational isomerizations. The replacement of adenine by amino2purine, preserving the number of hydrogen bonds between the complementary bases, has a stronger effect on the polynucleotide conformational isomerizations than the replacement with purine that is bound only by a single hydrogen bond to thymine. Nevertheless, poly(dA,dPu-dT) forms a more thermostable duplex than poly(dA,n2dPu-dT). Furthermore the few amino2purines in poly(dA,n2dPu-dT) inhibit its isomerization into X-DNA, stabilize but modify A-DNA and stabilize Z-DNA. Kinetics of the B-Z transition of poly(dA,n2dPu-dT) is fast to indicate that the amino groups in the double helix minor groove substantially decrease the kinetic barrier between B- and Z-DNA. On the other hand, the replacement of adenine by purine destabilizes both Z-DNA and A-DNA, and the destabilization of X-DNA is weaker than with amino2purine. A-form and B-form perhaps coexist in poly(dA,dPu-dT) at high concentrations of ethanol.

Adenine↗

Relationships among rise, cup, roll and stagger in DNA suggested by empirical potential studies of base stacking.

Empirical analyses of experimental data have recently revealed a strong correlation in B- and A-DNA crystal structures between rise of the base pair steps and their cup, or the difference between roll and cup. We show here using empirical potentials that a major part of this correlation can be explained by the base stacking forces. Our calculations further demonstrate that the correlation depends on the base sequence while the dependence is strongest with the C-G step. We also show that small values (which lie beyond resolution of the X-ray diffraction data obtained with the DNA fragment single crystals) of base pair stagger can completely substitute for the effects of roll in the correlation. The present and our previous studies demonstrate that the base pair buckle and stagger can substantially affect base stacking in DNA so that variability of these parameters cannot be neglected in the theoretical analysis of the base sequence effects on DNA conformation.

Base Composition↗

Theoretical analysis of the base stacking in DNA: choice of the force field and a comparison with the oligonucleotide crystal structures.

It follows from previous studies that changes in the base pair vertical separation (BPVS) influence the architecture of DNA much more than any other conformational parameter. This inspired us to compare BPVS in the available oligonucleotide crystal structures with the optimum values provided by nine different empirical potentials employed in the theoretical studies of DNA conformation. This comparison shows that BPVS is reproduced by three fields in all steps of the highly resolved oligonucleotide crystal structures while the remaining six empirical potentials, including AMBER, GROMOS and CHARMM, provide systematic deviations. We further find that the base pairs are poorly stacked (mostly compressed) in some other refined DNA crystal structures. Our analysis indicates that this poor stacking originates from improperly determined positions of the bases. The approach described in the present communication can be used to identify DNA structures which are not accurate enough for studies of the relationships between the base sequence and DNA conformation.

Base Sequence↗

UNIREP: a microcomputer program to find unique and repetitive nucleotide sequences in genomes.

We present a program UNIREP, written in PowerBASIC for IBM-PCs, that identifies repetitive and unique nucleotide sequences in genomes or parts of genomes. A key feature of the algorithm is an oligonucleotide representation in a numerical code to make possible a comparison of all pairs of oligonucleotides (including overlaps) occurring in the analyzed sequence. This comparison assigns a score to each oligonucleotide, reflecting its similarity/dissimilarity to other oligonucleotides of the same length in the analyzed sequence. The score is plotted along the sequence so that peaks in the plot indicate repetitive regions and very low values reflect unique sequences. The scores are filtered to suppress or enhance the unique or repetitive sequences according to the user's wish. UNIREP is extended by auxiliary programs HIGHER and LOWER to list nucleotide sequences that have scores higher or lower than given limits. The potential of UNIREP is demonstrated using several long nucleotide sequences including the complete genomic sequence of EBV.

Algorithms↗

Geometries and energies of Watson-Crick base pairs in oligonucleotide crystal structures.

We analyzed geometries and energies of 469 GC and 224 AT pairs occurring in 11 A-, 54 B- and 12 Z-DNA crystal structures. The most frequent hydrogen bond length conforms to the canonical value but distributions of the hydrogen bond lengths are unexpectedly wide. The average GC pair is rather compressed and opened into the double helix minor groove while an average AT pair has canonical dimensions. The extreme base pair geometrical parameters are the following: buckle -26 degrees and 39 degrees, propeller -33 degrees and 26 degrees, opening -23 degrees and 19 degrees, shear -1.4 A and 2.1 A, stretch -0.7 A and 0.4 A, and stagger -2.3 A and 1.8 A. The analyzed set contains complementary bases apparently bound by unusual bifurcated hydrogen bonds. The unusual base pairing geometries are of two kinds. In the first case, an extreme value of one parameter is compensated for by other geometrical parameters so that the energy of the resulting geometry is acceptable. However, there are also examples when the compensatory effect is missing and then the base pairing instability is dramatic. The most extensive base pair deformations occur in dodecamers, the d(GGATGGGAG) nonamer, the r(UUAUAUAUAUAUAA) 14-mer, and the d(ICCGG) tetramer whose common feature is a low structure resolution. However, very unstable base pairs are also present in the decamer d(CCAACGTTGG) and hexamer d(CGTACG) whose structures were solved at a relatively high resolution. As the deformations probably originate from crystal packing forces and/or data and refinement errors, we recommend to omit these structures from studies of DNA sequence-structure relationships. The remaining hexamers, octamers and decamers whose list and their Watson-Crick base pair characteristics are given in the article are suitable for this purpose because they exhibit no prohibitive energy deviations from the canonical hydrogen bonding properties.

Base Composition↗

Tris buffer protects DNA backbone against breakage upon irradiation with ultraviolet light.

We show that Tris molecules protect DNA against nicking upon irradiation with ultraviolet light. However, the protective effect only concerns DNA backbone but not bases and it is observed in aqueous solution but not in formamide. Changes of pH or ionic strength due to Tris have no effect on the protection. The present observation has a practical importance for photofootprinting studies of DNA and its complexes with proteins but it can also serve as a basis for a development of a novel method reflecting DNA hydration and conformation.

Bacteriophage lambda↗

Nucleotide composition of genes and hydrophobicity of the encoded proteins.

We find that true proteins are generally more hydrophobic than the corresponding hypothetical proteins encoded by the randomized gene nucleotide sequences. Furthermore, the protein hydrophobicity but not its gene nucleotide composition is conserved within evolutionary families of functionally related proteins. These two findings indicate that there is a general drift to modify gene nucleotide composition in the course of evolution. An inspection of codon usage in genes shows that the drift mainly increases the content of adenine at the expense of thymine.

Adenosine↗

Structures of poly(dA-dT, ip5dU) containing various small amounts of the antiherpetic 5-isopropyl-2'-deoxyuridine.

Three different concentrations of the antiherpetic agent 5-isopropyl-2'-deoxyuridine (ip5dU) were introduced into the synthetic DNA poly(dA-dT) to analyze resulting copolymers by electron microscopy, UV absorption and CD spectroscopy. The poly(dA-dT, ip5dU) containing 1.3 and 4.3% ip5dU did not much differ from the parent poly(dA-dT) but poly (dA-dT, ip5dU) with 7.1% ip5dU behaved in an unusual way. Results are explained by the notion that if bulky isopropyls occur sufficiently close to each other then stable hairpins protruding from the double helix are formed, presumably to accommodate the ip5dU-s into the loops.

Antiviral Agents↗

Conformational transitions of poly(dA-bromo5dU) and poly(dA-iodo5dU) in solution.

Extensive circular dichroism studies have been conducted with the title polynucleotides under various solution conditions. The studies provided the following information: (i) The halogen atoms in place of thymine methyl hinder the isomerization into X-DNA. (ii) The brominated but not iodinated polynucleotide isomerizes into Z-DNA in concentrated NaCl+NiCl2. The transition takes place at lower NiCl2 concentrations than with poly(dA-dT). (iii) The iodinated polynucleotide forms an unusual conformation in aqueous solution in which it is very stable. It isomerizes from this conformer into the usual B-type double helix in concentrated ethanol solutions. The isomerization is a two-state cooperative process. (iv) Both title polynucleotides undergo still another two-state cooperative transition in trifluorethanol solutions presumably into A-DNA showing a rather unusual circular dichroism spectrum.

Circular Dichroism↗

GLOBIC: a very fast microcomputer program for fingerprinting, characterization and comparison of long nucleotide sequences.

This paper describes the program GLOBIC, which compares, characterizes and fingerprints even 0.1 Mbase sequences in a few minutes with the aid of an IBM-AT microcomputer. Instead of the nucleotide sequences themselves, GLOBIC compares the local nucleotide or short oligonucleotide compositions. GLOBIC presents two-dimensional maps of contour lines depicting the similarity of two different sequences, a sequence compared to itself, to its complementary sequence or to a random sequence. A vocabulary is presented to translate the typical patterns appearing in the two-dimensional maps into their meanings as relationships between the compared sequences. The application of GLOBIC is demonstrated using several examples from the genomic nucleotide sequences of bacteriophage T7, adenovirus type-2 and Epstein-Barr virus.

Adenoviridae↗

DNABIND: an interactive microcomputer program searching for nucleotide sequences that may code for conserved DNA-binding protein motifs.

This paper presents a simple program for interactive searching for nucleotide sequences that may code for the helix-turn-helix, zinc finger or leucine zipper motifs in proteins. The helix-turn-helix motifs are predicted using the recently published method of Dodd and Egan, while zinc fingers and leucine zippers are searched for by our original methods. DNABIND is shown to detect all four known helix-turn-helix motifs in bacteriophage lambda genes and both zinc fingers of the adr1 gene of yeast.

Algorithms↗

Different intrastrand and interstrand contributions to stacking account for roll variations at the alternating purine-pyrimidine sequences in A-DNA and A-RNA.

An explanation is suggested for the roll alternation between low and high values in A-type nucleic acid duplexes containing alternating sequences of purine and pyrimidine residues. The explanation combines two points. (1) Roll inevitably occurs in A-type duplexes due to geometrical reasons. (2) Intrastrand base stacking is much more impaired by roll than interstrand base stacking in A-type duplexes. Therefore purine-pyrimidine steps, whose bases mainly exhibit an intrastrand stacking, resist roll and decrease it. By contrast, bases at pyrimidine-purine steps exhibit a significant interstrand stacking that is tolerant to roll in A-type nucleic acid duplexes. In consequence, it is favourable if the purine-pyrimidine and pyrimidine-purine steps adopt low and high rolls, respectively in A-conformations of DNA and RNA molecules containing alternating purine-pyrimidine sequences. This is actually observed in the relevant molecular crystal structures.

Base Composition↗

Caesium fluoride-induced changes in the c.d. spectra of synthetic DNA fragments.

Ten DNA fragments containing self-complementary alternating sequences of adenine and thymine differing in length and the starting nucleotide were studied by c.d. spectroscopy. It was found that d(TATATATA) but not d(ATATATAT), d(TATATA), d(CTATATAG) or (dT-dA)20 isomerized into the unusual X-DNA double helix at molar concentrations of CsF in solution. But in contrast to poly(dA-dT), the octamer (dT-dA)4, isomerized very slowly, at relatively low CsF concentrations and the isomerization was strongly dependent on the octamer concentration. A model is proposed to account for the observed properties of the B-to-X isomerization on the oligomer level.

Adenine Nucleotides↗

Destabilization of the duplex and the high-salt Z-form of poly(dG-methyl5dC) by substitution of ethyl for the 5-methyl group.

The B-to-Z conformational transition of poly(dG-dC) is highly promoted by 5-methyl substitution of the dC moiety, i.e. in poly(dG-methyl5dC). By the synthesis of a new poly(dG-dC) analogue, poly(dG-ethyl5dC), the effect of a longer alkyl-chain substituent of dC on structure and conformation has been studied with ultraviolet absorption melting profiles and circular dichroism spectroscopy. The 5-ethyl substituent in poly(dG-ethyl5dC) destabilizes the duplex structure against thermal denaturation compared with both poly(dG-methyl5dC) and poly(dG-dC). C.d. studies also reveal that for the high-salt B-Z transition of poly(dG-ethyl5dC) a higher NaCl concentration is required than for that of poly(dG-methyl5dC), although much lower than for poly(dG-dC). However low-salt Z-DNA in poly(dG-ethyl5dC) shows unique features, e.g. it needs no divalent cations to be stable. The low-salt B-Z transition of poly(dG-ethyl5dC) can also be observed by the absorption-temperature melting profile, in contrast to both poly(dG-methyl5dC) and poly(dG-dC). The effects of MgCl2 concentration, temperature, acid pH and trifluorethanol on the conformation of poly(dG-ethyl5dC) have also been determined.

Circular Dichroism↗

Circular dichroism studies of salt- and alcohol- induced conformational changes in cyanophage S-2L DNA which contains amino 2 adenine instead of adenine.

DNA molecules containing AT pairs exhibit cesium cation specific conformational behavior. This specificity is shown to be cancelled with the title DNA, which not only concerns its conformational alterations in high-salt aqueous solutions but also the B-to-A transition induced by ethanol. S-2L DNA easily adopts the A-conformation in the presence of millimolar concentrations of CsCl which completely destabilize the A-conformation in calf thymus DNA. The present results demonstrate that the specific effects of cesium cations on DNA are connected with their binding to the AT pairs in the DNA minor groove.

Adenine↗

Alkyl substituent in place of the thymine methyl group controls the A-X conformational bimorphism in poly(dA-dT).

Circular dichroism studies of a family of poly(dA-y5dU) polynucleotides (y = H, methyl, ethyl, propyl, butyl or pentyl) were conducted in water-alcohol solutions containing sodium or cesium counterions. The polynucleotides denatured or adopted A- or X-DNA double helices depending on the concentration and type of alcohol, type of counterions and the length of the aliphatic substituent in place of the thymine methyl group. Short aliphatic substituents and sodium cations favored A-DNA while long aliphatic substituents and cesium cations promoted X-DNA. This study demonstrates delicacy of the conformational equilibrium of poly(dA-dT) between the A- and X-DNA double helices which depends on both intramolecular and intermolecular factors.

Alkylation↗

Propeller-twisted adenine.thymine and guanine.cytosine base pairs tend to buckle and stagger in opposite directions.

Base pairs are propeller-twisted, buckled and staggered in DNA fragment crystals. These deformations were analyzed with isolated Watson-Crick base pairs using empirical potentials and buckle was found to almost linearly correlate with propeller. Interestingly, the thymine.adenine pair favours negative buckling for propellers mostly observed in DNA crystals while positive buckling is preferred by the cytosine.guanine pair. The propeller also induces opposite staggers in the adenine.thymine and guanine.cytosine base pairs.

Base Composition↗

Mutual backbone phosphate group interactions promote DNA double helix bending at high salt concentrations in solution.

Results of free energy calculations connected with the backbone phosphate group interactions upon local bending and helical twist modifications of A-, B- or Z-DNA at high salt concentrations have been reported recently (Jursa and Kypr 1990). Here we calculate energies necessary for DNA bending, using three models based on experimentally determined persistence length values. A comparison of energies following from the two quite different approaches suggests that high salt concentrations induce A- and mainly B-DNA bending into the double helix minor groove at least up to 10 degrees.

DNA↗