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At least 19 recordsLinked to original sources

[Secondary structure of condensed DNA. wide-angle, small-angle x-ray scattering and circular dichroism].

Ethanol precipitated DNA shows a CD spectrum of the +psi-type which is similar to that of DNA in the A-form. DNA condensed with cetyl-trimethylammonium-bromide shows, depending on the condensation velocity, a CD spectrum of the -psi-type, or a CD spectrum only slightly modified from that of DNA in solution. The first spectrum is similar to that of DNA in the C-form, and the second one, to that of DNA in the B-form. Using large-angle X-ray scattering of the three DNA condensates and comparing them with the scattering curves calculated from the atom coordinates for the A-, B-, and C-form of DNA it is shown that the secondary structure of the DNA belongs in all three cases to the B-family. It follows from this result that the secondary structure of DNA alone does not determine the type of CD spectrum. The CD spectrum of condensed DNA is essentially determined by the supramolecular structures of the partially crystalline DNA condensates. These supramolecular structures can be demonstrated by the small-angle X-ray diagrams. The condensation of DNA by ethanol and cetyl-trimethylammonium-bromide proceeds in the form of a partial crystallization of the DNA.

Animals↗

Chromatin models. The ionic strength dependence of model histone-DNA interactions: circular dichroism studies of lysine-leucine polypeptide-DNA complexes.

The ionic strength dependence of the complexes between DNA and both random, (Lysx, Leuy)n, and block copolymers, (Lysx)n(Leuy)m, of lysine and leucine, with different amino acid compositions, was studied using circular dichroism (CD) as the probe to detect conformational differences in these complexes relative to native DNA. It was found that the CD spectra of complexes of both the random (Lys84, Leu16)n and block (Lys85)n(Leu15)m copolymers with DNA show a very sharp ionic strength dependence. The maximum altered CD spectrum for the complexes with the block copolymer was found to occur at the same ionic strength as that for poly(L-lysine)-DNA complexes, while the maximum CD change for the random copolymer complex occurred at a slightly lower ionic strength. This sharp dependence of the CD change on the ionic strength was found to be independent of the polymer/DNA ratio, r, for each individual copolymer. The CD spectra for these complexes at optimum NaCl concentration resemble those of the psi spectra of DNA [Jordan, C. F., Lerman, L.S., and Venable, J.H. (1972), Nature (London), New Biol. 236, 67]. The complexes of the random copolymer, (Lys68, Leu32)n, with DNA (r=0.25) at 0.15 M NaCl and below have CD spectra that resemble the A-form DNA spectra. The ionic strength dependence of the CD spectra of this complex is not as sharp as observed with the above polymers and has a broad positive plateau. It is suggested that both the CD spectra of these complexes reflect the phenomena of DNA condensation into a higher order asymmetric structure (folded and compact). The block copolymer, (Lys77)n(Leu23)m, complexes with DNA show very slight alterations in the CD spectra, with respect to native DNA. It appears that the long Leu sequence at one end of such copolymers may be unpropitious for causing the polypeptide-DNA complex to condense into a higher order asymmetric structure. Thus the importance of the distribution of hydrophobic residues, in the copolypeptides of Lys, is shown for causing condensation of complexes with DNA. The relevance of these findings to histone-DNA complexes in chromatin is discussed.

Binding Sites↗

NMR analysis of helix I from the 5S RNA of Escherichia coli.

The structure of helix I of the 5S rRNA from Escherichia coli has been determined using a nucleolytic digest fragment of the intact molecule. The fragment analyzed, which corresponds to bases (-1)-11 and 108-120 of intact 5S rRNA, contains a G-U pair and has unpaired bases at its termini. Its proton resonances were assigned by two-dimensional NMR methods, and both NOE distance and coupling constant information have been used to calculate structural models for it using the full relaxation matrix algorithm of the molecular dynamics program XPLOR. Helix I has A-type helical geometry, as expected. Its most striking departure from regular helical geometry occurs at its G-U, which stacks on the base pair to the 5' side of its G but not on the base pair to its 3' side. This stacking pattern maximizes interstrand guanine-guanine interactions and explains why the G-U in question fails to give imino proton NOE's to the base pair to 5' side of its G. These results are consistent with the crystal structures that have been obtained for wobble base pairs in tRNAPhe [Mizuno, H., & Sundaralingam, M. (1978) Nucleic Acids Res. 5, 4451-4461] and A-form DNA [Rabbinovich, D., Haran, T., Eisenstein, M., & Shakked, Z. (1988) J. Mol. Biol. 200, 151-161]. The conformations of the terminal residues of helix I, which corresponds to bases (-1)-11 and 108-120 of native 5S RNA, are less well-determined, and their sugar puckers are intermediate between C2' and C3'-endo, on average.

Base Composition↗

Effect of cross-linking on the secondary structure of DNA I. Cross-linking by photodimerization.

An investigation has been made into the effect produced by photo-induced pyrimidine cross-links upon the secondary structure of DNA. We have studied the effect of uv irradiation upon the B in equilibrium A transition in DNA brought about by a change of solvent from 70 to 80% ethanol. Circular dichroism (CD) was used to monitor the conformational changes. However, we first showed by means of laser Raman spectroscopy that CD is a reliable monitor of the conformational change, even though the DNA is aggregated in 80% alcohol solutions. It is suggested that this aggregation stabilizes the A form through lateral interaction between the helices. The uv irradiation experiments show that pyrimidine-dimer cross-links induced into the B-form DNA will lock it irreversibly into that conformation and prevent it from going to the A form in 80% EtOH solution. The A-form DNA can tolerate a few cross-links but converts cooperatively to the B form if a larger number of cross-links is introduced. Irradiation-induced pyrimidine cross-links create locally denatured regions in B-form DNA. Upon continued irradiation, the entire DNA moelcule becomes denatured.

Binding Sites↗

Crystal structure at 3.5 A resolution of HIV-1 reverse transcriptase complexed with an inhibitor.

A 3.5 angstrom resolution electron density map of the HIV-1 reverse transcriptase heterodimer complexed with nevirapine, a drug with potential for treatment of AIDS, reveals an asymmetric dimer. The polymerase (pol) domain of the 66-kilodalton subunit has a large cleft analogous to that of the Klenow fragment of Escherichia coli DNA polymerase I. However, the 51-kilodalton subunit of identical sequence has no such cleft because the four subdomains of the pol domain occupy completely different relative positions. Two of the four pol subdomains appear to be structurally related to subdomains of the Klenow fragment, including one containing the catalytic site. The subdomain that appears likely to bind the template strand at the pol active site has a different structure in the two polymerases. Duplex A-form RNA-DNA hybrid can be model-built into the cleft that runs between the ribonuclease H and pol active sites. Nevirapine is almost completely buried in a pocket near but not overlapping with the pol active site. Residues whose mutation results in drug resistance have been approximately located.

Azepines↗

[B-A transition of DNA in aqueous solutions of nonelectrolytes].

Circular dichroism spectra of DNA in ternary water-nonelectrolyte solutions (water--ethanol--isopropanol and water--ethanol--dioxane) show that the decrease in water content at various nonelectrolyte ratios leads to the transition of DNA from B- to A-form. Water activity values in B-A transition region were calculated. The transition takes place within the range of water activity and DNA conformations have been plotted on triangular diagrams.

Animals↗

Human autoantibody binding to multiple conformations of DNA.

Systemic lupus erythematosus and rheumatoid arthritis in humans are characterized by circulating and tissue fixed autoantibodies reactive with self antigens including nucleic acids and other nuclear components. Native calf thymus DNA (B-form), DNA.RNA hybrid (A-form), and left handed DNA (Z-form) were reactive with autoantibodies derived from SLE sera. Inhibition studies suggest that antibodies are recognizing multiple conformations presented by altogether different polymers and A- or Z-DNA might be the immunogenic stimulus for the production of antibodies cross reactive with native DNA.

Antibodies, Antinuclear↗

[Formation of the compact form of DNA in solution after reaction with spermidine].

The formation of compact particles from double-stranded DNA molecules in water-salt solutions containing spermidine was studied. It has been shown that in solutions of low ionic strength (0.01 M NaCl) DNA-spermidine complexes have the form of large particles which scatter UV-light. Electron micrographs show that such complexes formed at certain molar ratios spermidine/DNA may exist both as intermolecular aggregates and as toroidal particles 1500 A in diameter. The CD spectra of solutions containing DNA-spermidine complexes are characterized by the positive band (delta epsilon max = 10) at 265--270 nm. The appearance of the positive CD band may be caused by two factors: interaction between DNA and spermidine may lead to the alteration of the DNA secondary structure "in direction to A-form" or intermolecular aggregation, which may change the initial shape of the CD spectrum. The exclusion of spermidine molecules from DNA-spermidine complexes by Na+ ions in presence of poly(ethylene glycol) which occurs as the ionic strength increases from 0.01 to 0.3 does not lead to decompactization of DNA molecules but is accompained by the appearance of the intense negative CD band at 270 nm.

Chemical Phenomena↗

Stability and properties of double and triple helices: dramatic effects of RNA or DNA backbone composition.

Studies of a series of short oligonucleotide double and triple helices containing either all RNA, all DNA, or a mixture of the two show strand-dependent variation in their stability and structure. The variation in stability for both groups falls over a range of greater than 10 kilocalories per mole. In forming the triple helix, RNA is favored on both pyrimidine strands, whereas DNA is favored on the purine strand. In general, relatively unstable duplexes form particularly stable triplexes and vice versa. Structural data indicate that the strands in hybrid helices adopt a conformation that is intermediate between molecules containing all DNA and all RNA. Thus, RNA-DNA hybrids were not forced into the conformation of the RNA (A-form). The provocative stability of the triplex with an RNA third strand+DNA duplex points to novel antisense strategies and opens the possibility of an in vivo role of these structures. Overall, the data emphasize the fundamental role of sugars in determining the properties of nucleic acid complexes.

Base Sequence↗

Errors in RNA NOESY distance measurements in chimeric and hybrid duplexes: differences in RNA and DNA proton relaxation.

Nuclear magnetic resonance experiments reveal that the base H8/H6 protons of oligoribonucleotides (RNA) have T1 relaxation times that are distinctly longer than those of oligodeoxyribonucleotides (DNA). Similarly, the T1 values for the RNA H1' protons are approximately twice those of the corresponding DNA H1' protons. These relaxation differences persist in single duplexes containing covalently linked RNA and DNA segments and cause serious overestimation of distances involving RNA protons in typical NOESY spectra collected with a duty cycle of 2-3 s. NMR and circular dichroism experiments indicate that the segments of RNA maintain their A-form geometry even in the interior of DNA-RNA-DNA chimeric duplexes, suggesting that the relaxation times are correlated with the type of helix topology. The difference in local proton density is the major cause of the longer nonselective T1s of RNA compared to DNA, although small differences in internal motion cannot be completely ruled out. Fortunately, any internal motion differences that might exist are shown to be too small to affect cross-relaxation rates, and therefore reliable distance data can be obtained from time-dependent NOESY data sets provided an adequately long relaxation delay is used. In hybrid or chimeric RNA-DNA duplexes, if the longer RNA relaxation times are not taken into account in the recycle delay of NOESY pulse sequences, serious errors in measuring RNA proton distances are introduced.

Base Sequence↗

[Investigation of the structure of magnesium and lithium salts of T2 phage DNA by the method of x-ray diffraction. The possible mechanisms of the participation of cations in the structural transformation of double-stranded DNA].

The secondary structure of DNA is known to be largely determined by the kind of counterion bound to it. We have used the X-ray diffraction method to study the structure of magnesium and lithium salts of T2 phage DNA in oriented fibres. The structural behaviour of this glucosylated DNA in the form of magnesium and lithium salts was shown to be identical to the behaviour of the same salts of "normal" calf thymus DNA throughout the studied range of relative humidities (44-95%). However these two DNAs in the form of sodium salt are known to behave quite differently. One can presume that Mg2+ and Li+ influence the structural behaviour of double-stranded DNA so effectively as to be able to "ignore" the fact that T2 phage DNA contains glucoside residues. The results of this work and the already known facts concerning the structure of DNA in the form of various cation salts (in solution and in "solid" fibres) indicate that the structural behaviour of double-stranded DNA is mainly determined by the cation located in the region of the narrow groove of the double helix. If cations are graded according to the efficiency of their influence on the structural behaviour of DNA in fibres, the scale will coincide with that of their DNA-binding strength in water solution, that is: Mg2+ greater than Li+ greater than Na+ greater than K+ greater than Rb+. A qualitative consideration of electrostatic interaction between the cations and the negatively charged DNA strands leads one to suppose that this interaction must obstruct the transition of individual DNA molecules from the B-form to the A-form. Aggregation of self-aggregation of DNA molecules is presumed necessary to enable them to adopt the A-conformation.

Cations, Monovalent↗

[Conformational transition within the A-form of complementary nucleic acids in solution].

Circular dichroic spectra of A-DNA in 78% ethanol and of tRNA in water and ethanol solutions have been studied at different concentrations of NaCl. An increase in the Na+ concentration from 0.5.10(-4) M to 5.10(-4) M results in a shift of the positive CD band at 264 nm of the A-DNA to a longer wavelength, 272 nm. Simultaneously, the magnitude of the 210 nm band decreases. By contrast in the case of tRNA in water solution an increase in NaCl content results in straight opposite shifts of the CD spectra. This opposite behaviour is shown to the due to a difference in ions effects in water and water-ethanol solutions, since tRNA in the ethanol solution behaves in the same way as A-DNA does in 78% ethanol. We suppose that in aqueous solution in increase in the cation concentration would stabilize the helical conformations with progressively decreasing narrow groove, i. e. more wound. At a high concentration of ethanol (60--80%) the formation of specific complex between the hydrated cations and the double-stranded regions should be taken into consideration. Thus, the hydrated cations may insert into the deep groove exerting the opposite effect of unwinding.

Circular Dichroism↗

The interaction of adriamycin and adriamycin analogues with nucleic acids in the B and A conformations.

The reinforced intercalative binding to DNA typical of adriamycin and daunomycin can still occur if there is epimerisation at C4' or if the O-methyl group is lost or if the 9-substituents are deleted or if the 4'-hydroxyl group is lost. In the latter two cases however, there is a reduction in affinity for the DNA, supporting the suggested role of the 9-hydroxyl and 4'-hydroxyl groups in secondary stabilization of the complex. Epimerisation at C-1' or at C-3' alters but does not abolish the intercalative mode of binding to DNA whereas epimerisation at C-7 precludes intercalation of the chromophore into the helix of DNA. In contrast to the interaction with the B-form found in DNA, the parent drugs do not intercalate into nucleic acids possessing the A-conformation and none of the above-mentioned structural changes will allow intercalation into A-form nucleic acids.

DNA↗

Protonated polynucleotides structures - 22.CD study of the acid-base titration of poly(dG).poly(dC).

The acid-base titration (pH 8 --> pH 2.5 --> pH 8) of eleven mixing curve samples of the poly(dG) plus poly(dC) system has been performed in 0.15 M NaCl. Upon protonation, poly(dG).poly(dC) gives rise to an acid complex, in various amounts according to the origin of the sample. We have established that the hysteresis of the acid-base titration is due to the non-reversible formation of an acid complex, and the liberation of the homopolymers at the end of the acid titration and during the base titration: the homopolymer mixtures remain stable up to pH 7. A 1G:1C stoichiometry appears to be the most probable for the acid complex, a 1G:2C stoichiometry, as found in poly(C(+)).poly(I).poly(C) or poly(C(+)).poly(G).poly(C), cannot be rejected. In the course of this study, evidence has been found that the structural consequences of protonation could be similar for both double stranded poly(dG).poly(dC) and G-C rich DNA's: 1) protonation starts near pH 6, dissociation of the acid complex of poly(dG).poly(dC) and of protonated DNA take place at pH 3; 2) the CD spectrum computed for the acid polymer complex displays a positive peak at 255 nm as found in the acid spectra of DNA's; 3) double stranded poly(dG).poly(dC) embedded in triple-stranded poly(dG).poly(dG).poly(dC) should be in the A-form and appears to be prevented from the proton induced conformational change. The neutral triple stranded poly(dG).poly(dG).poly(dC) appears therefore responsible, although indirectly, for the complexity and variability of the acid titration of poly(dG).poly(dC) samples.

Circular Dichroism↗

[DNA-dependent RNA polymerase activity of isolated zooflagellates (Crithidia oncopelti) nucleoli].

A fraction of nucleoli is isolated from zooflagellates (Crithidia oncopelti) nuclei, its DNA-dependent RNA polymerase activity is studied at different temperature, ionic strength and Mg2+, Mn2+ and antibiotic concentrations. The effect of some factors and alpha-amantine on RNA polymerase activity of exonucleolar chromatin was studied as a control. A comparison of heat denaturation of nucleoli and chromatin RNA polymerase activities within the temperature range 30--55 degrees C has revealed a higher thermosensitivity of nucleoli RNA polymerase. Substitution of Mg2+ with equivalent amount of Mn2+ results in a considerable decrease of rRNA synthesis in nucleoli. Nucleoli RNA polymerase activity in the presence of Mg2+ is sensitive to the elevation of ionic strength from 0.12 to 1.30 u; chromatin RNA polymerase activity in the presence of Mn2+ is maximal at high ionic strength (1.30 mu). alpha-Amantine and cycloheximide at high concentrations (10 and 200 mkg/ml) practically do not affect RNA polymerase activity of nucleoli. Nucleoli RNA polymerase of zooflagellates (Crithidia oncopelti) is similar to the A-form of the enzyme in higher eukaryotes.

Amanitins↗

[Study of the relationship between secondary DNA strucure and base sequence by the technic of theoretical conformational analysis].

An investigation of double-stranded polynucleotide conformations using the algorithm for exclusion of redundant dihedral angles and flexible sugar unit has been performed. The fragment of DNA including three nucleotide pairs was taken into account for polynucleotides poly[d(A--T)].poly[d(T--A)], poly[d(G--C)].poly[d(C--G)], poly(dA).poly(dT) and poly(dG).poly(dC). The resulting structures being energetically optimal have helical parameters corresponding to X-ray experimental values for A- and B-forms. It was revealed that B-form is the most energetically favorable structure, therefore the earlier conception that water is of importance for B-form stabilisation may be revised. Relative stabilities of B- and A-forms depend upon base sequence because unequal contributions of the stacking and backbone energy in whole potential energy of the structrues with different sequences.

Base Sequence↗

A kinetic study of 1H leads to 3H exchange in C(8) H-groups of purinic residues in DNA.

The kinetic study of 1H leads to 3H exchange in C(8) H-groups of purinic residues of DNAs with different G-C content as well as in corresponding dNMP mixtures have been carried out. The present results show that 1H--3H exchange in DNA is retarded (as compared to the exchange in dNMP mixtures) to a lesser extent (Kret =2.4-2.8) than in RNA (Kret=6-8). The degree of retardation in these polymers is practically independent of their nucleotide composition. Assuming the ylide mechanism of exchange reaction it is suggested that the lower rate of 1H leads to 3H exchange in C(8) H-groups of purinic residues in polynucleotides of A-form (RNA and other polyribonucleotides) as compared to those of B-form (DNA and other polydeoxyribonucleotides) might be accounted for by decreased availability of C(8) H-groups for OH-ions of the solvent due to a different microenviroment of these groups in A- and B-type helixes.

DNA↗

On the flexibility of the boundaries between the A-form and B-form sections in DNA molecule.

The degree of orientation of DNA in a flow has been studied within the interval of the B - A transition induced by ethanol. The orientation of the B DNA (60-65% ethanol, v/v) and that of the A DNA (80-82% ethanol) are nearly identical. This means that both conformations have similar persistence lengths and that there is no aggregation in the course of formation of the A form. Within the transition range (65-78% ethanol) the orientation attains a sharp minimum which coincides with the half-transition point (73% ethanol). The cooperative character of the B - A transition presupposes the existence of boundaries between the alternating sections of the A and B conformations that may entail an increased flexibility of the DNA molecule and a corresponding drop of orientation. Theory predicts an elliptical dependence of the number of boundaries on the proportion of the A form. The experimental degree of orientation follows the same pattern. Quantitative evaluation shows that the flexibility of a boundary is small, so that several dozen of boundaries are required to simulate free rotation.

Chemical Phenomena↗