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Fedoroff OYu

Publications and source records attributed to Fedoroff OYu.

8 recordsLinked to original sources

Structural variation among retroviral primer-DNA junctions: solution structure of the HIV-1 (-)-strand Okazaki fragment r(gcca)d(CTGC).d(GCAGTGGC).

The three-dimensional solution structure of the hybrid-chimeric duplex r(gcca)d(CTGC).d(GCAGTGGC) has been determined by two-dimensional NMR, restrained molecular dynamics (rMD), and NOE back-calculation methods. This chimera, consisting of a chimeric RNA-DNA strand and its complementary DNA strand, is formed after priming (-)-strand DNA synthesis by tRNA(Lys3) and subsequent (+)-strand DNA synthesis by reverse transcriptase and is an obligatory intermediate in the formation of double-stranded DNA prior to HIV-1 retrovirus integration. The duplex consists of two different types of double helix: a hybrid form (H-form) and a B-form structure connected by a junction. It is chemically similar to several other Okazaki fragments whose structures have been previously determined in our laboratory. However, some structural parameters are not the same and were found to be sequence dependent. In particular, the sugar conformations at the DNA base pair proximal to the hybrid segment vary from O4'-endo to C2'-endo depending on the base composition. The position of the transition from the relatively wide groove of H-form to the narrow groove of B-form is also sequence dependent, occurring either exactly at the RNA-DNA junction or within the purely DNA segment of the chimera-as is the case in the structure of the present HIV-1 (-)-strand primer. This structural change produces a kink at the DNA-DNA step adjacent to the RNA-DNA junction in the HIV-1 (-)-strand primer. The sequence dependence of structures of RNA-DNA chimeric duplexes may be responsible for the variable cleavage pattern of different Okazaki fragments by reverse transcriptase RNase H.

Base Composition↗

The solution structure of the r(gcg)d(TATACCC):d(GGGTATACGC) Okazaki fragment contains two distinct duplex morphologies connected by a junction.

Okazaki fragments are important intermediates in DNA replication. Chimeric duplexes that are structurally equivalent to Okazaki fragments also occur during reverse transcription of RNA retroviruses. Such duplexes consist of an RNA-DNA chimeric strand base-paired to a pure DNA strand; hence they have a hybrid duplex "left half" covalently linked to a "right half" that is pure DNA. We have determined the solution structure of the synthetic Okazaki fragment r(gcg)d(TATACCC):d(GGGTATACGC) by means of two-dimensional NMR, restrained molecular dynamics and full relaxation matrix simulation of the two-dimensional nuclear Overhauser effect spectra at various mixing times. The large negative x-displacement and large positive inclination in the hybrid section of the duplex are structural characteristics similar to those found in pure hybrid duplexes. However, the DNA sugar puckers and the width and depth of the minor groove in the pure DNA section are more like B-form DNA, especially beyond the junction. Thus, this Okazaki fragment duplex assumes a conformation in solution that is a chimeric mixture of hybrid-form (H-form) and B-form structures and the overall molecule cannot be classified as either an A-form or a B-form duplex. The co-existence of these two different conformations in a single duplex gives rise to a structural discontinuity with a bend of approximately 18.1 (+/- 0.4) degrees at the junction between the hybrid and DNA segments that may be important for reverse transcriptase binding and RNase H cleavage of such molecules. Despite the fact that the solution structure is quite different from the all A-form structure reported recently for the exact same molecule in the crystalline state, a surprising number of local helical parameters were found to be quite similar to those reported for the crystal structure.

Base Sequence↗

Sequence dependence of DNA structure in solution.

Sequence-dependent structural variations in DNA can influence its binding by ligands and proteins. However, relatively little is known about sequence-structure relationship for arbitrary DNA sequences. The 1H two-dimensional NOESY data presented here for ten oligonucleotide duplexes show pronounced sequence-dependent changes in at least two types of internucleotide distances commonly used in sequential connectivity assignments, namely the H-6/H-8 to preceding (5') H-1' distance (S1) and the H-6/H-8 to preceding (5') H-2'' distance (S2). On the basis of these two measured distances, all dinucleotide steps can be divided into four different groups: Y-R, R-Y, R-R and Y-Y, where R is purine and Y is pyrimidine. These data suggest some rules for the variation in these distances along DNA duplexes. Correlations between these distances and helical parameters of DNA are discussed in comparison to well-resolved X-ray structures of B-type DNA.

Base Sequence↗

Structure of a DNA:RNA hybrid duplex. Why RNase H does not cleave pure RNA.

The solution structure of the DNA:RNA hybrid duplex d(GTCACATG):r(caugugac) has been determined by means of two-dimensional nuclear Overhauser effect (2D-NOE) spectra, restrained molecular dynamics and full-relaxation matrix stimulation of the 2D-NOE spectra. The DNA:RNA hybrid duplex assumes neither an A-form nor a B-form structure in solution, but an intermediate heteromerous duplex structure. The sugars of the RNA strand have a normal N-type C3'-endo conformation, but the DNA strand sugars have neither N-type nor S-type conformations; instead, they have an unexpected intermediate O4'-endo conformation. The negative x-displacement, as well as the small rise and positive inclination of the base-pairs, resembles A-form morphology but the minor groove width is intermediate between that of A-form and B-form duplexes. Both the DNA and RNA strands show prominent sequence-dependent variations in their helical parameters. Combined analysis of NOE and J-coupling data indicates that the DNA sugars are not in a dynamical two-state equilibrium. The detailed three-dimensional structure of this DNA:RNA hybrid molecule leads to a proposed model for its interaction with RNase H. Several specific structural features of the enzyme complexed with the hybrid duplex appear to explain the mechanism whereby RNase H discriminates between DNA:RNA hybrid duplexes and pure RNA:RNA duplexes.

Base Sequence↗

Investigation of solution structure of d(GAATTTAAATTC)2 by 1H NMR, molecular dynamics, mechanics, refinement by back-calculation of the NOESY spectrum and analysis of this structure using X-ray data.

1H NMR spectroscopy, restrained molecular mechanics and dynamics and refinements after back-calculation of the NOESY spectrum have been performed to study the structure of the d(GAATTTAAATTC)2 duplex and to determine whether it is bent or not. It is found that the duplex adopts a B-type conformation; all sugar conformations belong to the C2' endo region and purines have a larger pseudorotation angle as compared to pyrimidines. The cross-strand AH2(n)-AH1' (m + 1) distance (where (n) and (m) are complementary residues), crucial for an anomalous A/T tract structure, is large on the TA step and gradually decreases at the 3' and 5' ends of the TTTAAA tract and follows the rules proposed previously [Chuprina, V.P., Lipanov, A.A., Fedoroff, O.Yu, Kim, S.G., Kintanar, A., and Reid, B.R., Proc. Natl. Acad. Sci. U.S.A. 88, 9087 (1991)]. The changes in this distance correlate with those in the T1 value for AH2 protons which we measured for several oligonucleotide sequences. A total number of about 250 interproton distance constraints were determined from NOESY spectra and were used for structure determination by molecular mechanics, dynamics and refinement by back-calculations. It is shown that these data are not enough to determine whether the duplex is bent or not. The whole family of B-type conformations including bent and straight structures fit well with the available NMR data. In principle, additional non-NMR data could be used in order to reduce the number of the allowable structures. The refinement of the structures with additional different non-NMR constraints (used as a driving force) on P-P or H1'-H1' minor groove width distances in the TA region shows a very good correlation between these distances and the angle of bending of the dodecamer. The more the minor groove width increases in the TA region the more the duplex is bent at the major groove of this region. On the other hand, there is also a very good correlation between P-P, H1'-H1' and AH2-H1' cross-strand distances as follows from analysis of X-ray B-type structures. These two correlations, together with the increased AH2-H1' cross-strand NMR distance in the TA region of the dodecamer indicate that the duplex should be characterized by a wider minor groove in the TA region and be bent in the major groove in this region.

Base Sequence↗

Base dependence of B-DNA sugar conformation in solution and in the solid state.

Analysis of 1H-NOESY solution data for eight short DNA duplexes has revealed pronounced differences between the sugar conformations of purine and pyrimidine nucleotides. It was found that the H1'-H4' interproton distance is less than ca. 3.0 A in pyrimidine sugars, while in purine sugars it is more than ca. 3.0A. This difference has been analyzed by comparison with the sugar conformations of highly resolved B-DNA crystal structures and model sugar conformations. The conclusion can be drawn that the deoxyribose conformation is of the general C2'-endo type but pyrimidine sugars are characterized by smaller phase angles of pseudorotation P (90 degrees < P < 150 degrees), while purine sugars have larger P values that are greater than ca. 140 degrees (140 degrees < P < 180 degrees). There is no such clear base dependence of sugar conformation in highly resolved B-DNA crystal structures; however the similar trend can be seen as in the solution studies. Based on B-type DNA crystal structures, J-coupling constants have been calculated, and the applicability of experimental coupling measurements to the determination of sugar conformation is discussed.

Base Sequence↗

Sequence effects on local DNA topology.

Nuclear Overhauser effect-derived distances between adenine H2 protons and anomeric H1' protons on the same strand or on the complementary strand are presented for several different DNA duplexes. The cross-strand (n)AH2 to (m + 1)H1' distances [designated as x, where (n) and (m) are complementary residues] vary by up to 1 A depending on the sequence. In all possible A-containing pyrimidine-purine steps (CA, TG, and TA), x is greater than 4.5 A. In GA steps, x varies within rather wide limits in the range 3.8-4.5 A, whereas in AA steps the lower limit is 3.7 A and the upper limit is approximately 4.2 A. In purine-purine steps, x is affected by at least three factors: (i) adjacent pyrimidine-purine steps at the 5' end [e.g., YRA sequences (where Y = T or C and R = G or A)], or a pyrimidine-purine step at the 3' end of the pyrimidine-pyrimidine step on the complementary strand, cause x to increase, (ii) an AT step at the 3' end of a purine-purine step (e.g., RAT) causes x to decrease, and (iii) substitution of bases at the next-nearest neighbor position leads to changes in x at GA and AA steps. The latter factor seems to be due to a cooperative effect arising from formation of the "anomalous" B' structure when the substitution produces an AnTm tract (which always produces a decrease in x). The data indicate that (n)AH2-(n + 1)H1' distances on the same strand (designated as s) are also sequence dependent. Thus on AA steps, neighboring substitutions produce the same effect on s as on the cross-strand x distances. The results lead to the ability to predict changes in AH2-H1' distances depending on the DNA sequence. By using high-resolution x-ray B-type structures as a set of allowable B conformations, a very good correlation was found between x and the minor groove width parameters P-P or H1'-H1'. Thus, the x distances are a direct probe of the minor groove width in B-type DNA, and changes in this distance therefore reflect changes in the minor groove width. Since many of the sequences studied are sites of protein recognition, the observed sequence-structure dependence in DNA probably plays an important role in the process of recognition by proteins and minor groove ligands such as drugs.

Base Sequence↗

New insights into the structure of An tracts and B'-B' bends in DNA.

Energy calculations suggest that the currently available NOE distance constraints for An tracts in DNA are incapable of distinguishing between structures with a narrowed minor groove arising from a large propeller twist with a small inclination or from a small propeller twist with a large negative inclination. Furthermore, analysis of published data, together with energy estimations, strongly argue against bifurcated hydrogen bonding between A and T residues being the cause of the anomalous structural properties of An tracts. A conformational analysis of the B'-B' junction has been performed in which a single variable base pair has been inserted between two regions of B' structure. We have calculated low-energy structures for AnGAn,AnCAn,AnTAn,AnCTn, and TnCAn duplexes, where the An and Tn tracts were fixed in the anomalous B' conformation. Upon optimization, all these structures were found to contain a pronounced roll-like bending into the major groove at the site of the insertion. The important factors in the formation of these B'-B' bends are the destruction of the B' conformation and the concomitant widening of the minor groove at the junction region in order to reduce minor groove interstrand base clashes and improve interstrand stacking energy. If the B' conformation has strong negative inclination, the improved intrastrand stacking energy also contributes to the bending. In calculations of duplexes with An and Tn tracts in the B conformation instead of B', the bending disappears.

Base Sequence↗