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Biomedical subjects

D G Alexeev

Publications and source records attributed to D G Alexeev.

6 recordsLinked to original sources

Patterson methods in fibre diffraction analysis.

The potential of the Patterson methods for X-ray diffraction studies of textures is examined in DNA fibres. Patterson analysis, which is rarely used in these situations, is shown to yield important information on the preliminary interpretation of diffraction patterns and to increase the reliability of the three-dimensional structural pattern obtained for polymeric molecules. We also show how the screw symmetry of helical molecules can be used to calculate their electron density by means of the three-dimensional Patterson function.

DNA

Bh-DNA: variations of the poly[d(A)].poly[d(T)] structure within the framework of the fibre diffraction studies.

A refinement of the recent results for poly[d(A)].poly[d(T)] (Alexeev et al., J. Biomol. Struct. Dyn. 4,989 (1987)) involving additional parameters of the base-pair structure and of the sugar-phosphate backbone expands the conformational potential of this polynucleotide of the B type to include the possibility of bifurcated hydrogen bonds of the kind recently discovered in crystalline deoxyoligonucleotide with lone d(A)n.d(T)n stretch (Nelson et al., Nature 330, 221 (1987)). Still, analysis of the available data and energy calculations do not seem to indicate that the bifurcated H-bonds are a crucial factor responsible for the anomalous structure of the d(A)n.d(T)n sequence. The unique structural properties of poly[d(A)].poly[d(T)] can hardly be explained without taking into account its interactions with the double-layer hydration spine in the minor groove. In view of the hydration mechanism stabilizing poly[d(A)].poly[d(T)] and of the polynucleotide's heteronomous prehistory (Arnott et al., Nucleic Acids Res. 11,4141 (1983)) we suggest that this B-type structure be called Bh.

Base Composition

EXAFS studies of the calcium salts of natural DNA and polydA:polydT.

Preliminary EXAFS experiments were carried out on film of the Ca salts of the synthetic polynucleotide polydA:polydT at 95%, 81%, and 76% relative humidity (r.h.) and for the Ca salt of chicken erythrocyte DNA at 81% r.h. (approximately 43% GC pairs). Detailed analysis of EXAFS data shows that the Ca2+ ion is in fairly close proximity (within 4 A) to a number of phosphorous atoms. This is in contradiction with the recently proposed model, which assumes a close coordination between the cations and the purine and pyrimidine bases deep inside the polynucleotide molecule, so that the distance to the nearest phosphorous atoms must not be less than 5 A. Instead, the EXAFS results suggest that the Ca2+ ions are, for the most part, located at the periphery of individual polydA:polydT (or DNA) molecules, possibly serving as intermolecular links.

Animals

The structure of poly(dA).poly(dT) as revealed by an X-ray fibre diffraction.

X-ray diffraction in fibres revealed that the calcium salt of poly(dA).poly(dT) is a 10-fold double helix with a pitch of 3.23 nm. The opposite sugar-phosphate chains in the refined model are characterized by a complete conformational equivalence and contain sugars in a conformation close to C2'-endo. As a result a new model of the sodium salt of poly(dA).poly(dT) has been constructed, which is different from the Heteronomous DNA proposed earlier (S. Arnott et al., Nucl. Acids Res. 11, 4141 (1983)). The new model of Na-poly(dA).poly(dT) has conformationally similar opposite chains; it is a structure of the B-type, rather like that of Ca-poly(dA).poly(dT).

Calcium

Study of DNA films by the CD, X-ray and polarization microscopy techniques.

DNA films with psi +/- CD spectra have been investigated. X-ray analysis has shown the sign of the psi spectra to be independent of the secondary structure of DNA. The appearance of the psi spectra is attended by the formation of a characteristic polygonal texture of the cholesteric type in the DNA film.

Animals

Poly(dA).poly(dT) is a B-type double helix with a distinctively narrow minor groove.

The structure of poly(dA).poly(dT) currently arouses great interest, mainly because dAn.dTn stretches are associated with considerable DNA bending. Until recently the heteronomous DNA described by Arnott et al., with the poly(dA) and poly(dT) chains in A and B conformations respectively, was the only detailed model of this structure. Following our earlier studies of the interaction of DNA and monovalent ions, we examined the X-ray diffraction of the bivalent Ca2+ salt of poly(dA).poly(dT) (Ca-poly(dA).poly(dT)) and found no sign of a heteronomous structure: Ca-poly(dA).poly(dT) in fibres shows fully equivalent B-type conformations of the opposite sugar-phosphate chains. A revision of the structure of the sodium salt, Na-poly(dA).poly(dT), based on this result, yields only a slightly heteronomous structure with each chain in a B-type conformation, which is in much better agreement with the experimental data underlying the original heteronomous model. Both structures, Ca- and Na-poly(dA).poly(dT), have a minor groove narrower than that of the B form: this peculiarity seems to be very important for the interaction of poly(dA).poly(dT) and biologically significant molecules (including proteins and antibiotics). The specific base-pair positions in poly(dA).poly(dT) may account for the DNA bending adjacent to dAn.dTn tracts.

Calcium