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V A Tereshko

Publications and source records attributed to V A Tereshko.

5 recordsLinked to original sources

Phase diagrams for DNA crystallization systems.

Phase diagrams for several oligonucleotide duplex-spermine systems have been constructed. These diagrams characterize the duplex and spermine concentrations ranges in which crystalline precipitates are formed. All of them are wedge-like form. The slope of the upper branch of the diagram is determined by the oligonucleotide length. The position of the lower branch depends on both the nucleotide sequence and its length. The position of the lower branch depends on both the nucleotide sequence and its length. It has been shown that the addition to the system of MgCl2 and NaCl salts and MPD results in specific changes in the diagrams. A model for oligonucleotide duplex-spermine system has been suggested which explains the main characteristic features of the obtained phase diagrams. The experimental phase diagrams for the (pGpT)n (pApC)n-spermine system (n = 2,3,4) have been analyzed ion terms of this model and the values of the binding constants of spermine and Mg2+ ions binding to duplexes have been determined. It permitted to identify the complexes that precipitated in different regions of the phase diagrams under various conditions. The diagram obtained in the presence of a cobalt hexammine counterion is also considered. It has been shown that this phase diagram, in general, is similar to those obtained for the oligonucleotide duplex-spermine system.

Chemical Phenomena↗

[New packing of B-DNA in crystals].

Two crystal forms of the self-complementary tetramer GpGpCpC have been obtained by phase diagram technique: P6(2)22/P6(4)22. a = b = 67.7 A, c = 105.6 A and P3(2)12/P3(1)12, a = b = 116.9 A. c = 116.4 A. Both crystals form diffract at least up to 3.2 A. Diffraction patterns of both crystal forms have strongest base-stacking reflections corresponding to the Bragg spacing 3.38 A which is typical for B-DNA. Moreover the self-rotation function of the first crystal form shows regular located two-fold pseudo-axes periodicity of which also indicates that this is B-conformation. The same conclusion can be reached on the basis of the crystal packing of the duplexes in the unit cell. It should be emphasized that this is a new example of B-DNA crystal packing.

Crystallization↗

[Use of phase diagrams in crystallization of oligonucleotide duplexes. II. Setting of the crystallized samples].

Oligonucleotide crystallization technique based on the method of phase diagrams is described in detail with (pGpT)3.(pApC)3 hexamer as an example. The key point of the technique consists of dividing the multiparameter crystallization space into a set of regions, each of which corresponds to the precipitation of a duplex in complex with a certain number of counterions.

Crystallization↗

[The use of phase diagrams in the crystallization of oligonucleotide duplexes. I. A model of crystallization of the (pGpT)n.(pApC)n + spermine system].

A set of experimental phase diagrams revealing the region of existence of microcrystals in mixture "(pGpT)n.(pApC)n+spermine", n = 2,3,4, was obtained. All diagrams are wedge-like with the slope of the upper branch and the level of the lower one depending on the oligonucleotidd length. The presence of MPD, MgCl2 and NaCl changes the form of the diagrams in a different manner. A model explaining the peculiar features of the diagrams for mixture "oligonucleotide duplex+spermine" is proposed. The analysis of the diagrams was carried out on the basis of this model and the values of the binding constants for binding of spermine and Mg2+ to duplexes were estimated. Some conclusions about the types of complexes, which may form microcrystals in different regions of diagrams were made.

Binding Sites↗

[The length of DNA determines the degree of regularity of crystals of the cro-repressor complex].

The DNA-cro-repressor complex crystals have been obtained, five DNA fragments of the same nucleotide sequence and different length being used. The rotation function for crystals of complexes with hexamer (pGpT)3 . (pApC)3 and with octamer (pGpT)3 . (pApC)3 have been calculated. The order of cro-DNA complex crystals is shown to vary with DNA length, the crystal of the complex with octamer being the most perfect among all investigated complexes.

Base Sequence↗