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S N Khrapunov

Publications and source records attributed to S N Khrapunov.

At least 19 recordsLinked to original sources

Electrostatic contribution to the bending of DNA.

A model is derived that accounts for the short-range electrostatic contribution to the bending of DNA molecule in solution and in complexes with proteins in terms of the non-linear Poisson-Boltzmann equation. We defined that the short-range electrostatic interactions depend on the changes of the polyion surface charge density under deformation, while the long-range interactions depend on the bending-induced changes in distances between each two points along the polyion axis. After an appropriate simplification of the Poisson-Boltzmann equation, the short-range term is calculated separately giving the lower limit for the electrostatic contribution to the DNA persistence length. The result is compared with the theoretical approaches developed earlier [M. Fixman, J. Chem. Phys. 76 (1982) 6346; M. Le Bret, J. Chem. Phys. 76 (1982) 6243] and with the experimental data. The conclusion is made that the results of Fixman-Le Bret, which took into account both types of the electrostatic interactions for a uniformly bent polyion, give the upper limit for the electrostatic persistence length at low ionic strength, and the actual behavior of the DNA persistence length lies between two theoretical limits. Only the short-range term is significant at moderate-to-high ionic strength where our results coincide with the predictions of Fixman-Le Bret. The bending of DNA on the protein surface that is accompanied by an asymmetric neutralization of the DNA charge is also analyzed. In this case, the electrostatic bending energy gives a significant favorite contribution to the total bending energy of DNA. Important implications to the mechanisms of DNA-protein interactions, particularly in the nucleosome particle, are discussed.

Journal Article↗

Mechanisms of stabilizing nucleosome structure. Study of dissociation of histone octamer from DNA.

The influence of ionic strength on DNA-histone and histone-histone interactions in reconstituted nucleosomes was studied by measuring the parameters of histone tyrosine fluorescence: fluorescence intensity and lambda(max) position. The first parameter is sensitive to histone-DNA interactions. The changes of the second one accrue due to hydrogen bond formation/disruption between tyrosines in the histone H2A-H2B dimer and the (H3-H4)2 tetramer. The simultaneous measurement of these parameters permits the recording of both the dissociation of histone complexes from DNA, as well as changes in histone-histone interactions. As ionic strength is increased, the H2A-H2B histone dimer dissociated first, followed by dissociation of the (H3-H4)2 tetramer [Yager, T.G., McMurray, C.T. and Van Holde, K.E. (1989) Biochemistry 28, 2271-2276]. The H2A-H2B dimer is dissociated in two stages: first, the ionic bonds with DNA were disrupted, followed by the dissociation of the histone dimer from the tetramer. And secondly, the disruption of dimer-tetramer specific H-bonds. It was established that the energy of electrostatic interactions of the histone dimer with DNA within the nucleosome is much less than the energy of interaction of the histone dimer with the tetramer.

DNA↗

Translational positioning of nucleosomes on DNA: the role of sequence-dependent isotropic DNA bending stiffness.

A model has been derived that accounts for the nucleosome translational position in terms of the bending free energy that depends on the nearest-neighbor interactions between base-pairs. The available data on the nucleosome positioning on defined DNA sequences in the reconstituted systems have been analyzed. It has been shown that the model allows one to predict the preferred nucleosome translational positioning with an accuracy of about one turn of the double helix. The conclusion is made that the isotropic elastic properties of the DNA molecule are very important for nucleosome translational positioning. The anisotropic flexibility modulates the sequence-dependent preference and defines the precise rotational placement. The analysis points to a possible involvement of DNA bendability in nucleosome structural transitions. To model the nucleosome positioning within the chromatin fiber, the derived algorithm has been applied to random DNA sequences. The nucleosome distribution obtained is close to random, but nucleosomes, according to calculations, are placed on sites with a low value of bending free energy and decreased G+C-content. Relations with other work and some implications are discussed.

Animals↗

[ATP-dependent structural changes in chromatin].

Incubation (1 hour, 37 degrees C) of nuclei and chromatin from guinea pig spleen (but not from thymus or the liver) resulted in a proteolysis of H1 and H2A histones and accumulation of specific hydrolytic products. Sodium dodecyl sulfate gel electrophoresis revealed a decline in H1 and H2A and the appearance of new protein bands under histone H10 and between H2A and H4. ATP (10 mM) (but not cAMP or PPi) added to the incubation mixture prevented the H1 and H2A digestion and accumulation of the aforementioned products. The ATP, which protects the histones in the nucleus and chromatin from proteinases, promoted the cleavage of cytosolic low molecular weight proteins. The mechanisms of ATP-dependent chromatin structural rearrangements determining the resistance of nuclear proteins to proteolysis are discussed.

Adenosine Triphosphate↗

[The possible role of endogenous nucleases in the structural organization of chromatin].

Two fractions of rat liver nuclei with different buoyant density have been obtained. The electrophoretic analysis of the oligonucleosome patterns of DNA out of nuclei of these two fractions revealed different levels of activity in endonucleases. In case of inhibition during the extraction of activity in Ca, Mg-dependent endonucleases, the average size of high polymeric DNA is larger for nuclei with bigger buoyant density (fraction I) than for nuclei with smaller ones (fraction II). This finding is evidence of in situ existence of two pools of liver nuclei with different endogenic nuclease activities. In nuclear chromatin fraction I DNA is torsionally stressed; in fraction II it is relaxed that correlates with larger activity of endonucleases and smaller buoyant density of this fraction. A hypothesis on a possible role of endonucleases in chromatin structure organization has been put forward. According to this hypothesis a modulation of activity in nuclear endonucleases can determine different packaging and activity of chromatin from different pools of cellular nuclei.

Animals↗

[A rapid method of preparing the (H3-H4-H2A-H2b)(2) histone octamer in large quantities].

A simple and fast method for isolation of large amounts of the histone octamer (H2A-H2B-H3-H4)2 is proposed. This method is based on chromatin adsorption by hydroxyapatite with subsequent extraction of the histone octamer with 50 mM sodium-phosphate buffer containing 4 M NaCl pH 8.0. It was shown that the properties of the histone octamer isolated by this extractive procedure are identical with those of the histone octamer obtained by elution on a Sephadex G-100 column. The histone tetramer (H3-H4)2 and dimer (H2A-H2B) were obtained after gel filtration on Sephadex G-100 in 50 mM sodium-acetate (pH 5.6).

Animals↗

[Primary structure of the basic nuclear protein from spermatozoa of the mollusk Illex argentinus and its comparison with the structure of sperm proteins in other animals].

The spermatic protein of chromatin I2 of squid Illex argentinus was separated by HPLC into two components I2-1 and I2-2. Amino acid sequences of the major portion of protein I2-1 (52 residues) and the N-terminal sequence of protein I2-2 (21 residues) were determined. Arginines in protein I2-1 are arranged in clusters typical of protamines; the first cluster is in the N-terminus, the longest heterogeneous basic cluster is in the central part of the protein chain, the C-terminal part of the molecule contains two clusters of three hydroxyamino acids each. The N-terminal sequences of illexins I2-1 and I2-2 (1-14 residues) are highly homologous. Homologous regions were found in illexin I2-1, tunnin of tuna fish and avian gallin thus defining the notion of proteins of an intermediate type from mollusc spermatozoa chromatin exemplified by the squid protamine-like protein.

Amino Acid Sequence↗

Displacement of histones by sperm-specific proteins at different stages of spermatogenesis of squid.

Changes in the composition of the chromatin basic proteins during spermatogenesis of the squid Illex argentinus were studied. The core histones of I. argentinus slightly differ from those of calf thymus in the subfractional composition of histones H2A and H2B. A similar amino acid composition is revealed in the histones H1 of the squid I. argentinus and calf thymus. Histone H1 of the squid has a lower molecular mass and a special subfractional composition as compared to those of calf thymus, grass carp and carp studied formerly [Kadura et al. (1983) Comp. Biochem. Physiol. 743, 343-350]. Neither the fractional nor subfractional composition of histones changes during spermatogenesis. The two new proteins were revealed in the chromatin composition of squid testes and spermatozoa illexines I1 and I2. Illexine I2 is composed of two subfractions I2-1 and I2-2. Illexine I2 shows a high content of arginine (75 mol/100 mol). Serine (10 mol/100 mol), histidine (3,2 mol/100 mol) and tyrosine residues (2,9 mol/100 mol) are also present. Illexine I1 shows the presence of arginine (45,6 mol/100 mol), lysine (7.6 mol/100 mol), serine (11.4 mol/100 mol), hystidine (2.3 mol/100 mol) and tyrosine residues (2.8 mol/100 mol). Molecular masses of illexines I2 and I1 are approximately 7 kDa and 9 kDa respectively. It is supposed that during spermatogenesis the histones are displaced in two-stage order: histones----I1----I2.

Amino Acids↗

Rearrangements of chromatin structure during spermatogenesis of squid.

A stepwise replacement of somatic histones on sperm-specific proteins (we have termed them illexines I1 and I2) is found to occur during spermatogenesis of squid Illex argentinus [Kadura, S.N. and Khrapunov, S.N. (1988) Eur. J. Biochem. 175, 603-607]. The chromatin from nuclei of squid immature testes has a nucleosomal DNA repeat which corresponds to the nucleosomal repeat of calf thymus chromatin (195 +/- 5 bp). As spermatozoa become mature and illexine I2 accumulates in the chromatin, the nucleosomal structure of the latter disappears and chromatin compacting takes place. The chromatin DNA from squid spermatozoa is highly resistant to micrococcal nuclease action. Spectrophotometry and spectrofluorimetry were to establish that neither illexine I1 nor illexine I2 forms a globular structure in solution under any conditions studied. Illexine I2 (approx. 7 kDa) shows a high affinity to DNA and remains bound to it under conditions when complexes of illexine I1 (approx. 9 kDa) and salmine (approx. 4.5 kDa) with DNA completely dissociate. This fact, allowing for a similar content (about 75%) of arginine in illexine I2 and salmine, suggests high clustering of arginine residues in the composition of illexine I2. It is suggested that the initial stage of histone substitution with illexine I1, which has a more moderate affinity to DNA than illexine I2, prepares chromatin for the formation of a highly packed structure by illexine I2 during squid spermatogenesis.

Animals↗

Intrinsic fluorescence, difference spectrophotometry and theoretical studies on tertiary structure of calf thymus histone H1.

Tyr-72 is included in the hydrophobic cleft which is formed in the histone H1 globular head. Tyr-72 is screened against polar aqueous environment and its intramolecular mobility is sharply retarded. This microenvironment causes a red shift (lambda max = 279 nm) and a sharpening of the longer wavelength shoulder of absorption spectra, a high fluoresence anisotropy value (A = 0,11), high quantum yield of fluoresence (approximately 0.2) and a decrease of the Stern-Volmer Constant during quenching of histone H1 fluorescence by acrylamide. It has been found that the change in the intensity of histone fluorescence at lambda excit = 265 nm, but not at lambda excit = 280 nm, is due to the changes in the quantum yield of fluorescence. The increase of fluorescence intensity at lambda excit = 280 nm depends on the changes in the quantum yield and molar extinction coefficient of histone H1 tyrosyl chromophore. The change in the ratio of fluorescence intensity exited at 280 nm (F280) to the fluorescence intensity excited at 265 nm (F265) corresponds to the change of delta epsilon 286 in difference absorption spectra. The introduction of the parameter Cf = F280/F265 allows one to go over to studying excitation spectrum shifts instead of histone absorption spectrum shifts, which is much more convenient methodologically since in this case it is possible to carry out research using lower protein concentrations and turbid solutions. The results make it possible to designate Tyr-72 of histone H1 as a special class of fluorescent tyrosyls whose properties differ from those of tyrosyls of other tryptophane-free proteins: RNAase, insulin, core histones--H2A, H2B, H3, H4 and some others.

Amino Acid Sequence↗

[Accessibility of histone oligomers to the action of trypsin in a solution or in chromatin with different degrees of compactness].

The accessibility to trypsin of "core" histones within the dimer (H2A-H2B), tetramer (H3-H4)2, octamer (H2A-H2B-H3-H4)2 and in chromatin was studied. It was shown that the hydrolysis of histones H2A and H2B within the dimer and octamer occurs in essentially the same way. The tetramer (H2-H4)2 becomes more compact with an increase in the ionic strength. Some of the tetramer (H3-H4)2 sites within the octamer are protected against trypsin. It was demonstrated that in terms of the histone accessibility to trypsin chromatin can exist in three states, i.e., tightly packed (in the presence of histone H1 and bivalent cations), intermediate (in the absence of histone H1 or bivalent cations) and folded (in the absence of histone H1 and bivalent cations). The folding of histones in neither of these chromatin states coincides with that within the octamer in 2M NaCl.

Amino Acid Sequence↗

The structure of the histone dimer H2A-H2B studied by spectroscopy.

The spatial organization of the histone dimer (H2A-H2B) in 0.1-1.0 M NaCl is characterized by the inclusion of 38% of the residues in alpha-helical segments, an average fluorescence quantum yield of 0.085 +/- 0.003, a red shift of absorption (lambda max = 278 +/- 0.5 nm) and fluorescent spectra (lambda max = 304.4 +/- 0.3 nm) as compared to the respective spectra of free tyrosine. The changing of position lambda max of tyrosine fluorescence of histones during denaturation has been shown. The dimer (H2A-H2B) exhibited a conformational change in a transition centred at about 0.5 M NaCl. The dimer denaturation takes place at higher urea concentrations as the ionic strength of the medium increases. The quenching of tyrosine fluorescence of the histone dimer (H2A-H2B) was performed using the ions I-, Cs+ and acrylamide. It has been shown that, at a concentration of NaCl over 0.5 M, dimer compactization takes place, as well as the screening of some part of tyrosyls for te against the quenching effect of Cs+. Our experiments made it possible to identify three zones in the composition of the histone dimer (H2A-H2B) and determine the number (ni) and fluorescence quantum yields (qi) of tyrosyls included in the following specific zones: zone I, n1 = 2, q1 = 0.136; zone II, n2 = 3; q2 = 0.08; zone III, n3 = 3; q3 = 0.055.

Animals↗

[Native and trypsin-treated histone oligomers--tetramer (H3-H4)2 and dimer H2a-h2b].

The native oligomers of histones isolated from calf thymus nuclear chromatin were investigated. After mild treatment with trypsin, the tetramer, (H3-H4)2, has a molecular weight of 36 000, whereas Mr of the dimer, H2a-H2b, is equal to 25 000. Intact oligomers have Mr of 55 000 (tetramer) and 33 000 (dimer). Analysis of the fluorescence intensity changes indicates that the native tetramer can exist in three, while the dimer in two conformational states. The (H2a-H2b) dimer persists, but the (H3-H4)2 tetramer does not persist these transitions after proteolytic degradation. The trypsin-treated dimer H2a-H2b is highly labile and readily aggregates, while the tetramer (H3-H4)2 loses its aggregation capacity. It is assumed that the conformational features observed during the aggregation of histone oligomers may play a role in the assembly and structural transitions in nucleosomes and chromatin.

Animals↗

Changes in chromatin basic proteins during male gametogenesis of grass carp.

1. The composition of basic of chromatin protein fractions has been studied in the course of male spermatogenesis of grass carp (Ctenopharyngodon idella). 2. Electrophoretic mobility of H1, H2B and H2A histones of grass carp is shown to differ from that of corresponding fraction of calf thymus histones. 3. Comparison of chromatin protein fractions from liver, mature and immature testis and sperm of grass carp has revealed subtle tissue specificity of H2B and H2A histones. 4. Maturation of spermatozoa in grass carp is accompanied by a marked accumulation of the TH1 subfraction (TH1-1), disappearance of some acid-soluble non-histone proteins and of a protein similar to the mammalian A24 protein.

Animals↗

[Peculiarities of the amino acid composition, spatial organization and interaction with DNA of histones H1 from calf thymus and carp spermatozoa].

The amino acid composition of the H1-like histone isolated from carp spermatozoa (H1carp) is characterized by a high content of lysine (34.6%) and a low content of glycine (4.5%) as compared to that of its calf counterpart (H1calf). The Lys/Arg ratio is 21.6, which is much higher than that for the H1-like histones from other species spermatozoa (cf. echinodermata). It was shown that the fluorescence anisotropy and excitation spectra of histones H1carp and H1calf change synchronically. At the same time the final folding of the polypeptide chains of these histones within their ternary structure is different. These differences manifest themselves in a distinct quantum yield of both histones and different accessibility of the single tyrosine residue for fluorescence quenchers. In histone--DNA complexes the tyrosine fluorescence is quenched. An increase in the ionic strength gives rise to a formation of large-sized aggregates in a histone H1--DNA solution which contain structurally heterogenous histones H1 from different sources. Histone H1carp causes DNA aggregation at lower ionic strength values than its calf counterpart. The complexes are dissociated at 0.6 M NaCl.

Amino Acids↗

[Effects of pH and ionic strength on interaction of different histone fractions and protamine with immobilized histone H4].

The interaction of histone H4 immobilized on Sepharose 4B with protamine and individual and total histone fractions from calf thymus has been studied. In accordance with the strength of their interaction with histone H4, the individual histone fractions can be arranged in the following order: H4 greater than H2a greater than H2b greater than H1 and protamine. The structure of the complexes, which are formed in a solution of a total histone fraction and specifically interact with the immobilized histone H4, depends on the ionic composition and pH of the medium.

Animals↗

[Aggregation of histone F2b inthe presence of salt and methanol].

The kinetics of histone F2b aggregation in the presenceof NaCl and methanole was investigated. The size of aggregates increases during 20 hours, and in the following 13 hours the size of formed complexes does not change. It was shown that the stable colloid system was formed by the olygomers of histone F2b.

Histones↗

[Tertiary structure of histones].

Optical absorption and fluorescence of histones F2a and F2b were studied. An increase in pH and ionic strength induced the structure change in these histones fractions. The hydrofobic sites are formed in protein molecules and this leads to an intensification of histone-histone interactions. The change in the histone tertiary structure is of importance for processes associated with regulation of gene activity in eukaryotic cells.

Histones↗