PubMed HealthSearch

SEARCH · PubMed Health

Results for “Chromatin”

Explore indexed PubMed citations for clinical trials, systematic reviews and public health research. Read source abstracts and follow each citation to its original PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 19 recordsLinked to original sources

[Electron microscope study of chromatin in hepatocyte nuclei during the first hours after partial hepatectomy. V. Changes in the relative area of condensed chromatin and the density of chromatin fibril packing in the ultrathin sections].

The degree of chromatin condensation was studied on ultrathin cell sections of guinea pig hepatocytes during the prereplicative period after partial hepatectomy. Three time points were chosen for analysis namely 2,5, 5 and 9 hrs after operation since they show marked increasing (2.5 hrs), decreasing (5 hrs) and repeated increasing (9 hrs) of the amount of ethidium bromide binding to chromatin. The degree of chromatin condensation was determined by measuring the area occupied by condensed chromatin and also by measuring the number of chromatin fibrils per a certain length. The condensed chromatin with varying localization in the nucleus were studied separately. The changes of nucleoplasmic chromatin were most pronounced: at 2.5 and 9 hrs after operation the decrease of the relative area and of the density of chromatin fibrils package was observed; these parameters were near to control at 5 hrs after operation. In general the changes in nucleoplasmic chromatin were correlated with the changes of the activity of the chromatin in the whole nucleus. The decondensation of the perimembranous chromatin was manifested in the decrease of its area and was expressed only at 9 hrs after operation. The perinucleolar chromatin was found to show the gradual decondensation which was manifested mainly by the decrease of its relative area. Thus the condensed chromatin seems to be a labile structure which undergoes essential changes in the process of the exit of the hepatocytes from G0-stage of the cell cycle, during the prereplicative period.

Animals

Chromatin structure: a property of the higher structures of chromatin and in the time course of its formation during chromatin replication.

The action of a number of enzymes and metals on one nuclear preparation were interpreted in terms of the existence of a fragile but highly DNAase-I resistant feature of chromatin superstructure. The generation of this DNAase-I resistance feature of chromatin was then followed during normal DNA synthesis in the regenerating rat liver by following the disappearance of a transitory DNAase-I susceptible state. This transitory, DNAase-I susceptible state appears to be extremely similar to the post-synthetic, DNAase-I susceptible state that has been described in He La32.

Animals

Identification of nonhistone chromatin proteins in chromatin subunits.

Rat liver chromatin was digested by micrococcal nuclease. More than 80% of the enzyme-digested chromatin could be recovered after centrifugation. Treatment with sodium deoxycholate and Triton X-100 at concentrations of 0.5% in the final chromatin suspension gave a higher recovery. Chromatin subunits were fractionated on a 5-30% linear sucrose density gradient. Approximately 35% of the chromatin subunits could be recovered from the gradient. Chromatin subunits and their DNA fragments were identified by gel electrophoresis and ultracentrifugation. The presence of nonhistone chromatin proteins (NHCP) in chromatin subunits was demonstrated by the following criteria: (i) Quantitative analysis showed that the mass ratio of histone to NHCP, in the presence or absence of detergents, was 1:0,25 or 1:0.1, respectively. (ii) After the removal of acid-soluble protein from the subunits, it was found that most of the phenol-soluble NHCP were similar to total chromatin NHCP. However, four major fractions of these phenol-soluble NHCP were found to be enriched in the subunits as identified by two-dimensional polyacrylamide gel electrophoresis. (iii) Experiments using an exchange of isotope-labeled and nonlabeled chromatin showed that NHCP were tightly bound to the chromatin subunits.

Animals

[Structure of the interphase chromatin in Bursaria truncatella macronucleus. I. Electron microscopic and autoradiographic study of the structural chromatin changes during differentiation and growth after division].

The structure of interphase chromatin from isolated individual macronuclei of Bursaria truncatella was studied at different moments after cell division. During the period 0,5-3 hours after division most of the macronuclear chromatin is represented by loose agglomerations of decondensed chromatin, where transcription complexes can be seen. The maximum quantity of decondensed chromatin is observed 0,5-1,5 hours after cell division. During the period 1,5-3 hours after the division the part of decondensed chromatin decreases along with the increase of the quantity of dense chromatin organized in chromatin clumps 0,12-0,18 mu in diameter. In completely developed vegetative cells nearly all the chromatin has the structure of closely packed chromatin clumps. Electronmicroscopic autoradiography data show that chromatin clumps are transcriptionally inert, whereas all the transcription processes take place in decondensed chromatin agglomerations. The structure of transcription complexes of B. truncatella macronucleus is discussed in detail.

Animals

Chromatin substructure: an electron microscopic study of thin-sectioned chromatin subjected to sequential protein extraction and water swelling procedures.

Electron microscopic observations and measurements were made on thin-sectioned chromatin fibers and fibrils obtained from nuclei of mature chicken erythrocytes. The nuclei were isolated in low ionic strength gum arabic and octanol then extracted sequentially with (1) 0.14 M NaCl, (2) 0.25 N HCl, (3) buffer saturated phenol, (4) hot 5% SDS and 0.14 M 2-mercaptoethanol and, (5) 0.4 N NaOH. The amount of nuclear protein removed at each of the first four extraction steps was 1, 86, 3 and 11% of the total, respectively. Each extract was characterized by electrophoretic profiles. At each extraction the chromatin was fixed by adding large quantities of a mixture of equal volumes of sodium cacodylate buffered 8% (w/v) glutaraldehyde (pH 6.8) and 2% OsO4 (w/v), directly into (1) an aliquot of the chromatin in extraction fluid, and (2) an aliquot of the chromatin after water washing and swelling. Three size classes of chromatin structure were seen in thin sections prepared for high resolution transmission electron microscopy and stained with uranyl acetate and lead citrate. A thick fiber of about 25 + nm diameter was the predominant large fiber seen in freshly isolated nuclei or in nuclei after salt extraction. This 25 + nm fiber has a substructure consisting of 3.2-5.2 nm diameter fibrils. After water swelling of such freshly isolated or salt extracted nuclei a fiber of about 10 nm diameter was the predominant large fiber instead of the 25 nm diameter fiber. The HCl extraction step which is known to remove histones, caused the disappearance of both the 25 nm and the 10 nm fibers. High magnification (600,000 x) micrographs of the chromatin at all procedural steps, except the last NaOH step, reveal the fibril to be omnipresent. This fibril tends to decrease somewhat in diameter during the protein extraction steps to a 2.5 nm diameter fibril after the hot SDS extraction. A fibril of 2.5 nm diameter is expected of naked double helical DNA stained with a positive stain. The NaOH, which is known to denature DNA, completely destroyed the remaining fibril. We inerpret our results to indicate that the larger chromatin fiber seen in micrographs of thin-sectioned chromatin has a fibrillar substructure which probably represents a double coil of native DNA which may have a thin protein coating of its own. The latter fibril may in turn be wrapped around a hydrophobic histone domain, perhaps reflected in the 10 nm diameter fiber which is seen upon swelling of the chromatin. This 10 nm diameter fiber is thought to be further packaged by folding into the 25 + nm diameter chromatin fiber most frequently reported in thin sections of eukaryotic cell nuclei in situ.

Animals

DNA synthesis in isolated chromatin. Nature of activities, and relationship to kinetics of DNA polymerase release from chromatin DNA.

Chromatin isolated from Ehrlich ascites tumor cells showed two DNA synthetic activities differing in sensitivity to N-ethylmaleimide. For studies on the nature of activities and relationship to kinetics of DNA polymerase, a new method was developed for detecting the activity of DNA polymerase released from chromatin DNA during DNA synthesis in vitro. The activity of DNA polymerase released was measured in a reaction mixture for DNA synthesis using exogenously added poly(dA-dT) as a template-primer in the presence of actinomycin D. Evidence that the DNA polymerase released was actually involved in DNA synthesis of chromatin was obtained in experiments using chromatin isolated from cells treated with various concentrations of 1-beta-D-arabinofuranosylcytosine and chromatin from adult mouse liver. The experiments showed that chromatin isolated from cells in which only small amount of DNA polymerase was engaged in DNA synthesis released a negligible amount of DNA polymerase, especially N-ethylmaleimide-sensitive polymerase. Kinetic analysis of DNA polymerase during chromatin DNA synthesis by the new method suggested that KCl at the optimal concentration (10-20 mM) for the N-ethylmaleimide-sensitive chromatin activity enhanced the binding of the N-ethylmaleimide-sensitive DNA polymerase to chromatin DNA. From the findings that addition of actinomycin D or omission of dNTPs from the preincubation mixture prevents this binding, it is suggested that the binding of DNA polymerase is followed by the DNA chain synthesis and that the DNA polymerase involved in this reaction is N-ethylmaleimide sensitive. Data on the effect of KCl on the rate of chromatin DNA synthesis and on the size of the DNA chain favor this assumption.

Animals

Perturbation of chromatin structure in the region of the adult beta-globin gene in chicken erythrocyte chromatin.

An EcoRI chromatin fragment containing the adult beta-globin gene and flanking sequences, isolated from chicken erythrocyte nuclei, sediments at a reduced rate relative to bulk chromatin fragments of the same size. We show that the specific retardation cannot be reversed by adding extra linker histones to native chromatin. When the chromatin fragments are unfolded either by removing linker histones or lowering the ionic strength, the difference between globin and bulk chromatin fragments is no longer seen. The refolded chromatin obtained by restoring the linker histones to the depleted chromatin, however, exhibits the original sedimentation difference. This difference is therefore due to a special property of the histone octamers on the active gene that determines the extent of its folding into higher-order structure. That it is not due to the differential binding of linker histones in vitro is shown by measurements of the protein to DNA ratios using CsCl density-gradients. Both before and after selective removal of the linker histones, the globin gene fragment and bulk chromatin fragments exhibit only a marginal difference in buoyant density. In addition, we show that cleavage of the EcoRI fragment by digestion at the 5' and 3' nuclease hypersensitive sites flanking the globin gene liberates a fragment from between these sites that sediments normally. We conclude that the hypersensitive sites per se are responsible for the reduction in sedimentation rate. The non-nucleosomal DNA segments appear to be too long to be incorporated into the chromatin solenoid and thus create spacers between separate solenoidal elements in the chromatin, which can account for its hydrodynamic behaviour.

Animals

Differences in the condensation of chromatin by individual subfractions of histone H1: implications for the role of H1(0) in the structural organization of chromatin.

The effectiveness of histone H1 subfractions H1-1 and H1(0) in inducing the ordered condensation of chromatin was examined by thermal denaturation, circular dichroism, electric birefringence, orientation mechanism, and orientational relaxation time measurements. Soluble rat liver chromatin was stripped of H1 by dissociation in 500 mM NaCl and long fragments of chromatin were subsequently reassociated with purified individual H1 subfractions for ratios of 1 and 2 mol of H1 per nucleosome. H1 subfractions behave differently with respect to their interactions with DNA in chromatin: although the orientation mechanisms of reconstituted chromatins are identical, H1(0) induces a less efficient protection of DNA than H1-1, as shown by nuclease digestion and by the length of free extended linker DNA determined by electric birefringence. This corresponds to a more extended structure of H1(0)-reconstituted chromatin as judged by the value of relaxation time. One can imagine that the replacement of H1 by H1(0) leads to a different structure or stability of the chromatin, confering a certain degree of flexibility of this region. This may be related to the functional role of H1(0) in DNA replication or transcription and may explain metabolic and evolutionary differences among H1 subfractions as recently suggested by Lennox [Lennox, R. W. (1984) J. Biol. Chem. 259, 669-672]. The extent of condensation when H1-depleted chromatin is overloaded with histones is probably a function of the electrostatic interactions between the basic C-terminal tails of histones and chromatin. Electric birefringence also reveals differences between native and reconstituted chromatins that are overlooked by several other criteria.

Animals

The structure of chromatin: interaction of ethidium bromide with native and denatured chromatin.

The binding of ethidium bromide, as monitored by fluorescence enhancement, to chromatin prepared by nuclease digestion has been compared with the binding of the dye to sheared chromatin. The nuclease preparation (native chromatin) is characterized by a high affinity region of the Scatchard plot (r = 0-0.025, K1 = 1 X 10(6) M-1), a transition (r = 0.025-0.05), and a low affinity region (r = 0.05-0.12, K2 = 3 X 10(5) M-1). The final amount of ethidium bromide bound per base is 0.12 as compared with 0.20 for free DNA. Sheared chromatin has the two regions of high and low affinity (K1 = 2 X 10(6) M-1, K2 = 5 X 10(5) M-1) as originally shown by Angerer and Moudrianakis (1972), but the transition is much reduced or absent. Binding of the dye to native chromatin is independent of salt at concentrations ranging from 0.2 mM EDTA to 10 mM Tris-Cl, 10 mM NaCl, 0.2 mM EDTA, while sheared chromatin and DNA both bind ethidium bromide electrostatically as well as by intercalation at the low salt concentration, leading to extensive energy transfer. Thus the phosphate groups in native chromatin are unavailable to external cations even at very low salt. Polarization of fluorescence of ethidium bromide intercalated into native chromatin at low r is very high, indicating a highly rigid structure. As r approaches 0.02, there is a very rapid depolarization; at r = 0.03, the polarization is no greater than that of the dye intercalated into DNA. Depolarization is not due to energy transfer. The Scatchard plot derived for the bulk preparation of native chromatin is very similar to the one derived for the monomer nu body. These results indicate that the DNA in native chromatin is in a very rigid form, with its phosphate anions neutralized by structural components, not by free salt. Ethidium bromide intercalation appears partially to disrupt this structure, perhaps by unwinding, leading to slight changes in its properties.

Binding Sites

Fluorescence image analysis of the MCF-7 cycle related changes in chromatin texture. Differences between AT- and GC-rich chromatin.

This paper reports on quantitative in situ changes in chromatin structure that occur throughout the cell cycle of the human breast cancer epithelial cell line, MCF-7. Texture parameters were measured by image cytometry on nuclei stained by DNA specific fluorochromes. These parameters calculated from the co-occurrence and run length matrices of grey level images were previously shown to be related to condensation, organization and distribution of DNA. In some experiments, cells were triple stained for DNA/Ki-67/PCNA, and compartmentalization in the cycle was ascertained from the Ki-67/PCNA pattern expression. In these experiments, Hoechst dye was used to stain DNA. Chromatin of cells traversing G1 phase progressively decondensed and became homogeneously distributed. In addition, these G1 cells had more condensed chromatin than cells in G0 phase (as determined by Ki-67 negative staining). During the S and G2 phases, chromatin condensation took place and an increasing reticulated organization was quantified. Similar profile of changes in chromatin texture was found in experiments done with cells double stained by AT-specific Hoechst dye and the GC-specific mithramycin dye. GC-rich chromatin texture-associated parameters greatly varied comparing to those of AT-rich chromatin during the G0/G1 phase as well as in the first mid-S phase. Conversely, variation of the AT-associated parameters was much greater in the second half of S phase as compared to the GC-associated parameters that barely varied during this period. This study well establishes the correlation between in situ chromatin texture and proliferation state because the latter is assessed by proliferation-associated antigens. Moreover, changes in chromatin texture are independently ascribed to the AT- and GC-rich regions suggesting that these 2 types of chromatin are involved to different extents in transcriptional and replicational tasks.

Base Composition

Reconstitution of chromatin higher-order structure from histone H5 and depleted chromatin.

Reconstitution of the 30 nm filament of chromatin from pure histone H5 and chromatin depleted of H1 and H5 has been studied using small-angle neutron-scattering. We find that depleted, or stripped, chromatin is saturated by H5 at the same stoichiometry as that of linker histone in native chromatin. The structure and condensation behavior of fully reconstituted chromatin is indistinguishable from that of native chromatin. Both native and reconstituted chromatin condense continuously as a function of salt concentration, to reach a limiting structure that has a mass per unit length of 6.4 nucleosomes per 11 nm. Stripped chromatin at all ionic strengths appears to be a 10 nm filament, or a random coil of nucleosomes. In contrast, both native and reconstituted chromatin have a quite different structure, showing that H5 imposes a spatial correlation between neighboring nucleosomes even at low ionic strength. Our data also suggest that five to seven contiguous nucleosomes must have H5 bound in order to be able to form a higher-order structure.

Animals

Fractionation of chromatin, released by nuclease digestion, on ECTHAM-cellulose. Separation of active and inactive chromatin.

Chromatin released by two nucleases under various ionic conditions has been fractionated by chromatography on ECTHAM-cellulose. Mg2+ -soluble chromatin, which according to Gottesfeld and Partington is enriched in transcribed DNA sequences (Gottesfeld, J.M. and Partington, G.A., (1977) Cell 12, 953-962) and produced by DNAase II digestion at intermediate ionic strength, comprises material eluting from ECTHAM-cellulose at 80-100 mM Cl-, pH 6.8-7.0, whereas bulk, Mg2+ -insoluble chromatin comprises more tightly binding material. Free hnRNP particles elute at 30 mM Cl-, pH 6.8. Oligonucleosomes, which according to Dimitriadis and Tata are enriched in transcribed sequences (Dimitriadis, G.J. and Tata, J.R. (1980) Biochem. J. 187, 467-477) and produced by micrococcal nuclease digestion at physiological ionic strength, also elute predominantly at 80-100 mM Cl-, pH 6.8-7.0. When liver nuclei are digested with micrococcal nuclease at low ionic strength, the most rapidly released chromatin is enriched in nascent RNA and hnRNP particles, and binds weakly to ECTHAM-cellulose. More slowly solubilised chromatin, containing fewer hnRNP particles, binds much more strongly to ECTHAM-cellulose. In confirmation of results with mechanically sheared chromatin, the affinity of particular chromatin fractions is not dependent on the size of chromatin particles, rather it reflects the differing composition, and in particular the non-histone protein and hnRNP content, which, we propose, determines the conformation adopted by different chromatin fractions in the cation conditions used for elution from ECTHAM-cellulose.

Animals

Tubulin-chromatin interactions: evidence for tubulin-binding sites on chromatin and isolated oligonucleosomes.

The interaction of tubulin with chromatin has been studied using a radiolabeled tubulin binding assay and velocity sedimentation analysis on isokinetic sucrose gradients. Soluble chromatin was prepared by mild micrococcal nuclease digestion of rat liver nuclei and tubulin was purified from rat brain by temperature-dependent assembly-disassembly and phosphocellulose chromatography. The tubulin-binding assay is based on the ability of chromatin to precipitate quantitatively at physiological ionic strength allowing separation of free tubulin from chromatin-bound tubulin. The binding of tubulin to unfractionated soluble chromatin was rapid, reversible and saturable. Saturation of binding sites was obtained using tubulin concentrations ranging from 0.5 to 400 micrograms/ml, in the presence of a high concentration (2.5 mg/ml) of another acidic protein, bovine serum albumin. The Scatchard and Hill plots showed that tubulin bound to a single class of non-interacting sites and yielded values of (0.5-0.6) X 10(7) M-1 for an apparent Ka and a maximal binding capacity of 0.8 nmol tubulin/mg DNA, i.e. about 1 molecule of tubulin/10 nucleosomes. Similar binding parameters were obtained when binding experiments were performed with insoluble chromatin in 0.15 M NaCl. Velocity sedimentation analysis of tubulin-chromatin complexes revealed that tubulin bound to all classes of chromatin oligomers, irrespective of the length of the nucleosomal chain. Tubulin-trinucleosome complexes formed from isolated trinucleosome in the presence of an excess of tubulin were separated from free reactants. It was found that 10-15% of the starting oligonucleosomal species reacted with tubulin, in a stoichiometry of about 0.8 molecule of tubulin/nucleosome. Given the characteristics of the binding and the expected cellular free tubulin concentration, the tubulin-chromatin interaction could possibly take place in vivo, when the nuclear membrane breaks down during the first steps of mitosis.

Animals

Chromatin-bound protease: degradation of chromosomal proteins under chromatin dissociation conditions.

A chromatin-bound protease, active in 2 M NaCl-5 M urea or 5 M urea alone, was demonstrated in rat liver, kidney, testes, brain, rabbit bone marrow, chicken reticulocyte, and Ehrlich ascites chromatin. Chicken erythrocyte chromatin did not possess any detectable proteolytic activity in salt and urea. The proteolytic activity of rat liver chromatin in salt and urea was found to be independent of the methods of chromatin preparation. The protease can be inhibited by the serine specific reagents phenylmethanesulfonyl fluoride and diisopropyl fluorophosphate and the alkylating reagent, carbobenzoxyphenylalanine chloromethyl ketone, in the presence of organic solvents at 1 mM concentration. The inhibitions of chromatin-bound protease in rat liver by these compounds are irreversible. On the other hand, carbobenzoxyphenylalanine and p-nitrophenyl acetate were shown to be reversible inhibitors of rat liver chromatin-bound protease. The application of these inhibitors during the dissociation of chromatin by salt and urea may be useful to researchers interested in purifying various chromosomal proteins or to those researchers doing reconstitution studies with labile chromatins.

Animals

Pentraxin-chromatin interactions: serum amyloid P component specifically displaces H1-type histones and solubilizes native long chromatin.

Pure serum amyloid P component (SAP) and native long chromatin, mixed together at wt/wt ratios between 1:1 and 1:2 in the presence of physiological concentrations of NaCl and calcium, both remained in solution, whereas each alone precipitates rapidly under these conditions. This solubilization accompanies the binding of SAP to chromatin and the displacement of H1-type histones, which are essential for condensation and higher order folding of chromatin. Such binding of SAP to chromatin is remarkable since displacement of H1 and H5 by salt alone requires approximately 0.5 M NaCl. SAP also bound to nucleosome core particles forming soluble complexes with an apparent stoichiometry of 1:2, a result that is compatible with attachment of SAP at the nucleosome dyad, the site of H1 in intact chromatin. SAP thus undergoes a specific, avid interaction with chromatin that promotes its solubilization and may thereby contribute to the physiological handling of chromatin released from cells in vivo. In contrast, C-reactive protein (CRP) did not bind significantly to either chromatin or to core particles at physiological ionic strength. Incubation of chromatin with either normal serum, or acute phase human serum containing raised levels of CRP, did not induce complement activation regardless of the presence of added SAP or CRP, nor was any cleavage of DNA observed.

Animals

[Intranuclear localization of hepatoma chromatin antigens not detected in liver chromatin].

Localization of malignant cell antigens which are not detected in the liver chromatin was investigated by antibodies to chromatin of Zajdela ascite hepatoma and solid hepatoma 27. Antibodies to chromatin of Zajdela ascite hepatoma do not interact with nuclear matrix of both hepatoma and liver cells. Zajdela ascite hepatoma and solid hepatoma 27 chromatin regions hypersensitive to DNase I and endogenous Mg2+-dependent nuclease are enriched with immunogenic proteins. Antibodies to hepatoma chromatins pretreated with liver chromatin show that hepatoma chromatin antigens which are not detected in liver chromatin are localized in chromatin regions hypersensitive to nucleases but are absent (or scanty) in actively transcribed regions.

Animals

[Electron microscopic morphometric study of activated chromatin of lymphocytes. I. Variation of chromatin condensations during early action of phytohemagglutinin].

We made a quantitative electron microscopic investigation of rat blood lymphocyte chromatin on cell sections in the early period of action of phytohaemoagglutinin (PHA). According to the dynamics of binding of acridine orange to chromatin, there were chosen time lapse after the beginning of stimulation of cells. In one hour of PHA action when the binding of acridine orange is intensified two-fold the total area of profiles of condensed chromatin was not changed, however, the area of membrane-free chromatin profiles was simultaneously diminished by 36%. At that period, the packing of DNP-fibers of condensed chromatin loosened. After 1.5 hr, parallel to a noticeable decrease of binding of acridine orange, there were observed tendencies for restoration of area of chromatin profiles and partial diminishing of relative distances between DNP-fibers. In 6 hrs, the binding of acridine orange was sharply intensified, which was accompanied by a decrease by 26% of the total area of chromatin profiles at the expense of diminishing of perimembranous chromatin. At the same time, the low-electron--density regions of condensed chromatin were enlarged, and the packing of DNP-fibers was strongly loosened.

Acridine Orange