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Developmental study of the structure of sea urchin embryo and sperm chromatin using micrococcal nuclease.

Sea urchin embryo chromatin is hydrolyzed by micrococcal nuclease into a series of oligomers which are multiples of a monomer (repeating unit) containing 220 +/- 22 nucleotide pairs of DNA which accumulates during the initial phase of the digestion. Although the size of the chromatin monomers remains the same throughout early development, from the morula through the pluteus stage of embryogenesis, the rate and extent of solubilization of chromatin DNA by micrococcal nuclease decrease as development proceeds. Sea urchin spermchromatin is hydrolyzed by micrococcal nuclease into a series of oligomes which are multiples of a monomer containing 260 +/- 26 nucleotide pairs of DNA which accumulates during the initial phase of the digestion. Analysis of the sizes of oligomers which result form micrococcal nuclease digestion of mouse liver, sea urchin embryo, and sea urchin sperm chromatin in situ, suggests that the oligomers are nearly exact multiples of the respective monomers. These results are discussed in relation to those studies which have shown that the histone complement of the sea urchin embryo and sperm changes during development.

Animals

Superstructural differences between chromatin in nuclei and in solution are revealed by kinetics of micrococcal nuclease digestion.

Digestion of chromatin in nuclei by micrococcal nuclease, measured as the change in the concentration of monomer-length DNA with time, displays Michaelis-Menten kinetics. Redigestion of soluble chromatin prepared from nuclei by micrococcal nuclease treatment, however, is apparently first order in enzyme and independent of chromatin concentration. This qualitative difference results from an increase in the apparent second order rate constant, kcat/Km, for liberation of monomer DNA: the apparent Km for soluble chromatin is lower by close to 3 orders of magnitude than that for chromatin in nuclei, whereas kcat decreases by less than 1 order of magnitude. Neither the integrity of the nuclear membrane nor the presence of histone H1 contributes to the high Michaelis constant characteristic of chromatin in nuclei. Moreover, differences due to the buffers used for digestion and redigestion are minimal. Low catalytic efficiency is, however, correlated with the presence of higher order chromatin superstructure. Micrococcal nuclease added to soluble chromatin under nondigesting conditions at low ionic strength (I = 0.002) co-sediments with chromatin in sucrose gradients. In 0.15 M NaCl, added nuclease no longer sediments with chromatin and redigestion kinetics become first order in both enzyme and substrate. Kinetic analysis of this type may afford an assay for native, higher order structures in chromatin. Our results suggest that micrococcal nuclease binds to soluble chromatin through additional interactions not present in nuclei, which may be partly ionic in nature.

Animals

Nucleosome periodicity in HeLa cell chromatin as probed by micrococcal nuclease.

When HeLa cell nuclei were treated with micrococcal nuclease (nucleate 3-oligonucleotidohydrolase, EC 3.1.4.7), lysed, and centrifuged, the supernatant from early digests contained two predominant classes of polynucleosomes of repeat size 8N and 16N. With increasing digestion time, the 16 N polynucleosome appeared to be cleaved to the 8N species and finally to the basic subunit of chromatin. The size of the polynucleosomes has been determined by DNA analysis and on polyacrylamide electrophoretic gels of native chromatin particles. The 16N polynucleosome appears to be a unique higher ordered structural component of HeLa cell chromatin. Our recent report, showing that the nuclear protein-modifying enzyme poly(ADP-ribose) polymerase increases in specific activity progressively with increasing nucleosome repeat size up to 8-10N, has been extended in the present study. Activity was also elevated in the polynucleosomes of the 16N structure preferentially cleaved by micrococcal nuclease, although specific activity of the enzyme was highest in octanucleosomes. Acceptors for poly(ADP-ribose) have also been determined in these particles.

Chromatin

Binding of polylysine to chromatin subunits and cleavage by micrococcal nuclease. A comparison of accessible sites.

Native chromatin and chromatin subunits (nucleosomes) were titrated with polylysine and digested with micrococcal nuclease and deoxyribonuclease I at individual lysine/nucleotide ratios. In contrast to earlier reports, which had been obtained using mechanically sheared chromatin, a comparison of the sites accessible for micrococcal nuclease and polylysine reveals that polylysine does not preferentially protect the micrococcal-nuclease-susceptible sites in chromatin. Similar results were obtained in digestion experiments with DNase I. From the experimental data presented we conclude that polylysine does not preferentially bind to the internucleosomal DNA, which is the prime target site for micrococcal nuclease, but rather to the total nucleosomal DNA moiety.

Animals

Digestion of insect chromatin with micrococcal nuclease, DNase I and DNase I combined with single-strand specific nuclease S1.

The chromatin of the lepidopteran Ephestia kuehniella was digested by micrococcal nuclease, DNase I and S1-nuclease combined with DNase I pretreatment. The resulting DNA fragments were analyzed by gel electrophoresis and compared with the DNA fragments of rat liver nuclei obtained by the same process. Extensive homology was revealed between insect and mammalian chromatin structure. The combined DNase I- S1-nuclease digestion yields double-stranded DNA fragments of lengths from 30 to 110 base-pairs. These DNA fragments are not obtained from nuclei predigested extensively with micrococcal nuclease. The results are discussed with respect to the internal structure of the chromatin subunit.

Animals

Effect of ethidium bromide on the digestion of chromatin DNA with micrococcal nuclease.

Intercalation of ethidium bromide into DNA influences the rate of its digestion with micrococcal nuclease in opposite directions depending on whether it is free DNA or DNA in chromatin. In the case of free DNA the binding of ethidium bromide, starting from a very low concentration, results in the inhibition of the rate of digestion (increasing constantly with the increase of the ethidium bromide/nucleotide ratio). In contrast to free DNA the digestion rate as well as the overall amount of nuclease susceptible DNA is increased upon ethidium bromide binding to chromatin, with maximum enhancement around the saturation of intercalation sites. The saturation of intercalation sites in chromatin leads also to the disappearance of the typical micrococcal nuclease digestion pattern of DNA upon gel electrophoresis. Instead, a random cleavage pattern is observed. These data indicate that partial unwinding of chromatin DNA by ethidium bromide results in unmasking new sites for nuclease action. Interpretation of this finding in terms of the nucleosomal structure of chromatin and the mode of ethidium bromide binding to chromatin DNA indicates that newly unmasked sites are localized within the core particle DNA.

Animals

Heterogeneity of chromatin fragments produced by micrococcal nuclease action.

Digestion of calf thymus chromatin with micrococcal nuclease produces a mixture of apparently well defined nucleoprotein fragments which have been partially resolved by sedimentation on linear (5-20%) sucrose gradients. Sedimentation patterns reveal a predominant peak at the 11S position, three slower components, which have not previously been reported, at the 3.4S, 5.3S and 8.6S positions, and three faster components at the 17S, 22S and 26S positions. DNA isolated from the 3S to 12S region of gradients has been resolved on polyacrylamide gels into nine to ten discrete components ranging from 47 to 156 base pairs in length. A nearly identical pattern of small DNA products was obtained from chromatin digested in intact nuclei. These data suggest that chromatin contains either several types of subunits or predominently a single type of subunit which can be asymmetrically cleaved at any one of four or more sites.

Animals

Tissue-specific sensitivity of chromatin and the vitellogenin gene to micrococcal nuclease after continuous exposure of salmon (Salmo salar) to 17 beta-estradiol.

Smoltified Atlantic salmon (Salmo salar), 2 years old and weighing 217 +/- 13 g, were treated for 2 weeks with 17 beta-estradiol containing silastic capsules implanted intraperitoneally. Control fish received empty capsules. Vitellogenin, present in the blood of both groups of fish, was enhanced by estradiol treatment. Nuclei were isolated from liver, blood cells, and brain and incubated with increasing concentrations of micrococcal nuclease (EC 3.1.31.1). In liver there were more mononucleosomes as a percentage of total chromatin in hormone-treated than in control fish. Using vitellogenin cDNA as a probe the highest hybridization signals were seen when 2 to 4% of the chromatin was digested to mononucleosomes. In blood cell and brain nuclei independent of the extent of the chromatin released the hybridization signals remained low. The expression of the vitellogenin gene in immature females was potentiated by exogenous estradiol to give increased micrococcal nuclease sensitivity of the chromatin without enhancement of the hybridization level. Micrococcal nuclease digestion and hybridization of the vitellogenin gene demonstrated that the hepatic specificity of vitellogenin synthesis is manifested as structural modulations of the chromatin containing the vitellogenin gene.

Animals

Studies in heterochromatin DNA: accessibility of late replicating heterochromatin DNA in chromatin to micrococcal nuclease digestion.

Heterochromatin DNA in cactus mouse (Peromyscus eremicus) replicates in the late S phase of cell cycle. A method of obtaining cells which contain DNA preferentially labeled at heterochromatic areas by a pulse-labeling of late replicating DNA is described. When the nuclei of P. eremicus cells containing radioactively labeled DNA in heterochromatin were digested with micrococcal nuclease and the resultant nucleosomal DNA was separated by gel electrophoresis, it was found that the repeat length of nucleosomal DNA in the heterochromatin DNA is not different from that of the bulk of the genomic DNA. Furthermore, there was no significant difference in the accessibility to digestion by micrococcal nuclease between the late replicating heterochromatin DNA and the total DNA under our digestion conditions. Two dimensional gel electrophoresis patterns of nucleosomal DNAs isolated from micrococcal nuclease digested nuclei from P. eremicus, P. collatus, and P. crinitus cells in culture were very similar. Cytogenetic data showed that these three species are different in heterochromatin but similar in euchromatin.

Animals

A study of an endogenous nucleolytic reaction and of the action micrococcal nuclease and DNAase I on a salt-soluble, compact form of chromatin.

The endogenous nucleolytic reaction occurring in rabbit thymus nuclear lysates has been studied at extended incubation times (up to 4 h). Production of nucleosomal polymers containing multiples of 205 base pairs of DNA was observed. The stability of the bands and the low release (1%) of acid-soluble nucleotides indicated there was only a small fraction of sensitive DNA between the subunits. The salt-soluble chromatin formed in the endogenous reaction at short incubation times (14--24 min) and purified over Sephadex G-200 has been treated with micrococcal nuclease and DNAase I. With micrococcal nuclease, nucleosomal polymers containing multiples of 201 base pairs of DNA were formed. Extensive digestion reaveled a core subunit containing 145 base pairs of DNA. With DNAase I only random degradation was observed and nucleosomal complexes were not produced.

Animals

Limited action of micrococcal nuclease on trout testis nuclei generates two mononucleosome subsets enriched in transcribed DNA sequences.

Hybridization experiments show that DNA extracted from two distinct subsets of mononucleosomes (MNI and MN2) generated by a limited action of micrococcal nuclease on trout testis nuclei is enriched approximately 7-fold in sequences that are transcribed into cytoplasmic polyadenylated RNA in trout testis cells. Both subsets of mononucleosomes contain eight core histones, but MNI also possesses one or two molecules of a small, basic, high-mobility-group (HMG) protein H6 [Levy W., B., Connor, W. & Dixon, G. H. (1979) J. Biol. Chem. 254, 609-620], bound to a DNA fragment of 140 base pairs. In contrast, MN2 contains 1 molecule of H1 but no H6, and its DNA length is somewhat longer at 140-190 base pairs. The preferential release of these two subsets of mononucleosomes is correlated with the presence of a second larger HMG protein, HMG-T, in the linker regions flanking both types of mononucleosomes. The HMG-T-containing linker regions appear to be considerably more susceptible to attack by micrococcal nuclease than H1-containing linkers. Cross-reassociation reactions between the DNA from MN1 and MN2 subsets indicate that they share a significant extent of sequence overlap but also that each subset contains specific sequences that are absent in the other subset.

Animals

Comparison between different forms of estrogen cytosol receptor and the nuclear receptor extracted by micrococcal nuclease.

As an approach to the mechanism of the nuclear translocation of estrogen receptor, the estradiol nuclear receptor (RN) of lamb endometrium was extracted with micrococcal nuclease at 2--4 degrees and compared to the "native" 8S and to the Ca2+-transformed cytosol receptors. After extensive digestion of chromatin, giving up to 10% perchloric acid-soluble DNA and a majority of nucleosome monomers, up to 80% of the RN was extracted and under low ionic strength. This RN was found to be completely different from the partially proteolyzed Ca2+-transformed cytosol receptor. It migrated with a sedimentation constant of 4 and 6 S. The Stokes radius of the predominant form as determined by ACA 34 chromatography was 5.3 nm. The calculated apparent molecular weights were 130,000 and 90,000, respectively. The RN was able to bind DNA and was eluted from a diethylaminoethyl cellulose column at 0.23 and 0.30 M KCl. We conclude that the mechanism proposed by Puca et al., according to which the Ca2+-transformed cytosol receptor is split by a Ca2+ receptor-transforming factor into a smaller form able to cross the nuclear membrane, is very unlikely.

Animals

Distribution of H1 histone in chromatin digested by micrococcal nuclease.

The relative amount of H1 histone associated with isolated nucleosomes from calf thymus was determined as a function of the extent of DNA digestion by micrococcal nuclease. Generally the amount of H1 histone associated with mononucleosomes decreases with increasing digestion until 60% of the original H1 remains associated with DNA 150 base pirs or less in size. Coincidentally, H1 histone increases relative to the other histones in aggregated material that sediments through sucrose gradients to form a pellet. However, the level of H1 histone remains at control values for oligonucleosomes (dimer to hexamer) over the 30% digestion range studied. An increase in ionic strength to 0.3 M NaCl in the density gradient reveals a different pattern of H1 binding, whereby the amount of H1 reflects the average size of the DNA fragments with which it is associated. Although there is significant binding to nucleosomes per se, it appears that the major ionic involvement of H1 is with internucleosomal spacer DNA.

Animals

Estrogen receptor in hen oviduct chromatin, digested by micrococcal nuclease.

Nuclei from laying hen oviduct were prepared according to Hewish and Burgoyne i.e. in the presence of spermine and spermidine and in the absence of divalent cations and were then moderately digested by micrococcal nuclease. When the resulting chromatin was analysed by ultracentrifugation on a sucrose gradient, a peak of specific estradiol-binding sites was observed, sedimenting slightly faster (13-14 S) than the mononucleosomes (12 S). When the chromatin was centrifuged on a gradient containing heparin (5 microngram/ml) the sedimentation coefficient of the estradiol receptor peak shifted to 7-8 S; it returned to the 13-14 S position in the absence of heparin, when target organ chromatin was also present in the gradient. The preparation of the chromatin is described and the validity of the method to explore receptor localisation is discussed, as is the specificity of the receptor-DNA interaction.

Animals

Cesium chloride gradients of chromatin after treatment with micrococcal nuclease.

Cesium chloride equilibrium density centrifugation shows that treatment of rat liver nuclei with low concentrations of micrococcal nuclease for extremely short periods of time results in the appearance of chromatin fractions of low protein/DNA ratio and even free DNA. The DNA of these chromatin fractions is shorter than the DNA moiety of one chromatin subunit. The amount of high buoyant density material is decreased with increasing digestion time. We conclude that this material belongs to the minor chromatin fraction which is not organized according to the subunit model.

Animals

Accessibility of the ribosomal genes to micrococcal nuclease in Physarum polycephalum.

In Physarum polycephalum most genes coding for ribosomal RNA are not integrated in chromosomes, but are located in many copies in the nucleolus as plasmid-like palindromic DNA molecules. To find out whether coding sequences of rDNA are organized in a chromatin-like structure similar to that of bulk chromatin, nuclei were treated with micrococcal nuclease and DNA fragments were isolated. From bulk chromatin multimers of a basic unit of 170-180 base pairs were obtained. Nuclease fragmented DNA hybridized with labelled 19-S + 26-S rRNA was found to give the same saturation value as did unfragmented control DNA. No preferential degradation of ribosomal genes to acid soluble products was observed. A more detailed analysis of the nuclease degradation products was carried out with fragments separated by preparative gel electrophoresis. DNA eluted from the gels was hybridized in solution with labelled 19-S + 26-S rRNA. The coding sequences of rRNA were found to be degraded to approximately nucleosome size slightly more quickly than was the DNA of bulk chromatin. However, the distribution of the rDNA fragments on the gels did not coincide with the distribution of the fragments derived from bulk chromatin nucleosomes and their oligomers. The amount of rDNA in the interband regions was about intermediate between that found in the two adjacent bands. These results lead to the conclusion that the ribosomal genes, most of which are presumably active during rapid growth, are protected by proteins, probably histones. However, the ribosomal genes are present in a structure differing in some way from that of bulk chromatin.

DNA

Tetrahymena ribosomal RNA gene chromatin is digested by micrococcal nuclease at sites which have the same regular spacing on the DNA as corresponding sites in the bulk nuclear chromatin.

Synchronised cells of Tetrahymena pyriformis GL were labelled with 3H thymidine at a stage in the cell cycle when only the mitochondrial and extrachromosomal nucleolar ribosomal DNAs were replicating. In this way it was possible to prepare nuclei labelled selectively in the DNA of the ribosomal RNA genes. Since the ribosomal RNA cistrons of these cells are also very active in serving as a template for transcription, experiments were performed to test whether these genes are organised upon a nucleoprotein subunit structure of the kind that has been found in the total chromatin of a wide range of eukaryotic cell types. Tetrahymena macronuclei were prepared labelled uniformly in their DNA with 32P and labelled only in their nucleolar ribosomal DNA with 3H. Both the ribosomal genes and the bulk chromatin were then degraded in situ using micrococcal nuclease. The DNA fragments resulting from mild digestion were analysed on gels to reveal an identical DNA degradation pattern within both the ribosomal and bulk chromatins. It is concluded that the nucleoprotein structure of nucleolar rRNA cistrons posesses a periodic repeat along the DNA which is identical to that found in the substructure of unfractionated chromatin.

Animals