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Studies on histone oligomers. III. Effects of salt concentration and pH on the stability of histone octamer in chicken erythrocyte chromatin.

The core proteins dissociated from chicken erythrocyte chromatin in high salt and at various pHs were characterized according to their histone composition and the oligomeric degree of histones. The dissociation profile of histones from chromatin by salt was also examined. The type of histone oligomers formed depended on pH during dissociation and fractionation. Heterotype histone oligomers were obtained at pH 6--9, while the octamer dissociated into homotype histone oligomers at pH 4--5. At pH 8, the octamer was in an equilibrium with the (H2A . H2B)(H3 . H4)2 hexamer, the (H3 . H4)2 tetramer, and the (H2A . H2B) dimer. At pH 5, the octamer dissociated into homotype dimers, presumably (H2A . H2B) and (H3 . H4).

Animals↗

Study of antibodies to histones and histone synthetic peptides in pauciarticular juvenile chronic arthritis.

The objective of this study was to determine the prevalence of histone antibodies in early onset pauciarticular juvenile chronic arthritis (JCA), and to assess any association with disease activity in terms of arthritis or uveitis. Forty-four children with early onset pauciarticular JCA have been assessed prospectively using clinical and laboratory parameters. Sera were collected from these patients during clinical follow-up. Some of them had serial measurements during the period of study. Patient sera were analysed for histone antibodies by ELISA. A further study using 30 synthetic peptides of calf thymus core histones was performed by ELISA. Seventy-five per cent of children have IgM antibodies to histone, usually to more than one type. The highest values were anti H3 and H4 antibodies. There was no correlation between the level of anti-histone antibodies and anterior uveitis. There were increased levels of IgG antibodies to histone peptides, in particular the N- and C-terminal peptides of H3 in 70.5% of children. Antibodies to H3 peptides tend to be in patients with chronic anterior uveitis (P = 0.04).

Antibodies↗

Methylation of histone H4 by arginine methyltransferase PRMT1 is essential in vivo for many subsequent histone modifications.

PRMT1 is a histone methyltransferase that methylates Arg3 on histone H4. When we used siRNA to knock down PRMT1 in an erythroid cell line, it resulted in nearly complete loss of H4 Arg3 methylation across the chicken beta-globin domain, which we use as a model system for studying the relationship of gene activity to histone modification. We observed furthermore a domain-wide loss of histone acetylation on both histones H3 and H4, as well as an increase in H3 Lys9 and Lys27 methylation, both marks associated with inactive chromatin. To determine whether the effect on acetylation was directly related to the loss of H4 Arg3 methylation, we performed an in vitro acetylation reaction on chromatin isolated from PRMT1-depleted cells. We found that nucleosomes purified from these cells, and depleted in methylation at Arg3, are readily acetylated by nuclear extracts from the same cells, if and only if the nucleosomes are incubated with PRMT1 beforehand. Thus, methylation of histones by PRMT1 was sufficient to permit subsequent acetylation. Consistent with earlier reports of experiments in vitro, H4 Arg3 methylation by PRMT1 appears to be essential in vivo for the establishment or maintenance of a wide range of "active" chromatin modifications.

Acetylation↗

Proteolytic removal of core histone amino termini and dephosphorylation of histone H1 correlate with the formation of condensed chromatin and transcriptional silencing during Tetrahymena macronuclear development.

During the sexual cycle in Tetrahymena, the germ-line micronucleus gives rise to new macro- and micronuclei, whereas the former somatic macronucleus ceases transcription, becomes highly condensed, and is eventually eliminated from the cell. With polyclonal antibodies specific for acetylated forms of histone H4, immunofluorescent analyses have demonstrated that transcriptionally active macronuclei stain positively at all stages of the life cycle except during conjugation, when parental macronuclei become inactive and are eliminated from the cell. In this report using affinity-purified antibodies to either the acetylated or unacetylated amino-terminal domain of H4, immunofluorescent analyses suggest that the acetylated amino-terminal tails of H4 are proteolytically removed in "old" macronuclei during this period. This suggestion was further confirmed by biochemical analysis of purified old macronuclei that revealed several polypeptides with molecular mass 1-2 kD less than that of intact core histones. These species, which are unique to old macronuclei, are not newly synthesized and fail to stain with either acetylated or unacetylated H4 antibodies. Microsequence analysis clearly shows that these polypeptides are proteolytically processed forms of core histones whose amino-terminal "tails" (varying from 13 to 21 residues) have been removed. During the same developmental period, histone H1 is dephosphorylated rapidly and completely in old macronuclei. These results strongly suggest that the developmentally regulated proteolysis of core histones and dephosphorylation of histone H1 participate in a novel pathway leading to the formation of highly condensed chromatin and transcriptional silencing during Tetrahymena macronuclear development.

Acetylation↗

Fluorescently labelled histones as probes of nucleosome structure. Preparation and general properties of methionine-labelled histone H4.

A fluorescent derivative of calf thymus histone H4 has been prepared by the reaction of methionine-84 with N-(iodoacetylaminoethyl)8-naphthylamine-1-sulfonic acid at pH 2.4 in 8 M urea. The preparation and characterization of this labelled histone is described. Fluorescence emission measurements indicate that the label on H4 undergoes a 3--5-fold increase in emission intensity when H4 self-interacts or binds to DNA alone or is incorporated in a synthetic nucleosome. The changes observed are consistent with the formation of varied apolar environments around methionine-84, due most likely to histone-histone rather than histone-DNA interactions. Preliminary experiments indicate that the precise emission intensity of labelled H4 in the nucleosome is quite sensitive to conditions of ionic strength and histone integrity.

Animals↗

The histones of yeast. The isolation and partial structure of the core histones.

The four core histones of yeast chromatin have been isolated. Amino acid composition, electrophoretic mobility and partial sequences identify one variant each of the histones H3 and H4, whereas the histones H2A and H2B are represented by two variants each. In the yeast histones H3 and H4 7% of the residues, positioned in the partial sequences vary if compared with the corresponding histones from higher plants and animals, for the histones H2A and H2B from yeast this figure is 20%.

Amino Acid Sequence↗

Sequential ADP-ribosylation pattern of nucleosomal histones. ADP-ribosylation of nucleosomal histones.

The pattern of nucleosomal histones poly(ADP-ribosyl)ation is changed under conditions which affect the poly(ADP-ribosyl)ation state of the enzyme. At low NAD concentrations the enzyme can poly(ADP-ribosyl)ate histones H1 and H1, H2A, A2A, and H2B. However at NAD concentrations above 10 microM the enzyme preferentially poly(ADP-ribosyl)ates histone H1 to a hyper ADP-ribosylated form. Furthermore we have observed hyper ADP-ribosylation of histone H2B at NAD concentrations of 10 microM suggesting that histone H2B can undergo the same type of ADP-ribosylation pattern as histone H1. Also at higher NAD concentrations an elongation of the polymer attached to the enzyme and other nuclear proteins takes place.

Animals↗

Insights into the role of histone H3 and histone H4 core modifiable residues in Saccharomyces cerevisiae.

The biological significance of recently described modifiable residues in the globular core of the bovine nucleosome remains elusive. We have mapped these modification sites onto the Saccharomyces cerevisiae histones and used a genetic approach to probe their potential roles both in heterochromatic regions of the genome and in the DNA repair response. By mutating these residues to mimic their modified and unmodified states, we have generated a total of 39 alleles affecting 14 residues in histones H3 and H4. Remarkably, despite the apparent evolutionary pressure to conserve these near-invariant histone amino acid sequences, the vast majority of mutant alleles are viable. However, a subset of these variant proteins elicit an effect on transcriptional silencing both at the ribosomal DNA locus and at telomeres, suggesting that posttranslational modification(s) at these sites regulates formation and/or maintenance of heterochromatin. Furthermore, we provide direct mass spectrometry evidence for the existence of histone H3 K56 acetylation in yeast. We also show that substitutions at histone H4 K91, K59, S47, and R92 and histone H3 K56 and K115 lead to hypersensitivity to DNA-damaging agents, linking the significance of the chemical identity of these modifiable residues to DNA metabolism. Finally, we allude to the possible molecular mechanisms underlying the effects of these modifications.

Alleles↗

Rapid reversible changes in the rate of histone gene transcription and histone mRNA levels in mouse myeloma cells.

The levels of histone mRNAs are reduced 90 to 95% after treatment of mouse myeloma cells with inhibitors of DNA synthesis which disrupt deoxynucleotide metabolism. In contrast, novobiocin, which inhibits DNA synthesis but does not alter deoxynucleotide metabolism, did not alter histone mRNA levels. Upon reversing the inhibition by fluorodeoxyuridine by feeding with thymidine, histone mRNA levels are restored to control levels within 40 to 60 min. The rate of histone gene transcription is reduced 75 to 80% within 10 min after treatment with fluorodeoxyuridine and increased to control levels within 10 min after refeeding with thymidine. Inhibition of protein synthesis with cycloheximide or puromycin in cells which had been treated with fluorodeoxyuridine resulted in an increase of histone mRNA levels. This was partly due to an increase in the rate of transcription. The data indicate that both transcription and mRNA degradation are linked to deoxynucleotide metabolism. Continued protein synthesis is necessary for maintaining the inhibition of histone gene transcription.

Animals↗

Histone-histone interactions. I. An electrophoretic study.

Whole histone extracted from chromatin by either acid or protamine displacement was found by gel electrophoresis at pH7 to contain only two histone complexes, H2A-H2B and H3-H4, and uncomplexed histone H1. Although both complexes are dissociated at low pH or with high urea concentrations, removal of the denaturant resulted in complete complex reformation within minutes at the most. A syntematic investigation of binary, ternary and quaternary histone mixtures revealed that interactions also occur between histones H2B-H4 and H2A-H4. No evidence however was found for the formation of ternary and quaternary histone complexes.

Animals↗

Epigenetic regulation by histone methylation and histone variants.

Epigenetics is the study of heritable changes in gene expression that are not mediated at the DNA sequence level. Molecular mechanisms that mediate epigenetic regulation include DNA methylation and chromatin/histone modifications. With the identification of key histone-modifying enzymes, the biological functions of many histone posttranslational modifications are now beginning to be elucidated. Histone methylation, in particular, plays critical roles in many epigenetic phenomena. In this review, we provide an overview of recent findings that shape the current paradigms regarding the roles of histone methylation and histone variants in heterochromatin assembly and the maintenance of the boundaries between heterochromatin and euchromatin. We also highlight some of the enzymes that mediate histone methylation and discuss the stability and inheritance of this modification.

Amino Acid Sequence↗

Histone-produced magnesium extrusion from mitochondria and magnesium binding to histone.

Histone (60 microgram/mg mit. protein) extrudes Mg2+ from mitochondria by 30% with the utilization of endogenous substrates; in the presence of rotenone extrusion drops to about 18%. Dinitrophenol and ADP prevent this effect of histone. Mg2+ extrusion produced by histone depends on histone concentration being at a maximum (100% extrusion) at 107 microgram histone/mit. protein. It was found also that histone alone binds Mg2+ (1.6 nmol Mg2+/microgram histone).

Adenosine Diphosphate↗

Histones evoke thymocyte death in vitro; histone-binding immunoglobulins decrease their cytotoxicity.

Effects of various histones, poly-L-lysine, spermine, and the synthetic peptide Arg-Lys-Asn-Val-Tyr-Arg (thymohexine) on intact rat thymocytes were studied. Histones and poly-L-lysine displayed cytotoxicity, causing disorders in the membrane permeability of thymocytes and their death. The dose and time dependences of the effects of histones on thymocytes were determined. Preparations of normal human immunoglobulins bound histones but displayed neither cytotoxicity nor interaction with intact thymocytes. The immunoglobulins significantly decreased the number of dead thymocytes in the presence of total histones. However, the number of cells with detectable immunoglobulin molecules was increased in the presence of histone in the incubation medium. It is suggested that cytotoxicity depends on the number of epitopes on the cell membrane available for interaction with positively charged protein molecules.

Animals↗

Calculated flexibility of histone proteins correlate with mammalian histone H1 subtype.

We have calculated the polypeptide flexibility index for mammalian histone H1 sequences obtained from the National Center for Biotechnology Information Histone Sequence Database. This database contains over 1000 histone protein entries, from various species, compiled from SWISS_PROT, PIR, the Protein Data Bank (PDB), and CDS translations from GenBank. Histone H1 proteins were analyzed because of their critical role in chromatin structure and gene expression. Flexibility calculations revealed that histone subtype H1.0, which accumulates during terminal differentiation, has the highest flexibility index of all mammalian H1 subtypes. Other mammalian H1 subtypes had lower flexibility indices, including the human H1.2 subtype whose mRNA contains both a hairpin loop sequence and a poly(A) addition sequence. Histone mRNAs containing both of these structures have been shown to be expressed prior to and after terminal differentiation, yet these proteins do not necessarily accumulate in the chromatin of terminally differentiated cells. H1.2 and the H1.t have the lowest flexibility index (most ridged) of all human H1 subtypes. All human H1 proteins of the replication dependent subtypes have intermediate values for their flexibility indices.

Databases, Factual↗

Role of the histone "tails" in the folding of oligonucleosomes depleted of histone H1.

An oligonucleosome 12-mer was reconstituted in the absence of linker histones, onto a DNA template consisting of 12 tandemly arranged 208-base pair fragments of the 5 S rRNA gene from the sea urchin Ly-techinus variegatus (Simpson, R. T., Thoma, F. S., and Burbaker, J. M. (1985) Cell 42, 799-808). The ionic strength-dependent folding of this nucleohistone complex was compared with that of a native oligonucleosome fraction obtained from chicken erythrocyte chromatin, which had been carefully stripped of linker histones and fractionated in sucrose gradients. The DNA of this native fraction exhibited a narrow size distribution centered around the length of the 208-12 DNA template used in the reconstituted complex. These two complexes displayed very similar hydrodynamic behavior as judged by sedimentation velocity analysis. By combining these data with electron microscopy analysis, it was shown that the salt-dependent folding of oligonucleosomes in the absence of linker histones involves the bending of the linker DNA region connecting adjacent nucleosomes. It was also found that selective removal by trypsin of the N-terminal regions ("tails") of the core histones prevents the oligonucleosome chains from folding. Thus, in the absence of these histone domains, the bending of the linker DNA necessary to bring the nucleosomes in contact is completely abolished. In addition to the complete lack of folding, removal of the histone tails results in an unwinding at low salt of a 20-base pair region at each flanking side of the nucleosome core particle. The possible functional relevance of these results is discussed.

Animals↗

Comparative immunochemical analysis of the antigenic structures of the DNA-binding histone-like HU protein from Escherichia coli and eukaryotic histones.

The general antigenic structures of the DNA-binding HU protein from E. coli, histones H1, H2A, H2B, H3, and H4 from calf thymus, and histone H5 from chick erythrocytes were compared in immunoassays with the aid of monospecific polyclonal antibodies to the HU protein and the individual histones. A partial cross-reaction between the HU protein and antibodies to histones H1 and H5 was demonstrated. The reaction titres obtained in a solid-phase enzyme immunoassay indicated that the cross-reactions were equivalent to 30% of the reaction with homologous antigen for antibodies to H1, and to 20% and 12% (on dilution of HU protein in solutions of low and high ionic strength, respectively) of the reaction with homologous antigen for antibodies to H5. Cross-reactions between antibodies to the HU protein and histones H1, H5, H2A, H2B, H3, and H4 were not detected. We suggest that the resemblance between the general antigenic structures of the DNA-binding HU protein from E. coli and the lysine-rich linker histones H1 and H5 reflects the structure of the binding sites between these proteins and DNA, which presumably have a similar DNA-binding pattern and a similar functional role.

Animals↗

Expression of histone-U1 snRNA chimeric genes: U1 promoters are compatible with histone 3' end formation.

Chimeric genes which fuse the mouse histone H2a gene and the mouse U1b gene were constructed and introduced into CHO cells by cotransfection. In the UH genes, the U1b gene promoter and the start of the U1b gene were fused to the H2a gene in the 5' untranslated region. In the HU genes, the U1b 3' end was inserted into the 3' untranslated region of the H2a gene replacing the normal histone 3' end. Transcripts from the UH genes initiated at the start of the U1 gene and ended at the normal histone 3' end. Transcripts from the HU chimeric genes did not end at the U1 3' end but extended at least 80 nucleotides further and had heterogeneous 3' ends. Placing both a U1 snRNA promoter and a U1 snRNA 3' end around a histone coding region resulted in transcripts which initiate and terminate at the appropriate U1 ends. These results are consistent with previous reports that formation of the U1 3' ends require U1 promoters, but indicate that the histone 3' end can be formed on transcripts initiating at U1 promoters. The transcripts initiated at the U1 start site and ending at the histone 3' end are present on polyribosomes and show proper posttranscriptional regulation.

Animals↗

Nucleosome fractionation by mercury affinity chromatography. Contrasting distribution of transcriptionally active DNA sequences and acetylated histones in nucleosome fractions of wild-type yeast cells and cells expressing a histone H3 gene altered to encode a cysteine 110 residue.

A technique for the separation of transcriptionally active and inactive nucleosomes by mercury affinity chromatography has been applied to study the nucleosomal distribution of DNA sequences from the GAL1, ACT1, HIS4, MAT alpha, and HMRa genes of yeast. In mammalian cells, the method has been shown to separate active from inactive nucleosomes and to fractionate the active nucleosomes into two classes, one retained on the mercury column because of salt-labile associations with certain thiol-reactive non-histone proteins, and the other bound by covalent linkage of the cysteine 110 thiol groups of histone H3 molecules to the mercurated support. The first class of nucleosomes is elutable in 0.5 M NaCl; the second is displaced by 10 mM dithiothreitol (DTT) (Walker, J., Chen, T. A., Sterner, R., Berger, M., Winston, F., and Allfrey, V.G. (1990) J. Biol. Chem. 265, 5736-5746). We show that, in wild-type yeast cells, in which histone H3 lacks cysteinyl residues, very little DNA and a negligible complement of nucleosomes appear in the DTT-eluate, confirming the requirement for the H3-thiols in the mercury-binding reaction. Moreover, the DTT-eluted fraction is seriously deficient in the actively transcribed GAL1, ACT1, HIS4, and MAT alpha DNA sequences. Site-directed mutagenesis was employed to create an H3 gene containing a cysteine codon in place of the alanine codon at position 110 of the yeast H3 amino acid sequence. A strain was constructed containing the mutant histone H3 gene instead of the normal H3 gene. Subsequent fractionations of the mutant nucleosomes by mercury-affinity chromatography revealed a characteristic nucleosome peak in the DTT-eluted fraction. Its content of transcribed GAL1, ACT1, and HIS4 DNA sequences was 20- to 500-fold higher than that of the corresponding DTT-eluted fraction of wild-type yeast. Although this result is in accord with the finding that, in mammalian cells, the thiol groups of histone H3 become accessible when nucleosomes "unfold" during transcription, we find that nucleosomes containing the GAL1 DNA sequences of the yeast H3-mutant also bind to the mercury column when that gene is not being expressed. We conclude that many yeast nucleosomes are maintained in a "primed," potentially active state, possibly due to the very high constitutive levels of acetylation of the core histones. However, the nucleosomes of the HMRa gene, which is not expressed in a MAT alpha yeast strain, are virtually absent from the DTT-eluted nucleosome fractions of the H3-mutant cells, indicating that prolonged silencing of the gene is accompanied by compaction and loss of H3-thiol reactivity of its nucleosomes.

Acetylation↗