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Biophysical study of the globular organisation of interphase chromosomes.

The globular model of interphase chromosomes is studied using methods involving the statistical physics of polymers. An interphase chromatid is represented as a flexible chain of structural sub-units, or superdomains (SDs). Each SD is simulated as a number of chromatin fibre loops fixed at a nuclear matrix core. A chain of SDs is further folded in the nucleus in a compact conformation owing to volumetric interactions between SDs. The algorithm used is extended to incorporate the chain anchorage at different points. Excluded volume effects are taken into account in Monte Carlo simulation at both the SD and whole chromosome level. A variety of structures is observed in computer experiments. The simulation results correlate with the available experimental data.

Biophysics↗

Nuclear matrix proteins bind very tightly to specific regions of the chicken histone H5 gene.

The nuclear matrix is operationally defined as the structure remaining after nuclease-digested nuclei are extracted with high concentrations of salt. The nuclear matrix is thought to have a role in organizing higher order chromatin into loop domains. We determined whether specific regions of the histone H5 gene were very tightly bound to protein of erythrocyte and liver nuclear matrices in vitro. We demonstrate that DNA fragments spanning sequences 5' to the promoter and the 3' enhancer region of the histone H5 gene, but not DNA fragments spanning the promoter, were very tightly bound to protein of nuclear matrices of erythrocytes and liver. The nuclear matrix consists of internal nuclear matrix and nuclear pore-lamina complex. Recently, we demonstrated that histone deacetylase could be used as a marker enzyme of the internal nuclear matrix. We demonstrate that nuclear pore-lamina complex preparations that were depleted of histone deacetylase activity, and thus of internal nuclear matrix, retained the protein that bound very tightly to the beta-globin and histone H5 enhancers. These results provide evidence that specific regions of the histone H5 gene are very tightly bound to nuclear pore-lamina complex protein.

Animals↗

Protein kinase C control of gene expression.

Gene expression is fashioned at multiple interconnected levels and is controlled by a complex interplay between nucleosomal assembly, the establishment of multifaceted transcriptional motifs, and the temporal and spatial organization of chromatin in loops and domains. Protein phosphorylation is one of the most versatile posttranslational modifications used in eukaryotic cells and plays a crucial role in the continuous remodeling of different transcriptional regulators. The protein kinase C (PKC) family of serine-threonine kinases encompasses 12 different isozymes that have been shown to transduce a myriad of signals mediated by phospholipid hydrolysis as a consequence of the activation of G protein-coupled receptors, tyrosine kinase receptors, and nonreceptor tyrosine kinases. Although the analysis of PKC activity in many systems has provided crucial insights to its biological function, unraveling the molecular mechanisms that underlie isozyme-specific modulation of gene expression within the complexity of genome structure and function remains a challenging issue. This review focuses on recent advances in PKC-dependent regulation of gene expression within the context of the dynamic linkages involving nuclear architecture and transcription. Implications of isozyme-specific phosphorylation of selected members of transcription factors are also discussed. Future perspectives disclosed by recently available methods for large-scale transcriptional profiling are also outlined.

Active Transport, Cell Nucleus↗

[Electron microscopic study of changes in chromosomal structural organization under the effect of formamide].

Isolated human metaphase chromosomes were treated with formamide at different (0-70%) concentrations and examined electronmicroscopically by protein monolayer technique. At increasing formamide concentration chromosomes gradually decondense, the scaffold becomes more clearly visible, the loops of chromatin fibres coming off the central part of chromosomes lose their nucleosomal appearance. Electrophoretic analysis of chromosomal proteins data show that formamide-treated chromosomes have approximately the same histone content as those before treatment, although chromosomes treated with 70% formamide look very similar to histone-depleted ones described elsewhere.

Chromosomes, Human↗

Role of nuclear architecture in the initiation of eukaryotic DNA replication.

The eukaryotic genome is compacted in the cell nucleus, in a way that allows its faithful and ordered replication each cell cycle. Chromatin is organized into topologically constrained loops that are anchored to the nuclear matrix by specific attachment regions (SARs). Chromatin loops were proposed to correspond to replication units. In particular, it has been suggested that replication origins coincide with SARs. Critical examination of these hypotheses has long been hampered by the elusive nature of higher eukaryotic DNA replication origins and termini. In recent years, however, a number of loci have been mapped for both SARs and replication units, and studies on the nuclear localization of replicating DNA and replication proteins have begun. We review these data and argue that they question this model. We then try to delineate other aspects of chromosome compartmentalization and cell-cycle remodeling which might be responsible for the specification and activation of metazoan DNA replication origins.

Animals↗

Colinearity loops out.

Modulation of chromatin structure has long been proposed to underlie the colinear regulation of Hox genes during animal development. In a recent paper, Chambeyron and Bickmore explore this possibility in retinoic acid-induced ES cells. They show that, while chromatin remodeling confers transcriptional competence to the gene cluster, subsequent sequential extrusion of genes from their chromosome territory may determine their coordinated expression in time.

Animals↗

Chromatin condensation is confined to the loop and involves an all-or-none structural change.

Using differential scanning calorimetry in combination with pulsed field gel electrophoresis, we relate here the changes in the thermal profile of rat liver nuclei induced by very mild digestion of chromatin by endogenous nuclease with the chain length distribution of the DNA fragments. The enthalpy of the endotherm at 106 degrees C, which reflects the denaturation of the heterochromatic domains, decreases dramatically after the induction of a very small number of double-strand breaks per chromosome; the thermal transition disappears when the loops have undergone on average one DNA chain scission event. Quantitative analysis of the experimental data shows that the loop behaves like a topologically isolated domain. Also discussed is the process of heterochromatin formation, which occurs according to an all-or-none mechanism. In the presence of spermine, a strong condensation agent, only the loops that have undergone one break are able to refold, in confirmation of the extremely cooperative nature of the transition. Furthermore, our results suggest a relationship between the states that give rise to the endotherms at 90 degrees C and 106 degrees C and the morphologies referred to as class II and class III in a previous physicochemical study of the folding of chromatin fragments (Widom, 1986. J. Mol. Biol. 190:411-424) and support the view that the overall process of condensation follows a sequential (two-step) pathway.

Animals↗

The degradation profile of extrachromosomal circular DNA during cisplatin-induced apoptosis is consistent with preferential cleavage at matrix attachment regions.

Extrachromosomal circular DNA molecules are prevalent in cancer cells and harbor amplified genes, such as oncogenes and drug resistance genes, that can provide a selective growth advantage to cancer cells. These circular DNA structures include double minute chromosomes (dmin), which can be detected with light microscopy following Giemsa staining, and submicroscopic circular DNA structures referred to as episomes. In this study, we investigated the fate of dmin and episomes in multidrug-resistant human epidermoid KB-VI cells undergoing cisplatin-induced apoptosis-a mode of cell death initially characterized by the fragmentation of chromosomal DNA, while the nuclear membrane remains intact. The circular DNA structures carry amplified copies of the multidrug resistance gene (MDR1). During cisplatin-induced apoptotic cell death, episomes and dmin, as well as native chromosomes, were degraded into high molecular weight DNA fragments of approximately 50 kb in length. DNA fragments in this size range appear to result from the preferential cleavage of matrix-associated regions in chromatin with the subsequent release of 20-30 nm loop domains of chromatin from the nuclear scaffold. Scanning electron microscopy studies were performed and confirmed the presence of 30 nm filaments in a higher-order DNA packing of MDR1-containing dmin and episomes. These combined data provide strong evidence that the higher-order DNA packing of episomes, as well as dmin, is similar to that of native chromosomes and underscore the potential for extrachromosomal DNA amplicons to study the structural and functional organization of chromatin. We discuss the implications of extra-chromosomal DNA matrix associated regions competing with native chromosomal DNA for binding to the nuclear matrix in tumor cells.

ATP Binding Cassette Transporter, Subfamily B, Mem↗

The nucleus: a black box being opened.

Until recently our knowledge about the structural and functional organization of the cell nucleus was very limited. Recent technical developments in the field of ultrastructural analysis, combined with ongoing research on the properties of the nuclear matrix, give new insight into how the nucleus is structured. Two types of observations shape our ideas about nuclear organization. First, most nuclear functions (replication, transcription, RNA processing, and RNA transport) are highly localized within the nucleus, rather than diffusely distributed. Moreover, they are associated with the nuclear matrix. Second, chromatin is organized in discrete loops, bordered by nuclear matrix attachment sequences (MARs). Each loop may contain one or several genes. The arrangement of chromatin in loops has profound consequences for the regulation of gene expression.

Animals↗

Does looping and clustering in the nucleus regulate gene expression?

There has been considerable interest in the way that chromatin is spatially organised within the cell nucleus and how that may relate to gene expression and its control. New molecular techniques have identified looped chromatin domains at the mammalian beta-globin and the Drosophila hsp70 loci. Looped domains may insulate chromatin from the influence of neighbouring domains, and the bases of loops may also act to concentrate proteins locally within the nucleus. The spatial clustering of sequences from the Drosophila bithorax complex, located in trans, has also been demonstrated. An emerging theme is that bringing DNA and proteins together within a defined sub-region of the nuclear volume facilitates both the activation and the repression of gene expression. Nuclear compartments may also be involved in the post-translational modification of proteins by sumoylation and ubiquitylation.

Animals↗

BET family BRD3 initiates DSB-induced chromatin remodeling with TIP60 to promote R-loop-mediated HR.

Mechanisms for genome stability in actively transcribed regions are essential for cellular homeostasis; however, these mechanisms are poorly understood. Herein, we identify the bromodomain and extraterminal domain (BET) family BRD3 as the genome caretaker in actively transcribed chromatin. We identify the protein network between BRD3 and chromatin remodeler TIP60. During transcription, BRD3 localizes to actively transcribed chromatin through its N-terminal bromodomains. Following DNA double-strand breaks (DSBs) at the actively transcribed chromatin, the C-terminal extraterminal (ET) domain of BRD3 recruits CHD4 via its KIKL-like motifs to replace HP1 with the TIP60 (Tat-interactive protein, 60 kDa) complex, promoting H4K16 acetylation and MBTD1 recruitment, which creates chromatin barriers to 53BP1. This process recruits BRCA1 and R-loop-processing factors to promote R-loop-mediated homologous recombination (HR) and suppress 53BP1 and mutagenic non-homologous end-joining. Our study elucidates the mechanism by which BRD3 initiates DSB-induced chromatin remodeling by CHD4 and TIP60 to promote R-loop-mediated HR on actively transcribed chromatin to maintain genome stability.

Humans↗

Visualization of Transcription in early mouse embryos.

Transcriptional activity during early mammalian embryogenesis was examined in 2 cell, 4--8 cell and late morula/early blastocyst mouse embryos. Zona pellucida-free embryos were obtained after pronase digestion followed by a PMSF wash to inhibit proteolytic activity. The embryos were then lysed with NP40 detergent and spread for electron microscopy according to Miller and Bakken (1972). pre-mRNA transcription was observed at all stages. Comparison of growing RNP chain lengths revealed statistically significant differences in the distribution of shorter fibrils between the successive developmental stages examined. The number of shorter fibrils was lower in the 4--8 cell stage than in either of the two other stages. Transcription complexes of ribosomal type were detected only in 4--8 cell and morula/blastocyst embryos. Structures resembling replication loops were observed within chromatin from all stages. Similar loop-like structures as well as individually transcribed RNP fibrils were also occasionally found on fibres emerging from mitotic chromosomes. The results are discussed in the context of recent findings concerning genetic expression in early mouse embryos.

Animals↗

Identification and analysis of a matrix-attachment region 5' of the rat glutamate-dehydrogenase-encoding gene.

Eukaryotic chromatin is thought to be organized into independently regulated loop domains by interaction of matrix-attachment regions (MAR) of the DNA to the nuclear matrix. To define the borders of the chromatin loop containing the glutamate dehydrogenase (GDH) gene, we screened the GDH gene and flanking regions for the presence of MAR sequences. We here report identification, mapping and sequencing of an (A + T)-rich MAR located 2010-1397 bp upstream of the transcription initiation site of GDH, that mediates strong binding to the nuclear matrix. Smaller regions can also confer binding capacity, although at a lower affinity. This (A + T)-rich MAR contained 11 bp and 12 bp (A + T)-rich direct repeats, but not any of the sequences previously described to be associated with MAR activity. We here show that the presence of (A + T)-rich domains of DNA is not sufficient to confer binding capacity, since (A + T)-rich sequences located downstream of the identified MAR did not bind to the nuclear matrix. Moreover, a consensus topoisomerase-II-binding site located downstream of the MAR was found to be insufficient to mediate substantial binding. The number of binding sites in the nuclear matrix for MAR-containing fragments was shown to be approximately 15,000/nucleus. Since organization of the entire rat genome in loops with an average loop size of 100 kbp would require 60,000 binding sites, this suggests that only part of the genome is organized in loops. Alternatively, we might have underestimated the number of binding sites. The GDH MAR, and MAR-containing fragments derived from other species, were found to bind to the same binding sites in the nuclear matrix, although the affinity varied.

Animals↗

Loop formation by the transgene WAP:6xHishGH in transgenic rabbit fibroblasts, revealed by fluorescence in situ hybridization to nuclear halos.

Using fluorescence in situ hybridization (FISH) to somatic nuclear halos from transgenic rabbits WAP:6xHishGH, we present evidence for stability of transgenesis at the chromatin level. FISH performed on fibroblasts from a homozygous individual showed 2 independent loops from both chromosomes of pair 7. On a heterozygous individual, FISH detected a single loop. According to the concept of chromatin loops and their influence on gene expression, this shows that the human growth hormone transgene, which was actively expressed in mammary gland under the influence of the tissue-specific promoter, was inactive in examined skin fibroblasts.

Animals↗

Histone modifications, chromatin structure, and the nuclear matrix.

The nuclear matrix has a role in the organization and function of nuclear DNA. A combination of stable and transient interactions between chromatin and the nuclear matrix is involved in organizing DNA within the nucleus. DNA sequences (matrix attachment regions) at the base of a loop bind to nuclear matrix proteins and arrange the nuclear DNA into chromatin loop domains. Multiple, transient interactions between the nuclear matrix and transcriptionally active chromatin are thought to be responsible for the insoluble feature of transcriptionally active chromatin. Current evidence suggests that histone acetyltransferase, histone deacetylase (enzymes that catalyze rapid histone acetylation and deacetylation), transcription factors, and the transcription machinery mediate the transient attachments between nuclear matrix and active chromatin. Highly acetylated core histones, which are associated with transcriptionally active DNA, are also ubiquitinated and phosphorylated. Recent studies show that specific H1 subtypes and their phosphorylated isoforms are localized in centers of RNA splicing in the nucleus. The implications of these findings and the impact of the histone modifications on the nuclear-organization of chromatin are discussed.

Animals↗

Protein-dependent conformational behavior of DNA in chromatin.

Information from circular dichroism (CD) and DNA thermal denaturation has been used in concert to study the conformational behavior of DNA in the extended 11-nm fiber of chromatin isolated from HeLa nuclei. The histone-dependent conformational states of the system were investigated by selectively removing the hydrophilic histone domains with trypsin. These were compared to acetylated chromatin from the same source. The integrated intensity of the positive CD band for DNA above 260 nm is found to increase with the content of relatively unstressed B-form DNA. This same increase is observed along the series of whole, H1-stripped, and trypsinized chromatin samples as protein is removed. Hence, the ratio of percent hyperchromicity to integrated CD band intensity of the respective melting transitions provides useful information on the conformational state of DNA in the three principal regions of the chromatin fiber: the central loop and flanking nucleosomal regions and the linker. Results from this study suggest that central loop DNA in both hyperacetylated and control chromatin relaxes as protein is removed. However, hyperacetylated chromatin shows significantly less dependence than control chromatin upon core histone hydrophilic domains in the flanking and linker regions. Thus, histone hyperacetylation evidently relaxes DNA in chromatin with no major overall conformational changes. A possible role of histone hyperacetylation may therefore be to reduce cooperativity in the unfolding transition in chromatin and thus provide for greater localized control of unfolding during transcription.

Chromatin↗

[Electron microscope study of changes in the chromatin structure in different functional states of nuclei of a ciliate Bursaria truncatella and a myxomycete Physarum polycephalum].

Chromatin structural organization was studied by means of electron microscopy in the macronuclei of ciliate Bursaria truncatella at various stages of the life cycle (at different time intervals after cell division, in resting cysts and at excysting) and in the nuclei of myxomycete Physarum polycephalum during the mitotic cycle. Inactive chromatin was shown to be organized in compact clumps 100-300 nm in diameter linked with each other, their loop organization being convincingly demonstrated. Upon activation chromatin decompacts and is represented by nucleosomal fibres with a lot of replicationally and transcriptionally active regions. Both the reptication and transcription processes in physarum nuclei and transcription processes in bursaria can occur on the loops of chromatin fibres emerging from the decompacting clump. The data obtained evidence in favour of a structural-functional correspondence between the chromatin clumps of physarum and bursaria and the chromomeres in chromosomes of higher eucaryotes. Based on the data received it is concluded that the chromatin clump represents a dynamic structure unit able to decompact forming the loop-shaped chromatin fibres. Such a structural organization provides the spacial distribution of DNA in the nuclei and the possibility of selective functioning of definite regions of the genome.

Animals↗