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Circles in spermatocyte chromatin loops. Electron microscopy and AgAs-NORs studies.

We describe the production of circles in chromomeric loops during the pachytene stage of the spermatocytes. These circles are found attached to chromatin or already free in the nucleoplasm. Each circle measures an average of 3700 A in circunference. We suggest that such circles might indicate the presence of tandem repetitions.

Animals↗

Chromatin loop domain organization within the 4q35 locus in facioscapulohumeral dystrophy patients versus normal human myoblasts.

Fascioscapulohumeral muscular dystrophy (FSHD) is an autosomal dominant neuromuscular disorder linked to partial deletion of integral numbers of a 3.3 kb polymorphic repeat, D4Z4, within the subtelomeric region of chromosome 4q. Although the relationship between deletions of D4Z4 and FSHD is well established, how this triggers the disease remains unclear. We have mapped the DNA loop domain containing the D4Z4 repeat cluster in human primary myoblasts and in murine-human hybrids. A nuclear matrix attachment site was found located in the vicinity of the repeat. Prominent in normal human myoblasts and nonmuscular human cells, this site is much weaker in muscle cells derived from FSHD patients, suggesting that the D4Z4 repeat array and upstream genes reside in two loops in nonmuscular cells and normal human myoblasts but in only one loop in FSHD myoblasts. We propose a model whereby the nuclear scaffold/matrix attached region regulates chromatin accessibility and expression of genes implicated in the genesis of FSHD.

Animals↗

A polymer model for the structural organization of chromatin loops and minibands in interphase chromosomes.

A quantitative model of interphase chromosome higher-order structure is presented based on the isochore model of the genome and results obtained in the field of copolymer research. G1 chromosomes are approximated in the model as multiblock copolymers of the 30-nm chromatin fiber, which alternately contain two types of 0.5- to 1-Mbp blocks (R and G minibands) differing in GC content and DNA-bound proteins. A G1 chromosome forms a single-chain string of loop clusters (micelles), with each loop approximately 1-2 Mbp in size. The number of approximately 20 loops per micelle was estimated from the dependence of geometrical versus genomic distances between two points on a G1 chromosome. The greater degree of chromatin extension in R versus G minibands and a difference in the replication time for these minibands (early S phase for R versus late S phase for G) are explained in this model as a result of the location of R minibands at micelle cores and G minibands at loop apices. The estimated number of micelles per nucleus is close to the observed number of replication clusters at the onset of S phase. A relationship between chromosomal and nuclear sizes for several types of higher eukaryotic cells (insects, plants, and mammals) is well described through the micelle structure of interphase chromosomes. For yeast cells, this relationship is described by a linear coil configuration of chromosomes.

Animals↗

CTCF mediates long-range chromatin looping and local histone modification in the beta-globin locus.

CTCF (CCCTC-binding factor) binds sites around the mouse beta-globin locus that spatially cluster in the erythroid cell nucleus. We show that both conditional deletion of CTCF and targeted disruption of a DNA-binding site destabilize these long-range interactions and cause local loss of histone acetylation and gain of histone methylation, apparently without affecting transcription at the locus. Our data demonstrate that CTCF is directly involved in chromatin architecture and regulates local balance between active and repressive chromatin marks. We postulate that throughout the genome, relative position and stability of CTCF-mediated loops determine their effect on enhancer-promoter interactions, with gene insulation as one possible outcome.

Animals↗

The localization of ultraviolet-induced excision repair in the nucleus and the distribution of repair events in higher order chromatin loops in mammalian cells.

Several lines of evidence indicate that eukaryotic DNA is arranged in highly supercoiled domains or loops, and that the repeating loops are constrained by attachment to a nuclear skeletal structure termed the nuclear matrix. Active genes are transcribed at the nuclear matrix and during replication the loops are reeled through fixed matrix-associated replication complexes. We have investigated whether the repair of DNA damage also occurs in the nuclear matrix compartment. Biochemical analysis of confluent normal human fibroblasts, ultraviolet (u.v.)-irradiated with 30 J m-2 and post-u.v. incubated in the presence of hydroxyurea, did not show any evidence for the occurrence of repair synthesis at the nuclear matrix either 30 min or 13 h after irradiation. Autoradiographic visualization of repair events in single DNA halo-matrix structures confirmed the biochemical observations. At a biologically more relevant dose of 5 J m-2 repair synthesis seems to initiate at the nuclear matrix, although only part of the total repair could be localized there. In u.v.-irradiated (30 J m-2) normal human fibroblasts post-u.v. incubated in the presence of hydroxyurea and arabinosylcytosine for 2 h, multiple single-stranded regions are generated in a DNA loop as a result of the inhibition of the excision repair process. Different biochemical approaches revealed that most of the single-stranded regions are clustered, indicating that the repair process itself is non-random or that domains in the chromatin are repaired at different rates. Preferential repair of certain domains in the chromatin was shown to occur in xeroderma pigmentosum cells of complementation group C (XP-C). In XP-C cells these domains are localized near the attachment sites of DNA loops at the nuclear matrix. In contrast, xeroderma pigmentosum cells of complementation group D as well as Syrian hamster embryonic cells with limited excision-repair capacities, revealed a random distribution of repair events in DNA loops. The preferential repair of matrix-associated DNA in XP-C cells may be related partly to repair of transcriptionally active DNA and this may account for the ability of XP-C cells, in contrast to XP-D cells, to recover u.v.-inhibited synthesis of DNA and RNA.

Animals↗

Distribution of u.v.-induced repair events in higher-order chromatin loops in human and hamster fibroblasts.

The repair of u.v.-induced damage in human and rodent cells was investigated at the level of DNA loops attached to the nuclear matrix. After 2 h post-u.v. incubation, DNase I digestion studies revealed a 3- to 4-fold enrichment of repair-labeled DNA at the nuclear matrix in four xeroderma pigmentosum cell strains belonging to complementation group C. This non-random distribution was not affected by treatment with sodium butyrate. In other cells with limited excision repair, i.e. two xeroderma pigmentosum cell strains of complementation group D and Syrian hamster embryonic cells, as well as in HeLa cells and normal human fibroblasts, no enrichment of repair-labeled DNA at the nuclear matrix was observed. Visualization of repair events in DNA loops by autoradiography of DNA halo-matrix structures confirmed the biochemical observations. The presence or absence of preferential repair of nuclear matrix-associated DNA paralleled the presence or absence of inhomogeneity in the distribution of T4 endonuclease-V-sensitive sites. A detailed analysis of repair events in xeroderma pigmentosum cells of complementation group C showed that after 2 h post-u.v. incubation, repair events were found at both attachment sites in a limited number of loops and that large domains of loops were not subjected to repair.

Animals↗

The organisation of chromatin loops: characterization of a scaffold attachment site.

Previous experiments have identified a 657-bp restriction fragment in the non-transcribed region of the Drosophila histone gene cluster that is specifically associated with the histone-depleted nuclear scaffold. The remaining fragments of the 5-kb histone repeat were shown to be readily released from the scaffold; hence it was proposed that the tandemly repeated cluster of histone genes forms a series of 5-kb loops restrained by a nuclear substructure at the sites of attachment. Here we show that the attachment fragment is tightly associated with protease-sensitive material, whereas the solubilized fragments are relatively protein-free. Exonuclease III digestion has been used to map the location of protein complexes on the attachment fragment. We have defined two regions of approximately 200 bp whose borders provide kinetic barriers to exonuclease III degradation. They are separated by a nucleaseaccessible region of approximately 100 bp. The protected regions are sufficient to mediate association of the fragment with the histonedepleted nuclei. Sequence analysis reveals an enrichment for sequences closely related to the topoisomerase II cleavage consensus in these two domains.

Journal Article↗

3D chromatin remodeling during domestication defines novel targets for crop improvement.

Three-dimensional (3D) genome folding shapes gene regulation, yet the genetic underpinnings linking 3D genome evolution to phenotypic innovation during domestication remain elusive. Using population-scale Hi-C profiling of 34 semi-wild and 267 cultivated allotetraploid cottons, we generated a pan-3D genome atlas capturing extensive diversity in topologically associating domains (TADs) and chromatin loops. Chromatin interactome-wide association studies identified 105 TAD reconfigurations and 58 loop rewirings that were established as the 3D chromatin basis of fiber quality, boosting heritability estimates for fiber strength by 16% and fiber length by 20%. We reveal that domestication selection within sequence-defined sweeps fixed 57% of 3D conformation signatures, thereby decoupling sequence-level from chromatin-level selection and shifting the subgenome expression balance of 39 homoeologs in cultivated cotton. Sequence-based modeling and mutational analyses identified the C2H2 zinc-finger protein YY1 as a conserved mediator of 3D genome organization. This study provides a resource for redefining precision-breeding paradigms by harnessing cryptic 3D chromatin targets.

3D genome↗

Higher-order chromatin structure: looping long molecules.

Chromatin structure plays a variety of roles in eukaryotes, ranging from the structural organization of the genome to the facilitation of transcription factors and remodeling of individual gene promoters. Higher-order chromatin structure typically refers to those structural features of the genome that serve to facilitate large-scale condensation and packaging. It is becoming increasingly clear, however, that large-scale features that create loop domains play an important role in the management and functional organization of the genome as well. Recently, plant models have made significant contributions to our understanding of higher-order chromatin structures in eukaryotes.

Animals↗

Periodicity of DNA folding in higher order chromatin structures.

Each level of DNA folding in cells corresponds to a distinct chromatin structure. The basic chromatin units, nucleosomes, are arranged into solenoids which form chromatin loops. To characterize better the loop organization of chromatin we have assumed that the accessibility of DNA inside these structures is lower than on the outside and examined the size distribution of high mol. wt DNA fragments obtained from cells and isolated nuclei after digestion with endogenous nuclease or topoisomerase II. The largest discrete fragments obtained contain 300 kbp of DNA. Their further degradation proceeds through another discrete size step of 50 kbp. This suggests that chromatin loops contain approximately 50 kbp of DNA and that they are grouped into hexameric rosettes at the next higher level of chromatin structure. Based upon these observations a model by which the 30 nm chromatin fibre can be folded up into compact metaphase chromosomes is also described.

Animals↗

Chromatin fiber loops protruded artificially from nuclei of rat ascites hepatoma cells.

To determine the size and location of supranucleosomal fibers, the isolated and swollen nuclei from rat ascites hepatoma cells were broken mechanically by a homogenizer, and the broken nuclei were observed with an electron microscope, with and without treatment with detergent Joy. The observation of the broken nuclei treated with 0.06% Joy demonstrated that most, but not all the protruded chromatin, had a loop structure. Protrusion of chromatin from nuclear fragments was estimated to be about 0.77 microns in length. The conformation of protruded chromatin mainly consisted of supranucleosomal fiber, and a little of nucleosomal fiber. Electron microscopy also indicated that an anchorage of chromatin was nuclear lamina. Therefore, chromatin loop size of supranucleosomal fiber (solenoid) was about 1.54 microns in length, corresponding to nucleosomal fiber of about 9.24 microns in length.

Animals↗

Telomere and centromere DNA are associated with the cores of meiotic prophase chromosomes.

Mouse (Mus musculus) whole-mount, surface-spread, meiotic prophase chromosomes have an axial core structure, the synaptonemal complex, SC, from which extend chromatin loops. This arrangement permits a novel approach to the analysis of chromosome structure. Using in situ hybridization, the types of DNA sequences preferentially associated with the SC and the types located primarily in the chromatin loops can be determined. With biotinylated probes, detected by avidin conjugated to FITC, we present evidence for differential chromatin-SC interaction. The telomere sequence (TTAGGG)n is associated exclusively with the two ends of each autosomal SC rather than with the chromatin loops. The minor satellite DNA sequences are predominantly localized to the centromeric region of the SC, as defined by CREST serum anti-centromere antibodies. In contrast, the major satellite DNA probe hybridizes to the chromatin loops of the centromeric heterochromatin, and a probe containing a LINE sequence hybridizes to chromatin loops in general with no obvious preference for the SC. These observations demonstrate that, depending on the type of DNA sequence, the chromatin has different properties in regard to its association with the SC.

Animals↗

Architectural transcription factors collectively shape nuclear radial positioning of chromatin contacts.

The measurement of three-dimensional genome folding in the nucleus, mostly through Hi-C methods, is expressed as contact frequencies between genomic segments, without anchoring to physical axes of the spherical nucleus. Here, we mapped the chromatin contacts along nuclear radial axis and built radial score by factoring in contact frequencies. The chromatin high-order structures exhibit rich diversity along radial axis. Furthermore, the proximal trans contacts retrieved by radial score reveal conserved active/inactive chromatin segregation across intra- and interchromosomal interactions. Ablation of CTCF proteins disrupts chromatin loops with mild changes to chromatin radial positioning. By acutely perturbing multiple transcription factor (TF) occupancy, chromatin loop dissolutions are often accompanied by radial dissociations between two anchors. Our work provides a genome architecture reference map adhering to nuclear physical axis and suggests that multiple architectural TFs collectively shape nuclear positioning of chromatin and their contacts, with contacts serving as forces on chromatin positioning as well.

Chromatin↗

Association by guilt: identification of DLX5 as a target for MeCP2 provides a molecular link between genomic imprinting and Rett syndrome.

Rett syndrome (RTT) is an X-linked dominant neurodevelopmental disorder affecting almost exclusively girls. Although mutations in methyl-CpG-binding protein (MeCP2) are known to be associated with RTT, gene expression patterns are not significantly altered in MeCP2-deficient cells. A recent study1 identified MeCP2-mediated histone modification and formation of a higher-order chromatin loop structure specifically associated with silent chromatin at the Dlx5-Dlx6 locus in normal cells, and its absence thereof in RTT patients. This altered expression of Dlx5 through loss of silent chromatin loop formation provides a molecular mechanism underlying RTT and proposes a novel role for MeCP2 in chromatin organization and imprinting.

Animals↗

Transcriptionally active chromatin in loops of lampbrush chromosomes at physiological salt concentrations as revealed by electron microscopy of sections.

The structural organization of the transcribed loops of lampbrush chromosomes present in the vegetative nuclei of the green algae, Acetabularia mediterranea and A. crenulata, and in oocyte nuclei of the newt, Pleurodeles waltlii, has been studied by electron microscopy of relatively thick (100--200 nm) and ultrathin sections through chromosomes prepared and fixed at physiological salt concentrations. The procedure allows the direct comparison of the same chromosome or chromosome region by light and electron microscopy, that means identification of the transcriptional arrays in specific loops. After such preparations the loop axis reveals regions that are smoothly-contoured ("non-beaded") and only 4 to 7 nm thick and are clearly different from supranucleosomal forms of inactive chromatin fibrils as well as from extended filaments of nucleosomal granules examined in parallel. This indicates that the chromatin of the loops axis of intensely transcribed regions is in a structural form different from that of non-transcribed chromatin. A similarly thin axis has been identified in loops of chromosomes of nuclei fixed in situ. The lateral ribonucleoprotein (RNP) fibrils associated with transcribed loop regions appear as serial arrays of granules, often of regular size, which are smaller in the chromosomes of Acetabularia (mean diameter 18 nm) than in those of amphibia (mean diameter 28 nm). Discontinuous arrays of lateral RNP fibrils and fibril arrays with different polarity are found in some loops. Certain loops and loop regions are characterized by specific patterns of aggregation of such lateral RNP fibrils which appear to correspond to the "granules" visible in these loops in the light microscope. The observations show that arrays of transcriptional complexes in chromosome loops can be visualized in thin sections of material prepared at physiological ionic strength with similar resolution and clarity as in spread preparations of chromosomal material dispersed in extremely low salts buffers. The results are interpreted to approximate the organization of loop structures in vivo and to show that, at physiological ionic strength, the chromatin of the loop axis is organized in a form different from that characteristic of non-transcribed chromatin.

Chlorophyta↗

Mapping long-range chromatin organization within the chicken alpha-globin gene domain using oligonucleotide DNA arrays.

We have analyzed the organization of the chicken alpha-globin gene domain using DNA miniarrays and have found two novel chromatin loop attachment regions. We have found a 40-kb loop domain that includes all the alpha-globin genes in cells of erythroid origin. One of the domain borders colocalizes almost exactly with a strong MAR element and with a block of enhancer-blocking elements found earlier at the upstream end of the alpha-globin gene domain. The domain structure was found to be different in a lymphoid cell line DT40. We propose to use the technique of DNA arrays to map the nuclear matrix attachment sites that define the borders of chromosome loop domains. The technique of DNA arrays permits a large number of DNA sequences to be immobilized on a glass or nylon matrix. This may prove useful for mapping chromatin loop positions within the human genome by using a pool of chromatin loop attachment regions as a probe in a hybridization with a DNA chip containing a specific DNA region.

Animals↗

Large-scale chromatin organization of the major histocompatibility complex and other regions of human chromosome 6 and its response to interferon in interphase nuclei.

The large-scale chromatin organization of the major histocompatibility complex and other regions of chromosome 6 was studied by three-dimensional image analysis in human cell types with major differences in transcriptional activity. Entire gene clusters were visualized by fluorescence in situ hybridization with multiple locus-specific probes. Individual genomic regions showed distinct configurations in relation to the chromosome 6 terrritory. Large chromatin loops containing several megabases of DNA were observed extending outwards from the surface of the domain defined by the specific chromosome 6 paint. The frequency with which a genomic region was observed on an external chromatin loop was cell type dependent and appeared to be related to the number of active genes in that region. Transcriptional up-regulation of genes in the major histocompatibility complex by interferon-gamma led to an increase in the frequency with which this large gene cluster was found on an external chromatin loop. Our data are consistent with an association between large-scale chromatin organization of specific genomic regions and their transcriptional status.

Cell Line↗