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A new look at the nuclear matrix.

The concept of the nuclear matrix, a karyoskeletal structure that serves as a support for the genome and its activities, has stimulated many studies of the association of nuclear components and functions with this structure. However, certain experimental findings are not consistent with the existence of the nuclear matrix in vivo, including our inability to visualise a corresponding structure in intact cells, the demonstrated mobility in vivo of chromatin and messenger ribonucleoprotein particles, which are claimed to be bound to the nuclear matrix, the paradoxical extractability from nuclei in low ionic strength buffers of enzymes that are found in the 2 M NaCl-insoluble matrix, and the extractability, in conditions which reproduce the intranuclear milieu, of regions of DNA (matrix or scaffold attachment regions, MAR/SARs) postulated to be bound to the nuclear matrix in vivo. This review considers the nuclear matrix model in the light of sometimes overlooked evidence that each step in its isolation may cause nuclear components to bind to it by new liaisons that do not exist in vivo. This is illustrated by experiments where nuclear-targeted green fluorescent protein is found in the nuclear matrix, and raises the possibility that MAR/SARs actually bind to DNA-binding proteins or multiprotein complexes, including replicational, transcriptional and processing machinery, and topoisomerases that are incorporated into the nuclear matrix during its preparation. Considering that the nuclear lamina forms a rigid exoskeleton, the necessity for internal skeletal structures is raised; the major roles that macromolecular crowding, phase partitioning, and charge effects are likely to play in organisation of the intranuclear space may provide new models for the compartmentalisation of proteins and functions into different nuclear domains and of chromosomes into territories.

DNA↗

Role of the nuclear matrix in adenovirus maturation.

The nuclear matrix has been implicated in several important cellular processes. In this paper, we investigate the role of the nuclear matrix in adenovirus type 2 assembly. Electron microscopic examination of nuclear matrices isolated from adenovirus infected Hep-2 cells clearly reveals that late in the lytic cycle, adenovirus capsids are intimately associated with the nuclear matrix. SDS-PAGE analysis showed that the viral core polypeptides V, PVII and 11 kDa were enriched in the nuclear matrix fraction. After a 3 h chase period a constant high ratio of PVII to VII prevailed in the nuclear matrix suggesting that mostly young virions and viral cores are bound to this structure. Most of the virus maturation endoproteinase activity co-purified with the nuclear matrix and the data suggest that the enzyme may be released from fragile young virions or assembly intermediates. Together these experiments suggest that the nuclear matrix is the site of adenovirus assembly and that mature virions may be released from the matrix by the viral endoproteinase.

Adenoviruses, Human↗

Common nuclear matrix proteins in rat tissues.

Nuclear matrix proteins have been defined as insoluble residual proteins resulting from treatment of isolated nuclei with nucleases, detergents and high ionic strength buffers. They are considered as in part representing the proteins constituting the three-dimensional framework of the interphase nucleus. Though cell-specific nuclear matrix proteins have been differentiated from ubiquitously occurring (common) nuclear matrix proteins, the number and types of common nuclear matrix proteins have not yet been unequivocally established. In the present study nuclear matrix proteins were prepared from isolated nuclei of rat kidney, liver, lung, spleen and testes. The matrix proteins were separated by two-dimensional (2-D) electrophoresis and silver stained. Then the spot patterns were compared by computer-assisted image analysis. Composite images were derived for nuclear matrix proteins of individual tissues. Finding between 396-483 spots per tissue, a total of 964 individual spots were registered. Of these, 102 were common nuclear matrix proteins, as appearing in each of the tissue-characteristic images. The apparent molecular mass and pI data may serve for further identification of these nuclear proteins.

Animals↗

Domains of the human androgen receptor and glucocorticoid receptor involved in binding to the nuclear matrix.

Steroid receptors have been reported to bind to the nuclear matrix. The nuclear matrix is operationally defined as the residual nuclear structure that remains after extraction of most of the chromatin and all soluble and loosely bound components. To obtain insight in the molecular mechanism of the interaction of steroid receptors with the nuclear matrix, we studied the binding of several deletion mutants of the human androgen receptor (hAR) and the human glucocorticoid receptor (hGR) to the nuclear matrix. Receptor binding was tested for two different nuclear matrix preparations: complete matrices, in which most matrix proteins are retained during the isolation procedure, and depleted matrices, which consist of only a subset of these proteins. The results show that the C-terminal domain of the hAR binds tightly to both depleted and complete matrices. In addition, at least one other domain of the hAR binds to complete matrices but not to depleted matrices. In contrast to the hAR, the hGR binds only to complete matrices. For this interaction both the DNA-binding domain and the C-terminal domain of the hGR are required, whereas the N-terminal domain is not. We conclude that specific protein domains of the hAR and the hGR are involved in binding to the nuclear matrix. In addition, our results indicate that the hAR and the hGR are attached to the nuclear matrix through different molecular interactions.

Cell Line↗

[Association of chromosomal telomere DNA with nuclear matrix in HeLa cells].

Nuclear matrix from HeLa cells was gently extracted with a high salt solution and treated with DNase I. DNA that remained associated with the nuclear matrix (N. M. DNA) and DNA fragments released into the supernatant (SN.DNA) were isolated respectively and dot hybridized to human telomere sequence (AGGGTT/TCCCAA)40 probe. As the time of DNase I treatment was extended, the amount of N. M. DNA decreased while the concentration of telomere sequence in N.M. DNA proportionally increased. These preliminary results suggest that the telomere sequence is tightly bound to nuclear matrix in HeLa cells.

Base Sequence↗

The nuclear matrix prepared by amine modification.

The nucleus is spatially ordered by attachments to a nonchromatin nuclear structure, the nuclear matrix. The nuclear matrix and chromatin are intimately connected and integrated structures, and so a major technical challenge in nuclear matrix research has been to remove chromatin while retaining a native nuclear matrix. Most methods for removing chromatin require first a nuclease digestion and then a salt extraction to remove cut chromatin. We have hypothesized that cut chromatin is held in place by charge interactions involving nucleosomal amino groups. We have tested this hypothesis by chemically modifying amino groups after nuclease digestion. By using this protocol, chromatin could be effectively removed at physiological ionic strength. We compared the ultrastructure and composition of this nuclear matrix preparation with the traditional high-salt nuclear matrix and with the third nuclear matrix preparation that we have developed from which chromatin is removed after extensive crosslinking. All three matrix preparations reveal internal nuclear matrix structures that are built on a network of branched filaments of about 10 nm diameter. That such different chromatin-removal protocols reveal similar principles of nuclear matrix construction increases our confidence that we are observing important architectural elements of the native structure in the living cell.

Amines↗

Cytochemical localization of DNA loop attachment sites to the nuclear lamina and to the inner nuclear matrix.

The rat liver nuclear matrix, obtained by endogenous nuclease digestion and extraction with low and high ionic strength media, contains residual DNA fragments that are considered to represent the attachment sites of the chromatin domains to the nucleoskeleton. These sites, protected against nuclease digestion by their binding with the nucleoskeleton proteins, should be either mainly linked to the peripheral lamina or to the inner nuclear matrix. The DNA fragment distribution at the level of the different components of the nuclear matrix has been evaluated in samples embedded in Epon and in hydrophilic resins by means of the DNase-gold technique. The labeling obtained suggests that the chromatin loops are prevailingly associated with the interior of the matrix; in fact about twice of the label is present in the inner matrix with respect to the peripheral lamina area. These results confirm the hypothesis that in interphase the chromatin maintains an organization similar to that of chromosomes, with loops radiating from a central scaffold, instead of being mainly attached to the lamina as otherwise suggested.

Animals↗

The nuclear matrix: a target for heat shock effects and a determinant for stress response.

The nuclear matrix organizes nuclear DNA into operational DNA domains for replication, transcription, and repair. The proteins of the nuclear matrix are among the most thermal labile proteins in the cell, undergoing denaturation at 43 degrees C to 45 degrees C. Heat-shock-induced protein denaturation results in the aggregation of proteins to the nuclear matrix. As many as 100 protein changes have been observed as a result of this aggregation. Protein aggregation with the nuclear matrix is associated with the disruption of nuclear matrix-dependent DNA replication, DNA transcription, hnRNA processing, and DNA repair. Disruptions of these processes lead to cell death. Nuclear matrix protein changes affect these processes by inhibiting DNA supercoiling ability and inhibiting the access to matrix-associated DNA. Heat-shock proteins are believed to bind denatured proteins and either prevent aggregation or render aggregates more readily dissociable. The nuclear matrix appears to be a target for the detrimental effects of heat shock and hsp70 serves to protect against such effects. However, the nuclear matrix may be involved in the pre- and post-heat shock expression of hsp70. We have found a heat-inducible MAR covering the promoter region of murine hsp70.3, implying that changes in matrix association are needed for hsp70 expression. However, the hsp70.1, 70.3, and hsc70t gene family is organized as an active gene with respect to the nuclear matrix. Thus, it may be that heat-inducible genes have a unique matrix-dependent organization. The work presented in this review implies that the nuclear matrix is a target for the lethal effects of heat and is also a determinant in the protective expression of heat-shock genes.

Animals↗

Preliminary immunohistochemical characterization of a monoclonal antibody (PRO:4-216) prepared from human prostate cancer nuclear matrix proteins.

OBJECTIVES: A nuclear matrix protein (PC-1) was previously identified and reported to be present only in human prostate cancer but absent in tissue from the same prostate containing either benign prostatic hyperplasia (BPH) or normal prostate tissue. The PC-1 protein was identified by high resolution two-dimensional polyacrylamide gel electrophoresis (2D-PAGE) and exhibited a molecular mass of 56 kDa and an isoelectric point of 6.58. This work investigates the immunohistochemical characterization of PRO:4-216, a monoclonal antibody to PC-1. METHODS: Areas of the 2D-PAGE gels containing the human prostate cancer nuclear matrix proteins near PC-1 were isolated, eluted, and injected into mice to develop monoclonal antibodies. Antibodies were screened by immunofluorescence for nuclear reactivity to a human prostate cancer cell line (LnCaP) and by 1D and 2D Western blots for reactivity with prostate cancer nuclear matrix proteins. Monoclonal antibodies from the selected clones were affinity purified. The monoclonal antibody PRO:4-216 was used to analyze frozen tissue from 20 cancerous, 22 BPH, and 22 normal regions from fresh human prostate specimens. Tissue sections were analyzed for their immunohistochemical (IHC) (horseradish peroxidase) staining. RESULTS: Using a reference value for positive staining at an IHC score of greater than 50, 85% (17 of 20) of the cancerous, 5% (1 of 22) of the BPH, and 9% (2 of 22) of the normal prostate tissues stained positive. The one BPH and two normal tissues that stained positive were taken from prostates in which the adjacent cancerous tissue also demonstrated high IHC scores (greater than 225). CONCLUSIONS: These data demonstrate nuclear reactivity on fresh frozen human prostate cancer tissue for the monoclonal antibody PRO:4-216. PRO:4-216 may aid in distinguishing normal prostate and BPH from cancerous tissue.

Animals↗

Characterization and fractionation of rat liver nuclear matrix.

The rat liver nuclear matrix retains the shape of the nucleus and reveals a sponge-like structure in negative staining and scanning electron microscopy. A fibrous layer (dense lamina) with associated pore complexes is preserved on the surface of the nuclear matrix. In negative staining as well as in high resolution scanning electron microscopy this layer is perceived as a network consisting of alveoli of 10 to 30 nm in diameter with pore complexes differing in arrangement of the annular granules. In sections a fibrous layer 15 to 30 nm in width granules of 7 to 10 nm in diameter can be observed. Structures similar to the pore complexes are revealed not only at the fibrous layer but also inside the nucleus and in close proximity to the nucleoli. Four fractions of the nuclear matrix have been isolated by successive extraction with 0.05 M EDTA and 0.025 N NaOH. Almost 80% of the total matrix protein dissolves in dilute alkali. 4 to 5% of the total matrix protein is soluble in EDTA. From insoluble residue two fractions can be isolated: one rich in pore complexes and another one retaining the shape of the nucleus with spongy or alveolar structure. The latter fraction is regarded to constitute a proper framework or skeleton of the nucleus.

Amino Acids↗

Association of Lyn tyrosine kinase with the nuclear matrix and cell-cycle-dependent changes in matrix-associated tyrosine kinase activity.

The nuclear matrix isolated from HeLa cells and Rat2 fibroblasts harbors tyrosine kinase and tyrosine phosphatase activities. Polypeptides of 53, 56 and 60 kDa, associated with this subnuclear structure, were phosphorylated at tyrosine in vivo. By immunoblot and immunolabelling experiments, we identified one of the nuclear-matrix-associated tyrosine kinases as Lyn, a Src family member. Lyn was distributed as foci throughout the matrix. The p56 and p53 isoforms of Lyn remained firmly associated with the nuclear matrix after a variety of matrix preparation procedures, and were not detectable in the chromatin fraction of the nucleus. The tyrosine kinase activity associated with the nuclear matrix showed cell-cycle-dependent changes, maximum activity being observed at the G1/S transition phase. Polyoma-virus-transformed rat fibroblast cells showed sixfold higher tyrosine kinase activity in the nuclear matrix preparations compared to that in untransformed cells. These observations are consistent with the suggestion that tyrosine kinase activity associated with the nuclear matrix may be an important determinant of cellular proliferation.

Animals↗

[Transcription factors and the nuclear matrix].

Data on nuclear matrix-associated transcription factors are summarized. These transcription factors ensure the proper spatial arrangement of gene promoters and enhancers, interacting with DNA at matrix attachment regions (MARs) and with other nuclear matrix proteins. More than 50 individual proteins are considered and classified by the DNA-binding domain.

Animals↗

Nuclear matrix as a target for hyperthermic killing of cancer cells.

The nuclear matrix organizes nuclear DNA into operational domains in which DNA is undergoing replication, transcription or is inactive. The proteins of the nuclear matrix are among the most thermal labile proteins in the cell, undergoing denaturation at temperatures as low as 43-45 degrees C, i.e. relevant temperatures for the clinical treatment of cancer. Heat shock-induced protein denaturation results in the aggregation of proteins to the nuclear matrix. Protein aggregation with the nuclear matrix is associated with the disruption of many nuclear matrix-dependent functions (e.g. DNA replication, DNA transcription, hnRNA processing, DNA repair, etc.) and cell death. Heat shock proteins are believed to bind denatured proteins and either prevents aggregation or render aggregates more readily dissociable. While many studies suggest a role for Hsp70 in heat resistance, we have recently found that nuclear localization/delocalization of Hsp70 and its rate of synthesis, but not its amount, correlate with a tumor cell's ability to proliferate at 41.1 degrees C. These results imply that not only is the nuclear matrix a target for the lethal effects of heat, but it also is a target for the protective, chaperoning and/or enhanced recovery effects of heat shock proteins.

Cell Death↗

Preferential cross-linking of matrix-attachment region (MAR) containing DNA fragments to the isolated nuclear matrix by ionizing radiation.

The sequences that anchor DNA, matrix-attachment regions (MARs), can be identified by their specific and preferential binding to the nuclear matrix. This microenvironment may be hypersensitive to the formation of ionizing radiation-induced DNA damage, including DNA-protein cross-links (DPC). To examine the induction of DPC at or near MARs, we developed an in vitro binding assay by using nuclear matrices isolated from murine erythroleukemia cells by high-salt extraction of DNase I-digested nuclei. The cross-linking of nuclear matrix protein to DNA fragments containing kappa-immunoglobulin (kappa-Ig) or an hsp 70 MAR was studied. Fragments of pBR322 of similar size to the MAR-containing fragments served as non-MAR controls. Two types of experiments were conducted: type A in which nuclei were irradiated and nuclear matrices were isolated and assayed for the binding of exogenous 32P-labeled DNA fragments, and type B in which mixtures of isolated nuclear matrices and [32P]DNAs were irradiated and assayed for binding. Poly(dAT) served as a competitor in the binding assays, because it eliminated nonspecific binding of DNA to the nuclear matrix and revealed the radiation-induced increase in tightly bound DNA. When nuclear matrices were isolated from irradiated nuclei (0-200 Gy) and incubated with the kappa-Ig MAR fragment in the absence of poly(dAT) (type A experiments), much nonspecific, non-dose-dependent binding was observed. With poly(dAT) in the incubation mixture, a dose-dependent decrease (p < 0.001) in the binding was revealed, indicating a radiation-induced loss of available binding sites, perhaps due to the cross-linking of endogenous sequences. The pBR322 fragment did not show a similar loss of binding sites. Irradiation of mixtures of isolated nuclear matrices and end-labeled fragments (type B experiments) allowed the study of radiation-induced cross-linking of exogenous fragments to the matrices. If poly(dAT) was present during irradiation, nonspecific binding was eliminated; however, no significant increase (p = 0.5) in the specific binding of the DNA to the nuclear matrix was observed. In contrast, if poly(dAT) was added after irradiation, in addition to the elimination of nonspecific binding, a radiation dose-dependent increase in binding was revealed for both the kappa-Ig MAR and the hsp MAR (p < 0.001), but not for either of the pBR322 fragments. The results indicate that the specific interaction of MARs with proteins of the nuclear matrix provides a radiation-sensitive substrate for the formation of DNA-protein cross-links.

Animals↗

TGF-beta1 modifications in nuclear matrix proteins of osteoblasts during differentiation.

Nuclear matrix protein (NMP) composition of osteoblasts shows distinct two-dimensional gel electrophoretic profiles of labeled proteins as a function of stages of cellular differentiation. Because NMPs are involved in the control of gene expression, we examined modifications in the representation of NMPs induced by TGF-beta1 treatment of osteoblasts to gain insight into the effects of TGF-beta on development of the osteoblast phenotype. Exposure of proliferating fetal rat calvarial derived primary cells in culture to TGF-beta1 for 48 h (day 4-6) modifies osteoblast cell morphology and proliferation and blocks subsequent formation of mineralized nodules. Nuclear matrix protein profiles were very similar between control and TGF-beta-treated cultures until day 14, but subsequently differences in nuclear matrix proteins were apparent in TGF-beta-treated cultures. These findings support the concept that TGF-beta1 modifies the final stage of osteoblast mineralization and alters the composition of the osteoblast nuclear matrix as reflected by selective and TGF-beta-dependent modifications in the levels of specific nuclear matrix proteins. The specific changes induced by TGF-beta in nuclear matrix associated proteins may reflect specialized mechanisms by which TGF-beta signalling mediates the alterations in cell organization and nodule formation and/or the consequential block in extracellular mineralization.

Animals↗

hnRNP proteins and B23 are the major proteins of the internal nuclear matrix of HeLa S3 cells.

The nuclear matrix is the structure that persists after removal of chromatin and loosely bound components from the nucleus. It consists of a peripheral lamina-pore complex and an intricate internal fibrogranular structure. Little is known about the molecular structure of this proteinaceous internal network. Our aim is to identify the major proteins of the internal nuclear matrix of HeLa 53 cells. To this end, a cell fraction containing the internal fibrogranular structure was compared with one from which this structure had been selectively dissociated. Protein compositions were quantitatively analyzed after high-resolution two-dimensional gel electrophoresis. We have identified the 21 most abundant polypeptides that are present exclusively in the internal nuclear matrix. Sixteen of these proteins are heterogeneous nuclear ribonucleoprotein (hnRNP) proteins. B23 (numatrin) is another abundant protein of the internal nuclear matrix. Our results show that most of the quantitatively major polypeptides of the internal nuclear matrix are proteins involved in RNA metabolism, including packaging and transport of RNA.

Cell Fractionation↗

Characterization of nuclear matrix from cultured normal human fibroblasts.

Nuclear matrix was isolated from cultured human fibroblasts by extraction of nuclei with 2 M NaCl. Electron microscopic observation on the isolated nuclear matrix revealed a fine network structure. The matrix fraction contained approximately 15% of total nuclear DNA and the matrix DNA was about 3- to 4-fold enriched in transcriptionally active collagen I (alpha 2) gene sequences, whereas transcriptionally inactive beta-globin gene sequences were not enriched. The nuclear matrix contained two major proteins of 65,000 and 45,000 daltons (pI 5.9 and 5.6, respectively). The DNA-binding activity of these nuclear matrix proteins was examined by Western blotting or by nitrocellulose filter-binding assay using cloned specific gene probes. The results suggest that there is no base sequence specificity in the binding, and that protein species of 60,000 to 200,000 daltons showed DNA-binding activity. These results indicate that association of transcribing genes with the nuclear matrix may reflect the functional state of the genes and may not be determined solely by the base sequence specificity of DNA binding. The nuclear matrix protein of 65,000 daltons was phosphorylated in vivo, and was the main substrate for protein kinase(s) associated with the nuclear matrix.

Cell Nucleus↗