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Regulation of matrix vesicle phospholipid metabolism is cell maturation-dependent.

We have developed a chondrocyte culture model for assessing the regulation of matrix vesicles at two different stages of chondrogenic maturation. These chondrocytes, resting zone (RC) and growth zone (GC), retain their phenotypic markers in culture, including production of matrix vesicles with distinctive lipid compositions and enzyme activities. Isolated matrix vesicles incubated in vitro with 1,25-(OH)2D3 (1,25) or 24,25-(OH)2D3 (24,25) respond differentially. 1,25 stimulates phospholipase A2 (PA2) in GC vesicles, but not on those from RC. 24,25 inhibits PA2 in RC vesicles, but has no effect on GC. PA2 activity is required for fatty acid turnover and is the rate-limiting step in prostaglandin production. Plasma membrane phospholipids are more susceptible to the release of arachidonic acid by PA2 than are matrix vesicle phospholipids. Matrix vesicles are distinct from the plasma membrane in terms of lipid composition and arachidonic acid incorporation. 1,25 and 24,25 stimulate arachidonic acid turnover in their target cells, but by different mechanisms. 1,25 has no effect on arachidonic acid turnover in RC; however, 24,25 inhibits turnover in RC and GC. 1,25 and 24,25 also affect isolated matrix vesicle membrane fluidity. These results suggest that vitamin D metabolites modulate PA2 activity, change the composition of membrane phospholipids by altering fatty acid composition, and affect calcium transport. The effects are mediated by altering membrane fluidity and is dependent on the stage of cell differentiation.

Animals

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

The effect of mast cell chymase on extracellular matrix: studies in autoimmune thyroiditis and in cultured thyroid cells.

In the first part of the study we analyzed the morphology of mast cells in autoimmune thyroiditis of BB/W rats. In the early stage of thyroiditis mast cells showed exocytosis of granules into the interstitium; this was associated with disorganization of the extracellular matrix and the appearance of a translucent ground substance in stroma. Mast cells were not seen in the mononuclear infiltrates in the later stages of thyroiditis. In order to further study the effect of mast cells on the extracellular matrix, we evaluated the effect of mast cell lysate and purified chymase on the matrix of cultured thyroid cells. Mast cells were obtained from peritoneal cavity; mast cell chymase was purified by anion exchange chromatography. After exposure to chymase there was a reduction of pericellular fibronectin in cultured thyroid cells, while laminin in matrix remained unchanged. Similarly, as found by gel electrophoresis, soluble fibronectin and vitronectin were digested by chymase in the reaction mixture. Cell attachment on both fibronectin and vitronectin was significantly decreased upon exposure of matrix proteins to chymase. The effects of chymase were abolished by enzyme inhibitor phenylmethane sulfonyl fluoride. These data suggest that mast cells possess proteolytic enzymes capable of digesting different host proteins which may have a role in the thyroid cell interaction with the surrounding matrix.

Animals

Metalloproteinases mediate extracellular matrix degradation by cells from mouse blastocyst outgrowths.

The maintenance and developmental remodeling of extracellular matrix is crucial to such processes as uterine implantation and the cell migratory events of morphogenesis. When mouse blastocysts are placed in culture they adhere to extracellular matrix, and trophoblast giant cells migrate out onto the matrix and degrade it. The secretion of functional proteinases by developing mouse embryos increases dramatically at the time of implantation. By zymography we identified the major secreted gelatin-degrading proteinase, also known as type IV collagenase, as one migrating at 92 x 10(3) Mr. Several casein-degrading proteinases were also secreted. The tissue inhibitor of metalloproteinases (TIMP) inhibited all of the embryo-derived proteinases detected by gelatin gel zymography, indicating that they are metalloproteinases, whereas TIMP did not inhibit all of the caseinases. Urokinase was also secreted. Addition of TIMP at 5-500 nM effectively inhibited the degradation of matrix by the trophoblast outgrowths. Blocking antibodies directed against 92 x 10(3) Mr gelatinase abolished matrix degradation by the trophoblast cells. These observations suggest that several metalloproteinases are regulated in early development and that 92 x 10(3) Mr gelatinase, in particular, has a rate-limiting function in degradation of the maternal extracellular matrix by trophoblast cells.

Animals

The role of primer recognition proteins in DNA replication: association with nuclear matrix in HeLa cells.

Primer recognition proteins (PRP) enable DNA polymerase alpha to utilize efficiently DNA substrates with low primer to template ratios. We have previously identified the protein-tyrosine kinase substrate annexin II, and the glycolytic enzyme 3-phosphoglycerate kinase as components of PRP. As a step towards elucidation of the role of PRP in the process of DNA replication, we have investigated the subcellular distribution and specific association of these proteins with the nuclear matrix in HeLa cells. Nuclear extracts prepared from HeLa cells in S phase contain the enzymatic activity of 3-phosphoglycerate kinase (PGK) and phospholipase A2 inhibitory activity of annexin II. Monomer annexin II is approximately equally distributed between the nuclear and cytoplasmic fractions, while a majority of PGK is in the cytoplasm. Immunoblot analyses reveal the presence of these two proteins in nuclei, specifically associated with the nuclear matrix. This is further confirmed by observation of the presence of annexin II and PGK in isolated nuclear matrices by immunoelectron microscopy. The phospholipase A2 inhibitory activity of annexin II colocalizes with the nuclear matrix-bound annexin II. A related protein, annexin I, is not detectable in the nuclear extracts and nuclear matrix. A slower-migrating (perhaps modified) form of annexin II is found to be associated with the nuclear matrix. Attempts to dissociate PGK and annexin II from the nuclear matrix with octyl-beta-glucoside, high salt or metal ion chelators were unsuccessful, suggesting that the interaction is very strong.

Annexins

Calcification of rachitic rat cartilage in vitro by extracellular matrix vesicles.

Growth plate cartilage from rachitic rats was studied to assess the role in calcification of extracellular matrix vesicles, which are thought to participate in the initial stage of mineralization of connective tissue. The concentration of matrix vesicles and their distribution within the longitudinal septa was found to be normal in rats made rachitic by feeding by a diet low in vitamin D and phosphate for 3 weeks after weaning. Rachitic cartilage matrix did not contain circumvesicular clusters of apatite as does normal cartilage; however, occasional vesicles did enclose one or a few apatite needles. When slices of rachitic cartilage were incubated at 37 C in a metastable calcium phosphate solution ([Ca++] times [PO SEE ARTICLE] equals 3.5 mM identical to 2), apatite formation was initiated in association with matrix vesicles. Under these conditions, mineralization was prominent in the upper hypertrophic cartilage, where matrix vesicles became encrusted with apatite after only 2 to 3 hours of incubation. Vesicular apatite accumulation was inhibited by preheating the cartilage to 60 C for 30 minutes. Measurements of 45Ca uptake by rachitic cartilage slices from metastable calcium phosphates solution also indicated inhibition of calcification by heat. Light microscopic autoradiographs showed 45Ca localization primarily in the matrix of longitudinal septa and substantiated the inhibition site of mineralization in healing rachitic cartilage. The presence of apatite within rachitic vesicles prior to heating and the inhibition of vesicle calcification by heat suggests an active, enzymatically and mediated mechanism of vesicular calcification.

Animals

Mineral-matrix interactions in bone and cartilage.

Mineral-matrix interactions regulate the process of hydroxyapatite formation in bones and teeth. In mineralizing tissues, many anionic macromolecules bind to mineral. By means of this binding, such molecules are able to regulate the size and shape of the mineral crystals, determine the site of initial crystal deposition, and determine the type of mineral crystals deposited. Collagen, which provides a template for hydroxyapatite deposition; extracellular matrix vesicles, which provide a protected environment for crystal deposition; and noncollagenous matrix proteins that have high affinities for hydroxyapatite have all been shown to affect mineralization in vitro. Some of the noncollagenous proteins have been shown to be capable of promoting and inhibiting mineral formation and growth, depending on their concentration and whether they are immobilized or free in solution. This review surveys the current understanding of mineral-matrix relationships involved in endochondral, intramembranous, and appositional bone formation, outlining the way in which mineral deposition is controlled in mammalian calcified tissues. The structural basis for the interaction of the matrix molecules with hydroxyapatite is presented, as is the in vitro and in situ data implicating the matrix molecules that interact with hydroxyapatite to control mineralization.

Bone Matrix

Interphotoreceptor retinoid-binding protein in the cone matrix sheath. Electron microscopic immunocytochemical localization.

Using a monoclonal antibody to chondroitin 6-sulfate, a major constituent of the cone matrix sheath, the location of the cone matrix sheath and the relative distribution of interphotoreceptor retinoid-binding protein (IRBP) was examined by light and electron microscopic immunocytochemistry. Chondroitin 6-sulfate immunoreactivity was localized to regions surrounding cone outer and inner segments, extending from the pigment epithelium to the outer limiting membrane. Only a background level of chondroitin 6-sulfate immunoreactivity was found around rods. Ultrathin sections reacted with antibodies to IRBP and chondroitin 6-sulfate showed the presence of both in the matrix surrounding the cones. Chondroitin 6-sulfate immunoreactivity extended from cone inner and outer segments to the adjoining interphotoreceptor matrix (IPM) surrounding the rods, but only background labeling was observed around the rods. The label for IRBP was found in the region containing chondroitin 6-sulfate and the IPM surrounding the rod photoreceptors. The label for IRBP and chondroitin 6-sulfate appeared to be associated with the filamentous reticulum of the IPM. These findings not only show that the cone matrix sheath has not collapsed and that IRBP is present in the cone matrix sheath, but they also demonstrate retention of structural components of the IPM.

Animals

Phylogenetic inference based on matrix representation of trees.

Rooted phylogenetic trees can be represented as matrices in which the rows correspond to termini, and columns correspond to internal nodes (elements of the n-tree). Parsimony analysis of such a matrix will fully recover the topology of the original tree. The maximum size of the represented matrix depends only on the number of termini in the tree; for a tree derived from molecular sequences, the represented matrix may be orders of magnitude smaller than the original data matrix. Representations of multiple trees (which may or may not have identical termini) can readily be combined into a single matrix; columns of discrete-character-state data can be added and, if desired, weighted differentially. Parsimony analysis of the resulting composite matrix yields a hybrid supertree which typically provides greater resolution than conventional consensus trees. Use of this method is illustrated with examples involving multiple tRNA genes in organelles and multiple protein-coding genes in eukaryotes.

Animals

Effects of maternal hypoxia on incorporation of 3-H-thymidine into DNA of neural tube matrix cells in the mouse embryo (an autoradiographic study).

The effect of maternal hypoxia on DNA synthesis of neural tube matrix cells has been studied in the ten-day old mouse embryo. The experiments were carried out by means of the autoradiographic technique. The relative uptake of 3-H-thymidine into nuclear DNA was determined by means of the silver grain count present in the nuclei and of the labeling index of neural tube matrix cells in the telencephalon of normal and hypoxia-exposed mouse embryo on the 10th day of gestation. The results are summarized as follows; 1. The thymidine incorporation and labeling index were noticeably reduced under maternal hypoxia of 6 percent O2 for 1 hour. When 3-H-thymidine was injected immediately following hypoxia for 6 hours, matrix cells showed almost normal thymidine uptake and labeling index. However, when thymidine was injected 2 hours after the same hypoxia, the matrix cells showed a definite reduction of thymidine incorporation and also of labeling index. There were regional differences in reduction of nuclear DNA synthesis throughout the cerebral structure, and it was most marked in the telencephalon in this developmental stage. The matrix cells in the di-, mes- and metencephalon appeared less or not at all affected by maternal hypoxia. 2. In mouse embryo exposed to hypoxia of 6 percent O2 for 6 hours on the 7th day of gestation and sacrificed 1 hour after thymidine injection on the 10th day, matrix cells showed a marked reduction of grain count and an increase of labeling index. The effect was larger than that seen on the 8th or 9th day of gestation. 3. Qualitative examination revealed focal loss of 3-H-thymidine label around pyknotic nuclei in the neural tube of some of the embryos after hypoxia of 6 percent O2 for 6 hours. 4. The significance of the disturbance of DNA synthesis of embryonic neural tube cells by maternal hypoxia was briefly discussed in relation to teratogenesis.

Animals

Differences between microsomal and mitochondrial-matrix palmitoyl-coenzyme A hydrolase, and palmitoyl-L-carnitine hydrolase from rat liver.

Palmitoyl-CoA hydrolase (EC 3.1.2.2) and palmitoyl-L-carnitine hydrolase (EC 3.1.1.28) activities from rat liver were investigated. 1. Microsomal and mitochondrial-matrix palmitoyl-CoA hydrolase activities had similar pH and temperature optima, although the activities showed different temperature stability. They were inhibited by Pb2+ and Zn2+. The palmitoyl-CoA hydrolase activities in microsomal fraction and mitochondrial matrix were differently affected by the addition of Mg2+, Ca2+, Co2+, K+ and Na+ to the reaction mixture. ATP, ADP and NAD+ stimulated the microsomal activity and inhibited the mitochondrial-matrix enzyme. The activity of both the microsomal and mitochondrial-matrix hydrolase enzymes was specific for long-chain fatty acyl-CoA esters (C12-C18), with the highest activity for palmitoyl-CoA. The apparent Km for palmitoyl-CoA was 47 microM for the microsomal enzyme and 17 microM for the mitochondrial-matrix enzyme. 2. The palmitoyl-CoA hydrolase and palmitoyl-L-carnitine hydrolase activities of microsomal fraction had similar pH optima and were stimulated by dithiothreitol, but were affected differently by the addition of Pb2+, Mg2+, Ca2+, Mn2+ and cysteine. The two enzymes had different temperature-sensitivities. 3. The data strongly suggest that palmitoyl-CoA hydrolase and palmitoyl-L-carnitine hydrolase are separate microsomal enzymes, and that the hydrolysis of palmitoyl-CoA in the microsomal fraction and mitochondria matrix was catalysed by two different enzymes.

Animals

A murine tumor producing a matrix of basement membrane.

We have studied a murine tumor previously classified as a poorly differentiated chondrosarcoma. Although the cells in this tumor are surrounded by large quantities of extracellular matrix material, the matrix fails to react with stains specific for the sulfated glycosaminoglycans present in normal cartilage. Here we show at the ultrastructural level that the tumor matrix is a homogeneous, nonfibrillar material, resembling basement membrane. Neither the proteoglycan matrix granules nor collagen fibrils characteristic of cartilage are present in the tumor matrix. Amino acid analyses of whole tumor tissue, enzyme-solubilized tumor components, and the protein extracted from lathyritic tumors confirmed that the tumor matrix is a basement membrane collagen. The collagenous protein extracted from the tumor by nonenzymatic means contains three unique polypeptides larger than the alpha-chain components of the other types of collagen. These studies indicate that the tumor is not a type of chondrosarcoma but a basement membrane producing tumor.

Amino Acids

Effect of maternal malnutrition on matrix cell proliferation in the cerebrum of mouse embryo: an autoradiographic study.

Thirty pregnant mice were undernourished by providing low protein diets (PM) or providing approximately one-third their normal diets (PCM) for 9 days from the 8th to the 16th day of gestation. Another 15 pregnant mice, which were fed a normal diet, served as the control. On the 16th day of gestation, all animals were injected with a single does of [3H]thymidine and were killed one by one at 1- or 2-hr intervals. Mean litter size was statistically insignificant between the control group and two malnourished groups. There was, however, a significant difference in mean body weight between the control group and two malnourished groups (P less than 0.005). The cerebral cortex at this stage of development consisted of three different layers, i.e., the cortical plate, the migratory zone, and the matrix layer. The width of the cortical plate of the malnourished embryos was significantly smaller (P less than 0.001). There was, however, no significant difference in width of the migratory zone between the control and the malnourished groups. The width of the matrix layer in PM was significantly smaller (P less than 0.001), but that of PCM showed no significant difference from the control (P greater than 0.1). Coronal section of the brains of the embryos were processed for autoradiography. Labeled cells were found almost exclusively at the matrix layer surrounding the lateral ventricels. Labeling index counted in the matrix layer after 1 or 2 hr of [3H]thymidine injection indicated that more than 30% of the cells in this layer were always synthesizing DNA in each group of embryos. The generation times of the matrix cell, precursor of the neurons, in the matrix layer were approximately 18.5 hr in the control and 21.5 hr and 21.8 hr in the malnourished embryos, thus indicating about 3 hr of prolongation in the latter. DNA synthetic time was about 6.5 hr in the control and 7.0 hr and 7.0 hr in the two malnourished groups. The postduplication time was about 2.5 hr in the control and 3.0 hr and 3.5 hr in the malnourished. The preduplication time was about 8.8 hr in the control and 10.6 hr and 10.3 hr in the malnourished.

Animals

Effects of perceptual salience on the matrix task performance of four- and six-year-old children.

The effects of salience on 4- and 6-year-old children's ability to classify multiplicatively was investigated. A rank-ordered salience hierachy consisting of 3 dimensions was first assessed for each S. Several weeks later half the Ss of each age group were presented with a series of 9 3 times 3 matrix problems consisting of values from 2 dimensions ranked high in salience. The remaining half received identically structured matrices consisting of values from 1 highly salient dimension and of others from a dimension ranked low in salience. The goal in each problem was to select that compound stimulus from a set of alternatives that appropriately filled an empty cell in the matrix. Prior to the matrix problems, half the Ss in each matrix condition received sensitization training designed to increase the salience of the relevant dimensions in the matrix problems. The results showed that the pre-assessed salience of the relevant dimensions affected matrix solution in that more accurate performance was associated with those problems with both relevant dimensions relatively high in salience than those with one high and one low. Although the older Ss solved more problems, the evidence for coordination in the younger Ss was clear. No effects of sensitization training were found.

Age Factors

[Enhanced bioavailability of digoxin from silica matrix formulations (author's transl)].

The bioavailability of digoxin from 3 silica matrix formulations was assessed in single-dose crossover studies in 12 healthy human volunteers: digoxin/silica matrix tablets (I, Digacin), digoxin/silica matrix in capsule form (II) and digoxin/silica matrix dragées, protected against gastrict juice by film coating (III). Urinary glycoside excretion for 6 days after 0.5 mg doses were measured by radioimmunoasay. Referring to an intravenous injection the bioavailability of digoxin from Digacin tablets is 82%, from the encapsulated matrix 69%, and from the dragées 54%. In comparison with corresponding results from other investigators Digacin tablets havet the same high bioavailability as digoxin solutions. In vitro liberations of digoxin from the silica matrix formulations (94% in 90 s) is significantly better than from conventional tablets produces from a digoxin-lactose trituration (61% in 90 s).

Adult

Studies in urolithiasis. III. Electron optical investigation on the morphology of the colloidal matrix of urinary calculi.

An electron optical investigation of the morphology of the colloidal matrix of renal and vesical urinary calculi revealed the presence of several morphologic forms hitherto unknown. Earlier light microscopic studies indicated that the matrix exists either as fibrils or as an amorphous matrix. The electron micrographic scanning of specimens of calculi revealed the following matrix morphologies: (i) flaky, (ii) serrated, (iii) perforated (globular), (iv) hollow tubular, (v) fibrillar, (vi) cylindrical, and (vii) pear-drop shaped. Crystalline matter was not associated with flaky and serrated matrix particles. However, some matrix particles of perforated (globular), fibrillar, and cylindrical morphologies were found to be calcified.

Humans

[Replication and reassociation kinetics of nuclear matrix DNA from regenerating rat liver].

Fraction 1, containing 65--70% of nuclear DNA (nDNA) was extracted from isolated rat liver nuclei. Then nuclear matrix fraction, containing 30--35% of nDNA was extracted with 1.2 M NaCl. About 1% of nDNA war discovered in residual matrix. Specific activity of residual matrix labelled DNA within 1 and 3 min. after the injection of 14C-orotic acid into the liver portal vein (24 hours after hepatectomy) was respectively in 70 and 50 times higher, and that of matrix DNA--in 45 and 20 times as high as in fraction 1 DNA. Thus, replication begins from nuclear matrix DNA. The latter is enriched with unique sequences by 10%, as compared with total nDNA, and its reassociation kinetics does not change at different stages of the cell cycle (0 and 24 hours after partial hepatectomy). It is suggested, that DNA does not migrate with respect to nuclear matrix under replication.

Animals

Chondrocytes in agarose culture synthesize a mechanically functional extracellular matrix.

The ability of chondrocytes from calf articular cartilage to synthesize and assemble a mechanically functional cartilage-like extracellular matrix was quantified in high cell density (approximately 10(7) cells/ml) agarose gel culture. The time evolution of chondrocyte proliferation, proteoglycan synthesis and loss to the media, and total deposition of glycosaminoglycan (GAG)-containing matrix within agarose gels was characterized during 10 weeks in culture. To assess whether the matrix deposited within the agarose gel was mechanically and electromechanically functional, we measured in parallel cultures the time evolution of dynamic mechanical stiffness and oscillatory streaming potential in uniaxial confined compression, and determined the intrinsic equilibrium modulus, hydraulic permeability, and electrokinetic coupling coefficient of the developing cultures. Biosynthetic rates were initially high, but by 1 month had fallen to a level similar to that found in the parent calf articular cartilage from which the cells were extracted. The majority of the newly synthesized proteoglycans remained in the gel. Histological sections showed matrix rich in proteoglycans and collagen fibrils developing around individual cells. The equilibrium modulus, dynamic stiffness, and oscillatory streaming potential rose to many times (>5x) their initial values at the start of the culture; the hydraulic permeability decreased to a fraction (approximately 1/10) that of the cell-laden porous agarose at the beginning of the culture. By day 35 of culture, DNA concentration (cell density), GAG concentration, stiffness, and streaming potential were all approximately 25% that of calf articular cartilage. The frequency dependence of the dynamic stiffness and potential was similar to that of calf articular cartilage. Together, these results suggested the formation of a mechanically functional matrix.

Animals