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Studies on the compressibility of wax matrix granules of acetaminophen and their admixtures with various tableting bases.

Matrix granules of acetaminophen have been formed by a melt granulation process whereby the acetaminophen powder was triturated with the melted wax--goat wax, glyceryl monostearate or carnuba wax. The compressibility of the matrix granules and their admixture, with diluent granules (lactose, alpha-cellulose or microcrystalline cellulose) was investigated. The granules were compressed to tablets at a constant load (30 arbitrary units on the load scale) of a manesty single punch machine. Resulting tablets were evaluated for tensile strength (T) and disintegration times (DT). Granule flow was determined by measuring their angle of repose when allowed to fall freely on a level surface. Matrix granules prepared by melt granulation with goat wax or glyceryl monostearate were too sticky and therefore did not flow at all. They were also poorly compressible (T values = 0.20MN/m2). Inclusion of the diluent remarkably improved granule flow property and compressibility. The T values of the tablets (measure of compressibility) increased from about 0.24 to 0.65 MN/m2 during increase in diluent (lactose) content from 20 to 80 %w/w. Microcrystalline cellulose and alpha-cellulose were more effective than lactose in promoting compressibility of the granules. By contrast the matrix granules formed with carnuba wax were free flowing (angle of repose, 18.60). Addition of the diluent further improved flowability slightly. The matrix granules (without a diluent) were readily compressible (T value, 1.79MN/m2). Addition of the diluent (80%w/w) reduced T values (MN/m2) slightly to 1.32 (lactose), 1.48 (alpha-cellulose) and 1.74 (microcrystalline cellulose). Tablets of the matrix granules only, disintegrated rapidly within 3 minutes. DT was further reduced to <30 s by addition of any of the diluents. The indication is that the inclusion of the diluents studied can be used to improve the compressibility of the otherwise poorly compressible matrix granules. Based on the flowability, compressibility, and disintegration data, carnuba wax proved most promising in the melt granulation of the test drug for sustained release applications.

Acetaminophen↗

[Effects of light and matrix on turion germination, seedling growth and leaf photosynthesis efficiency of Potamogeton crispus].

The study with in-door experiment showed that the germination and seedling rates of Potamogeton crispus were increased under light but without matrix. Matrix promoted root growth, but light could not. The internode's length was obviously longer under dark than under light. After treated with dark, the permeability of leaf plasma membrane raised apparently. Under light condition, the Chla and Chlb contents and Chla/Chlb ratio of seedling' s leaf fluctuated, depending on with or without matrix. The maximum and minimum value of Chla/Chlb ratio was 4. 4 and 2. 8, respectively when the matrix existed, and was 4. 2 and 2. 7 when the matrix was absent. After 40 days of seedling growth, there was a significant difference in the permeability of leaf plasma membrane between the treatments with light and matrix, and with light but without matrix (P < 0.01). A significant difference was also observed in Fv/Fm, and Fv/Fo at the late growth period between the treatments of full (100%) and partial (50%, 20% and 10%) natural light, while no significant difference was found between the treatments of different partial natural light. It was suggested from the measurements of Fv/Fm, Fv/Fo, ETR, qP and qN that weak light promoted the photosynthesis, and slowed down the senile of P. crispus.

Chlorophyll↗

Lateral diffusion of redox components in the mitochondrial inner membrane is unaffected by inner membrane folding and matrix density.

We report the first lateral diffusion measurements of redox components in normal-sized, matrix-containing, intact mitoplasts (inner membrane-matrix particles). The diffusion measurements were obtained by submicron beam fluorescence recovery after photobleaching measurements of individual, intact, rat liver mitoplasts bathed in different osmolarity media to control the matrix density and the extent of inner membrane folding. The data reveal that neither the extent of mitochondrial matrix density nor the complexity of the inner membrane folding have a significant effect on the mobility of inner membrane redox components. Diffusion coefficients for Complex I (NADH:ubiquinone oxidoreductase), Complex III (ubiquinol: cytochrome c oxidoreductase), Complex IV (cytochrome oxidase), ubiquinone, and phospholipid were found to be effectively invariant with the matrix density and/or membrane folding and essentially the same as values we reported previously for spherical, fused, ultralarge, matrix-free, inner membranes. Diffusion of proton-transporting Complex V (ATP synthase) appeared to be 2-3-fold slower at the greatest matrix density and degree of membrane folding. Consistent with a diffusion-coupled mechanism of electron transport, comparison of electron transport frequencies (productive collisions) with the theoretical, diffusion-controlled, collision frequencies (maximum collisions possible) revealed that there were consistently more calculated than productive collisions for all redox partners. Theoretical analyses of parameters for submicron fluorescence recovery after photobleaching measurements in intact mitoplasts support the finding of highly mobile redox components diffusing at the same rates as determined in conventional fluorescence recovery after photobleaching measurements in fused, ultralarge inner membranes. These findings support the Random Collision Model of Mitochondrial Electron Transport at the level of the intact mitoplast and suggest a similar conclusion for the intact mitochondrion.

Animals↗

The neostriatal mosaic: II. Patch- and matrix-directed mesostriatal dopaminergic and non-dopaminergic systems.

Mesostriatal projections, which arise from dopaminergic and non-dopaminergic neurons in the ventral tegmental area, substantia nigra, and retrorubral area, are compartmentally organized in the striatum. Anterograde axonal tract tracing with Phaseolus vulgaris-leucoagglutinin (PHA-L), combined with immunohistochemical localization of tyrosine hydroxylase (TH) and autoradiographic localization of mu-opiate receptor binding sites, shows that midbrain projections to the striatum are distributed to either the mu-opiate receptor-rich "patch" or the receptor-poor "matrix" striatal compartments. Three morphologically distinct mesostriatal afferent fiber types are labeled. The first type, type A, forms a plexus of relatively thin (0.1-0.4 micron), smooth fibers with small varicosities (0.3-0.6 micron). A second type, type B, is similar to the first in forming a plexus of fibers, but is slightly thicker (0.2-0.6 micron), with more frequent varicosities (0.4-1.0 micron) that give this fiber type a crinkled appearance. The third type, type C, constitutes a minority of striatal afferents and is characterized by its large caliber (0.4-0.7 micron) with large bulbous varicosities (1.2-2.0 micron). Projections of the ventral tegmental area (A10 cell group) are primarily dopaminergic type A fibers directed to the matrix of the ventromedial striatum, including the nucleus accumbens. The retrorubral area (A8 cell group) also provides predominantly dopaminergic type A fibers to the striatal matrix, but these are distributed dorsally. The substantia nigra contains a mixed population of neurons that project to the striatum. Some, located in the dorsal tier of the pars compacta (dorsal A9 cell group), provide dopaminergic type A fibers to the striatal matrix. Others, in the ventral tier of the pars compacta (ventral A9 cell group) and in the ventral tier of the pars reticulata (displaced A9 cells), provide dopaminergic type B fibers to the striatal patches. An additional set of substantia nigra neurons that are non-dopaminergic is the source of type C fibers to the striatal matrix. Thus, distinct dorsal and ventral sets of midbrain dopaminergic neurons project, respectively, to striatal matrix and patches, and there is a non-dopaminergic mesostriatal projection to the matrix.

Afferent Pathways↗

The association of the interspersed repetitive KpnI sequences with the nuclear matrix.

The KpnI sequences constitute the dominant, long, interspersed repetitive DNA families in primate genomes. These families contain related, but nonidentical sequence subsets, some of which border functional gene domains and are transcribed into RNA. To test whether these sequences perform an organizational function in the nucleus, their association with the nuclear matrix has been examined in African green monkey cells. DNase I treatment depleted the residual matrix of most of the KpnI 1.2- and 1.5-kilobase pair family sequences although significant amounts of each family remained in the loop attachment DNA fragments. Hybridization analysis of the KpnI and RsaI cleavage patterns of matrix loop attachment DNA indicate that some sequence subsets of these KpnI families are relatively less depleted than others. The nuclear matrix association of subpopulations of KpnI 1.2- and 1.5-kilobase pair families was also shown by metrizamide gradient centrifugation of nuclear matrix complexes cleaved by KpnI endonuclease. The gradients demonstrate that some KpnI segments are differentially associated with nuclear matrix proteins. Moreover, the procedures permit the preparative isolation and purification of the DNA-protein complexes containing these KpnI 1.2- and 1.5-kilobase pair sequence families. Speculations on the relationship between the matrix association of these KpnI family sequences and their possible roles in gene organization and expression are presented and discussed.

Animals↗

Age-related changes in the role of matrix vesicles in the mandibular condylar cartilage.

A combined approach of light microscopy, immunofluorescence, transmission electron microscopy and electron energy loss spectroscopy (EELS) was used to study age-related changes in the condylar cartilage in mice. Chondrocalcin, a cartilage matrix calcium-binding protein, was demonstrated by indirect immunofluorescence microscopy using monospecific antibodies. In one week old animals the most intense staining was observed in the matrix around the hypertrophic cells in the mineralising zone, to a lesser degree around the cells in the zone of chondroblasts, while no staining was noted in the zone of chondroprogenitor cells and in the matrix around the early hypertrophic cells. In the mineralisation zone the distribution of chondrocalcin correlated with that of mineral deposits as revealed by the von Kossa stain. The matrix between the early hypertrophic cells as shown by transmission electron microscopy revealed the presence of matrix vesicles and demonstrated a gradual accumulation of hydroxyapatite in the mineralising zone. In one month old animals chondrocalcin localisation was mainly confined to the lower hypertrophic zone which also demonstrated positive von Kossa staining was seen along the articular surface. In older animals multiple electron-dense structure that resembled matrix vesicles were observed in the non-mineralising portions of the condylar cartilage. Use of the EELS method confirmed the almost complete lack of calcium ions in these structures. In contrast, with the use of the same method, detectable amounts of calcium were recorded in vesicles in the mineralising zones of all age groups. Hence what appear ultrastructurally as structures similar to matrix vesicles represent atypical vesicles that might characterise an ageing and degenerative articular cartilage and are not necessarily associated with the mineralisation process.

Aging↗

Effects of antileukemia agents on nuclear matrix-bound DNA replication in CCRF-CEM leukemia cells.

The effects of various antileukemic agents on DNA replication associated with the nuclear matrix were investigated in CCRF-CEM leukemia cells. Residual nuclear matrices were prepared by sequential treatment of nuclei with 1.5 M NaCl, DNase I, and Triton X-100 and contained 1-5, 10, and 37% of the total nuclear DNA, protein, and phospholipid, respectively. In control cells pulse-labeled for 45 s with [3H]thymidine, the specific activity of nascent DNA was four-fold greater in the nuclear matrix fraction relative to the specific activity of the high salt-soluble (nonmatrix) DNA fraction. Pulse-labeling and reconstitution experiments indicated that this enrichment of newly replicated DNA on the nuclear matrix did not result from aggregation of nascent DNA with the matrix. A 2-h incubation of tumor cells with either 0.1 microM teniposide (VM-26), 0.2 microM VM-26, or 0.5 microM amsacrine (m-AMSA) reduced the relative specific activity of nascent DNA on the nuclear matrix by 59, 61, and 54%, respectively, compared to control cells. In contrast hydroxyurea and cytosine arabinoside, at concentrations that markedly inhibited total nuclear DNA synthesis, did not decrease the relative specific activity of newly replicated DNA on the matrix. The results provide evidence that the antiproliferative effects of the DNA topoisomerase II inhibitors, VM-26 and m-AMSA, are localized on the nuclear matrix of CCRF-CEM leukemia cells.

Amsacrine↗

Ultrastructural histochemical evaluation of growth plate cartilage matrix from healthy and osteochondritic swine.

A contributing factor to the lack of understanding the cause of osteochondritic syndromes has been incomplete knowledge of the morphology of lesions in subclinical stages of the disease. In osteochondritic growth plate cartilage from growing swine, the morphology of the pericellular matrix surrounding hypertrophic zone chondrocytes is abnormal and is characteristic of a matrix in which the ordered interactions of matrix macromolecules with each other and with the plasma membrane have been altered. In the present study, ultrastructural histochemical techniques were used to analyze the nature of macromolecular interactions in the pericellular matrix in normal growth plate cartilage, and selective enzyme digestions of normal growth plate cartilage were used to simulate the morphology found in osteochondritic lesions. Results showed that a pericellular macromolecular material which was both ferrocyanide positive and trypsin sensitive was essential for stabilizing the cell membrane/pericellular interface in normal growth plates. The highly variable morphology of this same material in osteochondritic lesions was simulated by hyaluronidase digestion. Since similar pericellular matrix abnormalities have not been described in other diseases of growth plate cartilage, they may represent a matrix abnormality unique to the vascularization failure of osteochondritic syndromes. Our ability to simulate the ultrastructural morphology of subclinical osteochondritic lesions enhances the potential for understanding the macromolecular changes found in the pericellular matrix of osteochondritic cartilage. Based on these results, a new hypothesis is presented for the early sequence of events in the pathogenesis of osteochondrosis.

Animals↗

The role of nucleoside triphosphate pyrophosphohydrolase in in vitro nucleoside triphosphate-dependent matrix vesicle calcification.

Nucleoside triphosphate pyrophosphohydrolase (EC 3.6.1.8) activity is associated with matrix vesicles purified from collagenase digests of fetal calf epiphyseal cartilage. This enzyme hydrolyzes nucleoside triphosphates to nucleotides and PPi, the latter inducing precipitation in the presence of Ca2+ and Pi. An assay for matrix vesicle nucleoside triphosphate pyrophosphohydrolase is developed using beta, gamma-methylene ATP as substrate. The assay is effective in the presence of matrix vesicle-associated ATPase, pyrophosphatase, and alkaline phosphatase activities. A soluble nucleoside triphosphate pyrophosphohydrolase is obtained from matrix vesicles by treatment with 5 mM sodium deoxycholate. The solubilized enzyme induced the precipitation of calcium phosphate in the presence of ATP, Ca2+, and Pi. Extraction of deoxycholate-solubilized enzymes from matrix vesicles with 1-butanol destroys nucleoside triphosphate pyrophosphohydrolase activity while enhancing the specific activities of ATPase, pyrophosphatase, and alkaline phosphatase. In solutions devoid of ATP and matrix vesicles, concentrations of PPi between 10 and 100 microM induce calcification in mixtures containing initial Ca2+ X P ion products of 3.5 to 7.9 mM2. This finding plus the discovery of nucleoside triphosphate pyrophosphohydrolase in matrix vesicles supports the view that these extracellular organelles induce calcium precipitation by the enzymatic production of PPi. Nucleoside triphosphate pyrophosphohydrolase is more active against pyrimidine nucleoside triphosphates than the corresponding purine derivatives. The pH optimum is 10.0 and the enzyme is neither activated nor inhibited by Mg2+ or Ca2+ ions or mixtures of the two. Vmax at pH 7.5 for beta, gamma-methylene ATP is 0.012 mumol of substrate hydrolyzed per min per mg of protein and Km is below 10 microM. The enzyme is irreversibly destroyed at pH 4 and is stable at pH 10.5.

Animals↗

Transformation-dependent alterations is glycoproteins of extracellular matrix of human fibroblasts. Characterization of GP250 and the collagen-like GP140.

The extracellular matrix, prepared by extraction of confluent cultures of human lung WI-38 fibroblasts with a dipolar tonic detergent, contains four major glycoproteins: fibronectin, GP250, GP170, and GP140. All the glycoproteins can be surface-labeled; however, only fibronectin and GP170 can be readily removed by digestion with trypsin (Carter, W. G., and Hakomori, S. (1981) J. Biol. Chem. 256, 6953-6960). Most of the noncovalently bound GP250, GP170, and GP190, an additional minor glycoprotein, can be dissociated from the matrix by extraction with 8 M urea. The remaining insoluble matrix is stabilized by extensive intermolecular disulfide bonds and contains primarily GP140 and fibronectin (Carter, W. G. (1982) J. Biol. Chem. 257, 3249-3257). Affinity-purified, monospecific antibodies were prepared against GP[140 and fibronectin and utilized for detection of GP140 and fibronectin in extracts and conditioned media of WI-38, WI-38 VA13, WI-26, WI-26 VA4, and HT-1080 cells. Additional affinity-purified, polyspecific antibodies that react with GP250, GP190 GP170, and GP140 were also utilized. Fibronectin, GP250, GP190, GP170, and GP140 were all absent from transformed cells. With the exception of GP140, the absence of these glycoproteins from the matrix of transformed cells was paralleled by their accumulation in the conditioned culture media. Incubation of conditioned culture media with collagenase indicated that GP190, GP170, and GP140, as well as other glycoproteins, were digested. Antibodies to GP140 did not react with any other cellular component indicating that it is not a processing product of other matrix glycoproteins. GP140 has characteristics unlike all reported collagen types and appears to be a new collagen-like glycoprotein. In contrast, neither Gp250 nor fibronectin were sensitive to digestion with collagenase. Antibodies that react with GP250 did not react with fibronectin and vice versa, suggesting that GP250 and fibronectin do not share antigenic determinants. The interaction of labeled fibronectin and the labeled, gelatin-binding domain of fibronectin with cells after fractionation on polyacrylamide gels indicated that GP170 is the primary procollagen receptor for fibronectin in the extracellular matrix. GP140 also bound fibronectin but to a lesser degree. Soluble GP170 and GP190 present in the conditioned medium of cultured cells also bound to insolubilized fronectin, confirming the association of GP170 and GP190 with fibronectin. The interaction of the glycoprotein components in the matrix are discussed in relation to their potential cooperative function in cell attachment and their failure to adhere to the surface of transformed cells.

Cell Line↗

Proteoglycan changes in the intercellular matrix of human colon carcinoma: an integrated biochemical and stereologic analysis.

Abnormal forms and concentrations of proteoglycans have been reported for various types of tumors, suggesting that proteoglycans may play a role in neoplasia. The purpose of this study was to test two hypotheses: (1) that the glycosaminoglycan (GAG)-containing proteoglycans of the intercellular matrix of normal and neoplastic colon have different chemical characteristics, and (2) that these characteristics can be associated with distinct morphologic patterns. Chemical analysis of purified GAGs revealed a 12-fold increase in the concentration of chondroitin 4- and 6-sulfate in colonic tumors as compared with the controls; no changes were detected for the other GAGs. Histochemically, this increase in sulfated GAG occurred predominantly in the intercellular matrix of the connective tissue stroma adjacent to the neoplasm. Autoradiographic analysis of samples incubated in vitro with [35S]sulfate revealed that the connective tissue cells surrounding the tumor (but not the tumor cells) were the major sites of sulfated proteoglycan biosynthesis. Ultrastructurally, proteoglycans were identified as ruthenium red-positive granules that were present throughout the intercellular matrix of the connective tissue stroma in both normal and malignant colon. Quantitation of these granules revealed that the neoplasm contained 92 per cent shorter than in granules per cu. cm. of intercellular matrix, but that the average volume of a granule was 79 per cent smaller and the nearest neighbor distance between granules was 19 per cent shorter than in the control. Assuming that the matrix granules represent the major source of proteoglycans, we estimated that a cubic centimeter of matrix granules in the tumor contained 3.66 times more GAGs than the control, even though an average granule in the tumor contained 23 per cent less GAG than did the control. These findings suggest that the increased amounts of sulfated GAGs detected chemically in colon carcinoma can be explained by the presence of a larger number of smaller proteoglycan granules packed more closely together in the intercellular matrix.

Aged↗

[Fractionation and biosynthesis of rat liver and Zajdela hepatoma nuclear matrix proteins].

A comparative study of the nuclear matrix proteins of rat liver and Zajdela hepatoma cells was performed. The polyacrylamide SDS electrophoretic profile of the hepatoma nuclear matrix proteins differed from those of the liver by the presence of high molecular weight (over 135 KD) bands. Four nuclear matrix fractions were isolated by a subsequent treatment of the preparation with an aqueous solution of EDTA and 0,025 N sodium hydroxide. The bulk of the nuclear matrix proteins of both liver and hepatoma were alkali-soluble. The percentage of the alkali-insoluble residue and of the water-soluble fraction in the Zajdela hepatoma nuclear matrix was 3.5 and 1.7 times that of the liver, respectively. In the course of 60 min incubation of the liver mince or Zajdela hepatoma cells with 14C-Chlorella protein hydrolyzate in vitro the nuclear matrix proteins incorporated by 10-20% more label than did the total nuclear protein, the specific activity of the alkali-insoluble residue being twice higher that of the whole nuclear matrix protein. After 15 min of incubation the label was rather evenly spread along the gel, containing labelled protein bands separated according to their molecular weight. However, after 30 min and especially 60 min of incubation the label markedly prevailed in the high molecular weight proteins.

Animals↗

A matrix ATP requirement for presequence translocation across the inner membrane of mitochondria.

The mitochondrial presequence initiates protein translocation across the inner membrane of mitochondria in a delta psi-dependent step. We have investigated the role of matrix ATP in this process. When matrix ATP was reduced to interfere with the function of mitochondrial heat shock protein 70, presequence translocation across the inner membrane was strongly inhibited. This was accompanied by the accumulation of an import intermediate that was unprocessed and accessible to protease added to the intact mitochondria. Both delta psi and matrix ATP were required for further translocation of this intermediate into the matrix. When ATP levels are insufficient to support protein import, it appears that the presequence becomes translocated across the inner membrane, but delta psi does not maintain it in the matrix. Presequence translocation across the inner membrane is thus a reversible reaction, and a step dependent on matrix ATP is required to make it unidirectional. Based on these observations, a model on the role of delta psi, mthsp70, and matrix ATP in presequence translocation across the inner membrane is presented.

Adenosine Triphosphate↗

Nuclear matrix proteins distinguish normal diploid osteoblasts from osteosarcoma cells.

Interrelationships between nuclear architecture and gene expression were examined by comparing the representation of nuclear matrix proteins in ROS 17/2.8 rat and MG-63 human osteosarcoma cells with those in normal diploid osteoblasts. The tumor-derived cells coexpress genes which are expressed in a sequential and mutually exclusive manner during the progressive stages of osteoblast differentiation. In osteosarcoma cells two-dimensional electrophoretic analysis indicates a composite representation of nuclear matrix proteins characteristic of both the proliferative and postproliferative periods of osteoblast phenotype development. In addition, nuclear matrix proteins unique to the tumor cells and the absence of nuclear matrix proteins found only in normal diploid osteoblasts are observed. Tumor-specific nuclear matrix proteins include those expressed in a proliferation-dependent and independent manner. There is a parallel relationship between nuclear matrix proteins and the expression of cell growth and tissue-specific genes during osteoblast differentiation and in osteosarcoma cells where the developmental sequence of gene expression has been abrogated. Nuclear matrix proteins therefore provide markers reflecting defined periods of bone cell differentiation and phenotypic characteristics of an osteosarcoma.

Animals↗

A manufacturer's approach to development of matrix robust methods.

Use of matrix robust methods (MRM) to solve the problem of matrix-induced analytic errors appears to be a sound strategy. The development of MRM, however, is in an infancy stage. The principal barrier is the complexity of the matrix effect that involves interactions of the matrix, the analyte, and the technology base of the test method. Each of these three components has its own set of variables. The present article focuses on concepts and tactics to develop the MRM that appear promising on a path-forward basis. The author believes that the current environment favors probability of successful development of MRM. The quality awareness at all functional levels is high, technically feasible models for the design and development of MRM exist, and commercialization of such a method promises the developer a competitive advantage in the marketplace. The optimum strategy for MRM development appears to be evolutionary, ie, starting with a few critical methods and the samples representing the prevalent matrix types. Success in developing MRM also depends on close cooperation between the developers of the MRM, proficiency testing material, the proficiency testing providers, and the regulatory bodies. The research and development program may also include approaches that detect and/or correct the matrix-caused error(s) both in place of, or as an adjunct to, MRM. With respect to the development of genuine MRM, the author has given a typical development scenario comprising the design specifications, specific experimental approaches, evaluation, market introduction, and postintroduction monitoring of its robustness. The crux of the experimental approach is the response surface co-optimization of reaction conditions for the samples of prevalent matrix types such as the proficiency testing materials. The recommended approach is supported by examples of existing methods that exhibit robustness against certain types of matrices. The author believes that addition of MRM to the clinical chemistry methods repertoire is likely to improve the test result quality. It will also improve proficiency testing performance and patient care while boosting the morale of laboratory personnel.

Bias↗

Electrophoretic analysis of nuclear matrix proteins in human hepatocellular carcinoma.

The nuclear matrix is the non-chromatin skeleton of the nucleus. This structure contributes to the shape of the nucleus and regulates various nuclear functions. In this study, nuclear matrix proteins of human normal liver, a liver cancer cell line, HepG2, and hepatocellular carcinomas (HCC) were investigated. Using high resolution two-dimensional polyacrylamide gel electrophoresis, the nuclear matrix proteins of 3 normal liver and 14 HCC were compared and contrasted. A high degree of similarity between normal liver, HepG2, and HCC nuclear matrix protein patterns was found. Two HCC specific nuclear matrix proteins were identified. Among these, one protein (HCC-1, Mr 62 kd, pI 5.3) appeared in all tumor samples and HCC-2 (Mr 33.25, pI 5.3-5.5) was present in 9/11 tumors, but absent in normal liver and HepG2. Our results indicate the presence of HCC specific nuclear matrix proteins. These matrix proteins may be used as markers for HCC.

Antigens, Nuclear↗

Evaluation of the effect of 3 different diets on the bioavailability of 2 sustained release theophylline matrix tablets.

Food-induced changes on bioavailability of 2 sustained release theophylline matrix tablets, which uses an hydrophilic matrix of Carbopol 974P and lipid matrix of hydrogenated castor oil (Cutina HR) as sustaining agents, have been studied in 2 different groups of 12 healthy male volunteers. The study design was a 4 x 4 Latin square involving 12 subjects who received a single dose of the tablet while fasting or with a standarized normal, high fat or high fat/high protein meal. The results for both formulations showed no differences in t1/2 and MRT when the tablets were administered with any type of diet. No differences in tmax and AUC were found when the Carbopol matrix tablet was administered with any class of diet. Higher Cmax were obtained when the tablet was administered with any class of meal. The analysis of the ratio Cmax/AUC evidenced that changes in Cmax for normal and high fat diet were attributable to higher rate of absorption, probably due to a delay in gastric emptying, thus avoiding the rapid formation of the gel structure which controls the liberation of theophylline. Three subjects showed a probable bioadhesive behavior of the formulation in the fasted condition. The lipid matrix tablet showed a statistical significant delay in tmax comparing the fasted condition with the different diets. AUC, Cmax, and the ratio Cmax/AUC did not change when the tablet was administered with the normal diet. High fat and high fat/high protein diets produced higher AUC (31% and 40%, respectively) and Cmax (40% and 56%, respectively) than under fasting condition. The analysis of the ratio Cmax/AUC indicated that changes in Cmax were more probably due to changes in the amount absorbed. In conclusion, a sustained-release theophylline tablet formulated as a lipid matrix is affected by any meal with a high fat content, probably because of the increase of pancreatic and biliary secretions promoted by the meal that would affect the matrix itself. Normal diet showed this behavior but only as a nonsignificant trend. It seems appropiate to recommend to dose both formulations at least 2 hours before meal, or under consistent conditions of fasting or nonfasting state to assure reproducible absorption or clinical response.

Area Under Curve↗

Distribution of noncollagenous proteins in the matrix of adult human bone: evidence of anatomic and functional heterogeneity.

The microanatomic distribution of several noncollagenous proteins (NCPs) in bone matrix was examined by immunohistochemical analysis of glycol-methyl methacrylate-embedded normal adult human bone biopsies. Osteopontin and bone sialoprotein stained throughout the lamellae of both trabecular and cortical bone. Cement lines (cortical and trabecular) and the mineralized matrix immediately adjacent to each Haversian canal were intensely stained. Osteocalcin was detected in cement lines; however, lamellar staining varied depending on the location within the individual unit of bone. In cortical bone, the inner concentric lamellae of osteons were often unstained but the outer lamellae were heavily stained for osteocalcin. Osteonectin was not detected in cement lines and in most specimens revealed a pattern similar to that of osteocalcin with respect to the absence of immunostaining within the inner concentric lamellae. Decorin was prominent in the perilacunar matrix, the canaliculi of osteocytes, and the matrix immediately adjacent to quiescent Haversian canals. Biglycan appeared evenly distributed throughout cortical and trabecular bone matrix. These results suggest that the incorporation of NCPs into matrix may vary depending on the stage of formation of individual bone units. The specific distribution and spatial relationship of these NCPs may be related to the function of each protein during bone resorption and formation. The distinct patterns of NCP localization in bone support the hypothesis that in addition to their structural and mineral-inducing properties, these proteins may influence the events associated with bone remodeling, such as recruitment, attachment, differentiation, and activity of bone cells.

Adult↗