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H Pertoft

Publications and source records attributed to H Pertoft.

At least 37 records · Page 2Linked to original sources

Enzymic pathways of hyaluronan catabolism.

The enzymic degradation of hyaluronan in mammalian tissues takes place in two phases, encompassing breakdown of the polysaccharide to its monosaccharide constituents and subsequent utilization of the monosaccharide products. Degradation to the monosaccharide components is effected by the concerted action of three enzymes, hyaluronidase, beta-D-glucuronidase and beta-N-acetyl-D-hexosaminidase. The relative contributions of hyaluronidase and the two exoglycosidases to the physiological catabolism of hyaluronan are not yet known but consideration of the kinetic properties of the three enzymes clearly indicates that hyaluronidase is best suited for the initial attack on the polysaccharide, inasmuch as its Km for hyaluronan is 1000- to 10,000-fold lower than that estimated for beta-D-glucuronidase. Recent investigations in the authors' laboratories have been focused on the catabolism of hyaluronan and other complex carbohydrates in liver, since the sinusoidal endothelial cells in this organ are the main sites for degradation of circulating hyaluronan. Assay of ten lysosomal hydrolases in isolated rat liver cells showed considerably higher activities in Kupffer cells and endothelial cells than in hepatocytes for nine of the enzymes, including beta-D-glucuronidase and beta-N-acetyl-D-hexosaminidase. The activity of N-acetylglucosamine-6-phosphate deacetylase, a key enzyme in the metabolism of the N-acetylglucosamine released by the lysosomal degradation of hyaluronan and other complex carbohydrates, has also been determined. High deacetylase activities were observed in both Kupffer cells and endothelial cells but, surprisingly, virtually no activity was detected in hepatocytes. This finding implies that N-acetylglucosamine cannot be degraded in hepatocytes and must be largely reutilized in the synthesis of new macromolecules. Further studies of the enzymes involved in hyaluronan degradation and N-acetylglucosamine utilization in the liver are under way.

Animals↗

Purification of human serum amyloid P component (SAP) by calcium affinity chromatography.

Serum amyloid P component (SAP) has been purified from human serum by means of immobilized metal ion affinity chromatography (IMAC). It was selectively concentrated on carboxymethylated aspartic acid agarose (CM-Asp-agarose) loaded with calcium and, employing very mild conditions, purified to electrophoretical and immunological homogeneity in a single step amounting to about 1900-fold purification. As a purification method our procedure thus compares well with bio-specific affinity chromatography.

Amino Acids↗

Tissue plasminogen activator is endocytosed by mannose and galactose receptors of rat liver cells.

Experiments were carried out to characterize the specificity of uptake of tPA in rat liver cells. Endocytosis in liver endothelial cells of the native carbohydrate variants of tissue plasminogen activator (tPA), and tPA inactivated by diisopropyl fluorophosphate was found to be competitive, suggesting that the determinant being recognized by these cells is different from the active site. Fibronectin and urokinase, which show partial homology with tPA, did not compete with tPA for uptake in liver endothelial cells. Hyaluronic acid, collagen, or IgG, which are endocytosed by specific receptors in liver endothelial cells, did not interfere with the uptake. Reduced endocytosis by liver endothelial cells was observed with tPA modified in the carbohydrate side chains, suggesting that these structures are important for uptake. Ovalbumin, mannan, mannose, fructose, and EDTA, but not galactose, effectively inhibited uptake in liver endothelial cells of both native and diisopropyl fluorophosphate-inhibited tPA, but had very little effect on the uptake of tPA modified in the carbohydrate side chains. Endocytosis of native tPA by parenchymal cells could be inhibited by galactose, ovalbumin, and EDTA, but not by mannose. These results suggest that endocytosis of tPA by liver endothelial cells and parenchymal cells is mediated by the mannose and galactose receptors, respectively.

Animals↗

Uptake and degradation of tissue plasminogen activator in rat liver.

The mechanism of uptake of tissue plasminogen activator (tPA) in rat liver was studied. Radio-iodinated tPA was removed from the circulation after intravenous administration in a biphasic mode. The initial half life, t1/2(alpha), and the terminal phase, t1/2 (beta), were determined to be 0.5 min and 7.5 min, resp. Separation of the liver cells by collagenase perfusion and density centrifugation, revealed that the uptake per cell was two to three times higher in the non-parenchymal cells than in the parenchymal cells. Endocytosis of fluorescein isothiocyanate-labelled or 125I-labelled tPA was studied in pure cultures of liver cells in vitro. Liver endothelial cells and parenchymal cells took up and degraded tPA. Endocytosis was more efficient in liver endothelial cells than in parenchymal cells, and was almost absent in Kupffer cells. Competitive inhibition experiments showing that excess unlabelled tPA could compete with the uptake and degradation of 125I-tPA, suggested that liver endothelial cells and parenchymal cells interact with the activator in a specific manner. Endocytosis of trace amounts of 125I-tPA in cultures of liver endothelial cells and parenchymal cells was inhibited by 50% in the presence of 19 nM unlabelled tPA. Agents that interfere with one or several steps of the endocytic machinery inhibited uptake and degradation of 125I-tPA in both cell types. These findings suggest that 1) liver endothelial cells and parenchymal cells are responsible for the rapid hepatic clearance of intravenously administered tPA; 2) the activator is taken up in these cells by specific endocytosis, and 3) endocytosed tPA is transported to the lysosomes where it is degraded.

Animals↗

Identification of a fibronectin receptor specific for rat liver endothelial cells.

Antibodies raised against the fibronectin receptor of rat hepatocytes recognized one protein (Mr 120 and 135 kDa for unreduced and reduced samples, respectively) in immunoblotting of solubilized rat liver endothelial cells (LEC). The antibodies specifically precipitated a 200-kDa protein together with the 135-kDa component from 125I-labeled LEC. Spreading of LEC on fibronectin, but not on laminin or collagen, was inhibited by monovalent Fab fragments of the antibodies, implicating that the 135/200-kDa complex is a specific fibronectin receptor. The results indicate that LEC, hepatocytes, and fibroblasts of rat carry different fibronectin receptors, suggesting that the interaction of fibronectin with these cells may have different functional roles.

Animals↗

Binding of hyaluronate and chondroitin sulphate to liver endothelial cells.

Hyaluronate is taken up and metabolized in liver endothelial cells by means of a receptor. To characterize the interaction with the receptor, two preparations of 3H-labelled hyaluronate, of Mr 4 X 10(5) and 6.4 X 10(6), and a series of hyaluronate oligosaccharides were bound to cultured liver endothelial cells at 7 degrees C. The dissociation constant varied between 4.6 X 10(-6) M for an octasaccharide and 9 X 10(-12) M for the largest polymer. The Mr-dependence for the series of oligosaccharides was explained by the increased probability of binding due to the repetitive sequence along the chain. The high affinity of high-Mr hyaluronate for the receptor could also be mainly ascribed to this effect, which rules out any major contribution of co-operative multiple-site attachment to the cell surface. Each liver endothelial cell can bind 10(5) oligosaccharides, about 10(4) molecules with Mr 4 X 10(5) and about 10(3) molecules with Mr 6.4 X 10(6). This is explained by mutual exclusion of large molecules from the cell surface. Chondroitin sulphate is also bound to liver endothelial cells. Inhibition studies showed that it binds to the same receptor as hyaluronate and with an affinity that is about 3-fold higher than that of hyaluronate of the same degree of polymerization.

Animals↗

Alteration in density, morphology and parathyroid hormone release of dispersed parathyroid cells from patients with hyperparathyroidism.

Dispersed parathyroid cells from normal human and bovine glands and from 10 patients with primary (7 adenomas, 3 hyperplasias) and 4 patients with uraemic hyperparathyroidism (HPT) have been investigated with respect to density, morphology and parathyroid hormone (PTH) release. Percoll density gradients enabled an efficient isolation of viable parathyroid cells which generally banded between 1.035-1.090 g/ml. The average density was significantly higher in cells from the normal than the abnormal glands. The pathological glands contained large chief cells, oxyphil and transitional oxyphil cells and, in one case, water-clear cells which were enriched in fractions with densities below 1.055 g/ml. Measurements of cell diameters revealed an increased proportion of enlarged cells in the preparation of abnormal glands. Nuclear diameters were similar in the normal human glands, adenomas and hyperplasias, but the variability was greater among the adenomas. In comparison to normal bovine parathyroid cells, PTH release of cells from the pathological human glands was reduced and abnormally insensitive to extracellular calcium. The oxyphil and water-clear cells secreted similar amounts of PTH as the chief cells of the abnormal glands. The disturbed PTH release in secondary HPT seemed to be confined mainly to cells within nodules of the hyperplastic glands. The results show that the disturbed hormone regulation in HPT is related to morphological changes of the cells and that buoyant density gradients can be used to accumulate the abnormal cells.

Adenoma↗

Oligosaccharides generated by an endoglucuronidase are intermediates in the intracellular degradation of heparan sulfate proteoglycans.

An intracellular heparan sulfate oligosaccharide has been identified in rat hepatocytes cultured in the presence of [35S]sulfate. Pulse-chase experiments suggest that [35S]sulfate is first incorporated into heparan sulfate proteoglycans which are subsequently converted to the low molecular weight component. The oligosaccharide (Mr 7000) contains little or no protein and is also present in rat liver homogenates. Subcellular fractionation and density gradient centrifugation in Percoll of liver homogenates demonstrated that the oligosaccharide was present in lysosomes or in particles of similar distribution and buoyant density. Structural analysis of oligosaccharides isolated from a rat liver lysosomal fraction indicate that glucuronic acid is present in the reducing end of the oligosaccharide and that this residue is preferentially linked to an N-acetylated glucosamine unit. These data suggest that the heparan sulfate oligosaccharide is generated through the action of a heparan sulfate-degrading endoglucuronidase previously found in human platelets and rat liver (Oldberg, A., Heldin, C.-H., Wasteson, A., Busch, C., and Hook, M. (1980) Biochemistry 19, 5755-5762).

Animals↗

Endocytosis and degradation of chondroitin sulphate by liver endothelial cells.

Intravenously administered chondroitin sulphate, chemically labelled by [3H]acetylation of partially deacetylated polysaccharide, was taken up and degraded by the non-parenchymal cells of the liver. Studies using primary monolayer cultures of pure Kupffer cells, liver endothelial cells and parenchymal cells revealed that [3H]chondroitin sulphate was taken up and degraded by the liver endothelial cells only. Binding studies at 4 degrees C with [3H]chondroitin sulphate and 125I-chondroitin sulphate proteoglycan indicated that the glycosaminoglycan and the proteoglycan are recognized by the same binding sites on the liver endothelial cells. The ability of hyaluronic acid to compete with the labelled ligands for binding suggested that the binding site is identical with the recently described hyaluronate receptor on the liver endothelial cells [Smedsrød, Pertoft, Eriksson, Fraser & Laurent (1984) Biochem. J. 223, 617-626]. Fluorescein-labelled chondroitin sulphate proteoglycan accumulated in perinuclear vesicles of the liver endothelial cells, indicating that the proteoglycan is internalized and transported to the lysosomes. The finding that [3H]chondroitin sulphate and 125I-chondroitin sulphate proteoglycan were degraded by the liver endothelial cells to low-molecular-mass radioactive products suggested that both the polysaccharide chain and the core protein were catabolized by the cells.

Animals↗

Studies in vivo and in vitro on the uptake and degradation of soluble collagen alpha 1(I) chains in rat liver endothelial and Kupffer cells.

Intravenously administered 125I-labelled monomeric alpha 1 chains (125I-alpha 1) of collagen type I were rapidly cleared and degraded by the liver of rats. Isolation of the liver cells after injection of the label revealed that the uptake per liver endothelial cell equalled the uptake per Kupffer cell, whereas the amount taken up per hepatocyte was negligible. The uptake of 125I-alpha 1 in cultured cells was 10 times higher per liver endothelial cell than per Kupffer cell. The ligand was efficiently degraded by cultures of both cell types. However, spent medium from cultures of Kupffer cells, unlike that from cultures of other cells, contained gelatinolytic activity which degraded 125I-alpha 1. The presence of hyaluronic acid, chondroitin sulphate or mannose/N-acetylglucosamine-terminal glycoproteins, which are endocytosed by the liver endothelial cells via specific receptors, did not interfere with binding, uptake or degradation of 125I-alpha 1 by these cells. Unlabelled alpha 1 and heat-denatured collagen inhibited the binding to a much greater extent than did native collagen. The presence of fibronectin or F(ab')2 fragments of anti-fibronectin antibodies did not affect the interaction of the liver endothelial cells, or of other types of liver cells, with 125I-alpha 1. The accumulation of fluorescein-labelled heat-denatured collagen in vesicles of cultured liver endothelial cells is evidence that the protein is internalized. Moreover, chloroquine, 5-dimethylaminonaphthalene-1-sulphonylcadaverine (dansylcadaverine), monensin and cytochalasin B, which impede one or more steps of the endocytic process, inhibited the uptake of 125I-alpha 1 by the liver endothelial cells. Leupeptin, an inhibitor of cathepsin B and 'collagenolytic cathepsins', inhibited the intralysosomal degradation of 125I-alpha 1, but had no effect on the rate of uptake of the ligand. The current data are interpreted as follows. (1) The ability of the liver endothelial cells and the Kupffer cells to sequester circulating 125I-alpha 1 efficiently may indicate a physiological pathway for the breakdown of connective-tissue collagen. (2) The liver endothelial cells express receptors that specifically recognize and mediate the endocytosis of collagen alpha 1(I) monomers. (3) The receptors also recognize denatured collagen (gelatin). (4) Fibronectin is not involved in the binding of alpha 1 to the receptors. (5) Degradation occurs intralysosomally by leupeptin-inhibitable cathepsins.

Animals↗

Preparation of pure hepatocytes and reticuloendothelial cells in high yield from a single rat liver by means of Percoll centrifugation and selective adherence.

A rapid method for mass isolation of functionally intact hepatocytes and reticuloendothelial cells from a single rat liver is described. The technique is based on collagenase perfusion of the liver, isopycnic sedimentation in Percoll, and selective adherence of the cells. The Kupffer cells (KC) attach and spread on glass or plastic in serum-free medium 15 min following seeding. Cultures of KC are 90%-95% pure with about 5% liver endothelial cells (LEC), less than 1% parenchymal cells (PC) and a maximum of 5% stellate cells (SC). The LEC adhere and spread on fibronectin 60-120 min following seeding, forming cultures that are contaminated with 5-10% SC and less than 1% KC and PC. The yield of plated LEC is 50-60 X 10(6) per 200-g rat. Ultrastructural analysis shows that Percoll does not associate with the cells during the separation procedure.

Animals↗

Functional and morphological characterization of cultures of Kupffer cells and liver endothelial cells prepared by means of density separation in Percoll, and selective substrate adherence.

This paper presents a study on the structure and function of Kupffer cells (KC) and liver endothelial cells (LEC) isolated by a simple and rapid technique involving 1) perfusion of the liver with collagenase; 2) cell separation by means of density centrifugation in Percoll; and 3) cell culture, taking advantage of the fact that KC and LEC differ in their preferences for growth substrate. The KC, which attach and spread under serum-free conditions on surfaces of glass or plastic during the first 15 min in culture exhibit a typical macrophage-like morphology including membrane ruffling and a heterogenous content of vacuoles. Moreover, these cells express (a) Fc receptors (FcR) for binding and phagocytosis of erythrocytes covered with immune globulin G (E-IgG), and (b) complement receptors (CR) for binding and serum dependent phagocytosis of erythrocytes covered with either human C3b or mouse inactivated C3b (iC3b). The cells also bind fluid phase fluoresceinated C3b. Approximately 30% of the KC express immune response-associated (Ia)-antigens. The LEC attach and spread on fibronectin coated surfaces, but not on glass or plastic surfaces, during the first two hours in culture with or without serum, and are morphologically distinct from KC. Cultured LEC are well spread out with no membrane ruffling and with numerous large vesicles surrounding the regularly shaped nucleus. These cells bind, but do not ingest E-IgG via the FcR, but no binding of fluid phase C3b or particle fixed C3b or iC3b can be observed. Incubation of LEC with fluorescein amine conjugates of ovalbumin or formaldehyde treated serum albumin, but not with fluoresceinated native serum albumin, results in accumulation of fluorescence specifically localized in the large perinuclear vesicles. Neither KC nor any other cell types tested have the ability to accumulate fluorescence upon incubation with these compounds. Ia-antigens are not present on the LEC. Cytochemical demonstration of unspecific esterase, acid phosphatase, and peroxidase reveals different patterns and intensities of staining in KC as compared to LEC.

Animals↗

Isolation of a purified mitochondrial fraction from viable clonal insulin-producing cells (RINm5F) by Percoll density gradient centrifugation.

A Percoll density gradient was employed for selecting large numbers of viable insulin-producing RINm5F cells. Homogenates of these cells were then subjected to gradient centrifugation and two clearly visible bands were obtained. The light fraction was essentially composed of mitochondria banded at a density of about 1.06 g/ml. The heavier fraction banded at 1.09 to 1.10 g/ml and contained lysosomes and a small number of secretory granules. The distribution of Percoll particles was restricted to the extracellular space and there was no adsorption to any membrane structures. The distribution pattern of marker enzymes for the mitochondria and lysosomes was similar to that of normal pancreatic beta-cells. With the use of a Percoll density gradient it was thus possible to isolate a purified mitochondrial fraction from viable RINm5F cells.

Animals↗

Studies in vitro on the uptake and degradation of sodium hyaluronate in rat liver endothelial cells.

Rat liver endothelial cells in primary cultures at 7 degrees C bind radioactively labelled sodium hyaluronate (HA; Mr 400 000) specifically and with high affinity (Kd = 6 X 10(-11) M). Maximal binding capacity is approx. 10(4) molecules per cell. Inhibition experiments with unlabelled HA and oligosaccharides from HA indicate that each molecule is bound by several receptors acting co-operatively and that the single receptor recognizes a tetra- or hexa-saccharide sequence of the polysaccharide. At 37 degrees C the liver endothelial cells endocytose the HA. The process combines the features of a receptor-mediated and a fluid-phase endocytosis. The rate of internalization does not show any saturation with increasing HA concentration, but is approximately proportional to the polysaccharide concentration at and above the physiological concentration. At 50 micrograms of free HA/l each liver endothelial cell accumulates 0.1 fg of the polysaccharide/min. Fluorescent HA accumulates in perinuclear granules, presumably lysosomes. Degradation products from HA appear in the medium about 30 min after addition of the polysaccharide to the cultures. The radioactivity from HA containing N-[3H]acetyl groups or 14C in the sugar rings is recovered mainly as [3H]acetate and [14C]acetate respectively. Estimations of the capacity of liver endothelial cells to internalize and degrade HA in vitro indicate that these cells may be primarily responsible for the clearance of HA from human blood in vivo.

Animals↗

Disagreement in molecular weight determinations of dentin phosphoprotein.

The molecular weight of highly phosphorylated phosphoprotein from rat incisor dentin was estimated by three different methods: sodium dodecyl sulfate (SDS)-polyacrylamide gel electrophoresis, gel chromatography in 6 M guanidinium chloride (GdnHCl) and analytical ultracentrifugation at high salt concentration. SDS-polyacrylamide gel electrophoresis revealed an abnormal migration of the phosphoprotein and its enzymatically dephosphorylated derivative in comparison to standard proteins. Depending on the acrylamide concentration in the gel (7.5-20%), the apparent molecular weight of the phosphoprotein varied from 90,000 to 27,000. Similar results were obtained for the dephosphorylated protein. In gel chromatography using 6 M GdnHCl as eluent the phosphoprotein had an elution volume corresponding to that of a standard protein with a molecular weight of 67,000, while the enzymatically dephosphorylated phosphoprotein showed an apparent molecular weight of 30,000. The phosphoprotein behaved non-ideally in equilibrium sedimentation runs. The apparent molecular weight was strongly concentration-dependent and the extrapolation to zero concentration was uncertain. However, after enzymatic dephosphorylation the concentration dependence disappeared and a molecular weight of 28,000 could be calculated. Since the phosphate groups represent 26% of the phosphoprotein by weight, the true molecular weight of the highly phosphorylated phosphoprotein components from rat incisor dentin should be 38,000. The study shows that it is not possible directly to estimate the molecular weight of this type of protein by standard methods elaborated for normal globular proteins.

Animals↗

Removal of percoll from microsomal vesicles by gel filtration on sephacryl-S-1000 superfine.

A microsomal vesicle fraction was prepared from rat liver homogenate by centrifugation in gradients of Percoll. The microsomes were subjected to gel filtration on Sephacryl S-1000 Superfine, which resolved the microsomes from Percoll. The elution pattern of the microsomal marker enzyme NADPH-cytochrome c reductase showed that the main part of the enzyme was present in a peak at Kav about 0.1, while Percoll eluted in a broad peak at Kav about 0.7. The total yield of eluted enzyme activity was 85%. The gel filtration had to be carried out in the presence of 10 mM tris or NaCl. At lower ionic strength or in 0.25 M sucrose alone, anomalous behaviour of the Percoll particles and microsomes on the gel was observed. Electron microscopy of samples from the void volume fraction of the Sephacryl S-1000 Superfine column showed an almost complete removal of Percoll from the microsomes. Furthermore, the vesicle preparation was essentially free of membrane fragments.

Acrylic Resins↗

Measurement of edema in the nervous system. Use of Percoll density gradients for determination of specific gravity in cerebral cortex and white matter under normal conditions and in experimental cytotoxic brain edema.

A method is presented by which density measurements can be performed on samples from cerebral cortex and white matter of normal and intoxicated animals using nontoxic ingredients as an alternative to the bromobenzene-kerosene technique described by Nelson et al. (1971). A continuous density gradient is prepared in a calibrated glass cylinder by using a new product, Percoll, which consists of colloidal silica particles coated with polyvinyl pyrrolidone. The gradient is stable and the same column can be used for repeated experiments over a long period of time. Interactions between the gradient media and the samples are evaluated and various methodological aspects concerning removal and handling of the tissue samples are presented. Experiments with acute triethyltin (TET) intoxication in the mouse and the hamster show that the Percoll technique can be used as an alternative to the bromobenzene-kerosene method in quantitative studies on cytotoxic brain edema.

Animals↗