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Biomedical subjects

M W Hatton

Publications and source records attributed to M W Hatton.

At least 73 records · Page 4Linked to original sources

The effect of thrombin on platelet accumulation on the vessel wall - influence of heparin and aspirin.

Rabbit aortae were removed from exsanguinated rabbits, washed, everted on probes, treated with thrombin, washed to remove unbound thrombin and used to measure the accumulation of 51Cr-labeled platelets in vitro. Thrombin pretreatment of normal rabbit aortae did not cause platelet accumulation on the endothelium; platelets appeared to accumulate only at sites where the subendothelium had been exposed. The quantitative data obtained with 51Cr-labelled platelets was reinforced by observations by scanning electron microscopy. 125I-labelled thrombin became associated with the endothelium and also with de-endothelialized vessels, and some of it could be displaced by high concentrations of heparin. Exposure of vessels to heparin after thrombin treatment eliminated the enhanced platelet accumulation caused by the thrombin treatment, probably because heparin displaced thrombin from the aortae, as demonstrated in experiments with 125I-thrombin. Inhibition of PGI2 production by aspirin treatment of the vessels did not enhance platelet accumulation on normal or thrombin-treated aortae. Thus, although thrombin treatment of the endothelium does not cause platelets to adhere to it, thrombin does cause increased platelet accumulation on the areas where the subendothelium is exposed or where endothelial cells are damaged.

Animals↗

The structural heterogeneity of the carbohydrate moiety of desialylated human transferrin.

Human transferrin consists of a single chain polypeptide which supports two N-glycosidically linked glycans at sequons a and b. Glycopeptides were released from human transferrin by proteolytic digestion, desialylated by mild acid hydrolysis, and then isolated by chromatographic methods. The structures of the glycans located on each sequon were determined by a combination of analytical techniques including Smith degradation, permethylation, and enzymic degradation. Approximately 79% of the total glycan from sequon a was of the biantennary type as previously described by Dorland and his colleagues (FEBS Lett. 77, 15-20 (1977)). The remaining 21% consisted of a mixture of triantennary and tetraantennary glycans, each amounting to approximately 10% of the total glycan for this sequon. The triantennary structure resembled that described for the N-glycosidic triantennary glycans of bovine fetuin by Nilsson and his colleagues (J. Biol. Chem. 254, 4545-4553 (1979)). Of the tetraantennary glycan, approximately half of the structures were incomplete, i.e., one antenna terminated by N-acetylglucosamine. On sequon b, 81% of the glycan was biantennary, identical to those biantennary glycans of sequon a, and the reminder was triantennary, also of the fetuin type. The glycan structures and their locations on the polypeptide are related to the known subpopulations of human transferrin.

Amino Acids↗

Multivalent interaction between asialofetuin and plasma membrane preparations from the rat liver.

Binding of bovine asialofetuin by rat liver plasma membranes was studied using different techniques for the separation of the free and bound forms of the glycoprotein and also different approaches to measure nonspecific binding. The membrane preparations had the electron microscopic appearance of a mixture of lamellae and vesicles and their lipid:protein ratios and marker enzyme profiles fell within the range of values available from the literature. The binding capacity was approximately 15 pmol of asialofetuin per milligram of membrane protein. Scatchard plots of the values obtained over a wide range of concentrations (4.8--12.6 micrograms asialofetuin per 30 micrograms membrane protein) after incubation at 22 degrees C showed pronounced nonlinearity which, in combination with evaluations according to other theoretical models, was referable to heterogeneity of binding. In sharp contrast, after incubation at 4 degrees C the Scatchard plot was linear. This difference is interpreted as the expression of a functional, rather than a chemical, heterogeneity in asialofetuin binding. The underlying mechanism is thought to be competition of galactose groups for binding sites with the result that the number of bonds varies between the galactose groups of a bound asialofetuin molecular and the hepatic lectin, depending on the concentration of the glycoprotein in the incubation mixture.

Animals↗

Transferrin catabolism in mammalian species of different body sizes.

Turnover of transferrin was measured in 62 mammals from 11 species (baboon, dog, goat, guinea pig, man, mouse, pig, rabbit, rat, rhesus monkey, and sheep) using iodinelabeled transferrin of homologous and/or heterologous origin. Protein turnover was determined either from the plasma protein-bound radioactivity curves or from the slopes of total body radiation. The volume of transferrin pool, expressed as equivalent milliliters of plasma, turned over per day correlated closely with species size (r = +0.977). Using the parabolic equation, y = axb, the constants for the relationship between body weight (x) and transferrin turnover (y) were a, 22.845; and b, 0.68. However, species of comparable weights with deviating transferrin turnovers do exist within the boundaries of this relationship. From a limited number of serum transferrin estimations in all species except for rhesus, six species appeared to have transferrin concentrations in a broad middle range (2.5-3.5 mg/ml). By comparison, dog and guinea pig had markedly lower, and pig and rat had markedly higher, serum transferrin concentrations.

Animals↗

Heparin inhibits thrombin binding to rabbit thoracic aorta endothelium.

Thrombin binding to freshly prepared sections of rabbit thoracic aorta was studied. After the sections had been exposed to a range of concentrations (0.1 to 3.8 IU/ml) of 125I-labeled thrombin for various periods of time at 37 degrees C, endothelial Häutchen preparations were obtained, and their radioactivity content was determined. Scatchard plot analysis of the data indicated that approximately 5.8 X 10(5) molecules of thrombin associated with each endothelial cell, with a KD of 2.6 X 10(08)M. By incubation with an excess of unlabeled thrombin, 50% of bound 125I-labeled thrombin was displaced from the endothelium in 7.3 min. Exposure of the endothelial surface to heparin (1 to 10 USP U/ml) did not significantly affect subsequent thrombin binding. However, incubation of the aorta in a thrombin solution containing 1 to 10 USP U/ml heparin did reduce enzyme binding to the endothelium by up to 60%. Similarly, the presence of heparin inhibited thrombin binding to the thoracic aorta of exsanguinated rabbits in situ. Endothelium, to which 125I-labeled thrombin was bound, lost 50% to 70% of the bound enzyme when suspended in a solution containing heparin (10 USP U/ml) and compared to the control incubated without heparin. These observations are consistent with the proposal that a major portion of endothelium-bound thrombin may be associated with pericellular heparan sulfate; heparin competes for thrombin with the heparan sulfate sites, and because of its higher affinity for thrombin, heparin displaces bound thrombin from, or inhibits binding of free thrombin by, the endothelium.

Animals↗

Three types of human asialo-transferrin and their interactions with the rat liver.

Three types of asialo-transferrin were obtained from immunologically pure human transferrin by chromatography on DEAE-cellulose, followed by desialylation and affinity chromatography on a column of the immobilized asialo-glycoprotein-binding hepatic lectin from rabbit liver. Of the asialo-transferrins, type 1 was derived from the principal DEAE-cellulose chromatographic component of transferrin, i.e. the one that contains two biantennary glycans. The two other asialo-transferrins (types 2 and 3) were derived from a minor DEAE-chromatographic transferrin component, which is assumed to possess one biantennary and one triantennary glycan. The three asialo-transferrin types were indistinguishable by electrophoretic mobility, but they were readily distinguished on the basis of their binding strengths to the hepatic lectin in intact rats. Glycan structures responsible for the difference in binding strengths between asialo-transferrin types 2 and 3 are not known. Metabolic studies in rats showed that none of the individual asialo-transferrin types was capable of generating a signal for endocytosis at low doses (<1mug/100g body wt.) and, consequently, most of the injected protein was recoverable with the plasma and the liver 35min after injection. However, endocytosis and catabolism of each asialo-transferrin type was readily induced by injecting a larger dose (50-250mug/100g body wt.) of unlabelled asialo-transferrin of the same type or of a different type a short interval after the labelled dose. These findings support the view that the dose-dependent uptake of human asialo-transferrin by the hepatocyte, as established in an earlier study with asialo-transferrin made from whole transferrin [Regoeczi, Taylor, Hatton, Wong & Koj (1978) Biochem. J.174, 171-178], also holds for these asialo-transferrin subfractions. Furthermore, the present studies indicate that asialo-transferrins of different carbohydrate compositions are capable of synergistically promoting endocytosis of each other.

Animals↗

Bi-and tri-antennary human transferrin glycopeptides and their affinities for the hepatic lectin specific for asialo-glycoproteins.

Glycopeptides were isolated from a proteolytic digest of human transferrin. After mild acid hydrolysis the desialylated glycopeptides were labelled by the galactose oxidase/NaB(3)H(4) procedure and then fractionated by Sephadex-gel filtration or by anion-exchange chromatography. Either technique allowed separation of the two heterosaccharide chains (designated glycan I and glycan II) previously described for this protein by Spik, Vandersyppe, Fournet, Bayard, Charet, Bouquelet, Strecker & Montreuil (1974) (in Actes du Colloque Internationale No. 221 vol. 1, pp. 483-499). Subsequent chromatography on Sepharose-concanavalin A separated fractions containing different quantities of carbohydrates for each glycan, as indicated by analyses. The isolated glycan fractions were then tested for their abilities to bind to the immobilized rabbit hepatic lectin. Our studies suggest that either glycan can have a bi- or tri-antennary structure. Desialylated biantennary glycans I and II did not bind to the hepatic lectin. Desialylated triantennary glycan I was slightly retarded by the hepatic lectin, whereas the triantennary glycan II consisted of equal quantities of a retarded and a bound type. Desialylated triantennary glycan II was totally displaced from the hepatic lectin by using a buffer containing 0.05m-EDTA. The results suggest that greater structural heterogeneity exists in the carbohydrate moiety of human transferrin than was previously envisaged. Such heterogeneity could be reflected in several molecular forms of human transferrin, which, after desialylation, differ significantly in their affinities for the hepatic lectin.

Amino Acids↗

Hepatic uptake and degradation of trace doses of asialofetuin and asialoorosomucoid in the intact rat.

Asialoorosomucoid and asialofetuin were prepared by using sialidase, which was removed chromatographically before the proteins were labelled with radioactive iodine. After intravenous administration of a small amount oa asialoglycoprotein (3--4 microgram/100 g body wt.) protein-bound and non-protein radioactivities in plasmas and livers of rats were determined at intervals over a period of 30 min. Transfer of either tracer protein from plasma to liver was almost complete in 5 min. Proteolysis of asialofetuin was evident very shortly thereafter, but degradation of asialoorosomucoid commenced after a significant delay and was initially slow relative to that of asialofetuin. Studies in vitro with crude hepatic lysosomal enzyme preparations indicated that asialoorosomucoid was less readily digested than asialofetuin, and that desialylation of orosomucoid or fetuin did not noticeably increase the susceptibility of these proteins to protease action. Proteolysis of asialofetuin was also demonstrable in liver homogenates in conditions under which albumin and asialotransferrin were stable. A generalized mathematical model was devised to represent the uptake and degradation of asialoglycoproteins by the liver. The theoretical assumptions that gave the best fits with experiment are outlined and discussed.

Animals↗

Distinction between binding and endocytosis of human asialo-transferrin by the rat liver.

The ability of the rat liver to bind and endocytose human asialo-transferrin was investigated in vivo. Asialo-transferrin was separated from incompletely desialylated transferrin and neuraminidase by chromatography before being labelled with (125)I. Plasma radioactivity curves and hepatic radioactivity contents measured over a 1270-fold dose range led to the following observation. At the lowest dose (0.4mug/100g body wt.), the distribution of asialo-transferrin between plasma and liver resembled a reversible reaction reaching equilibrium in approx. 20min. After 35min, 93% of the dose was recovered with the plasma and liver as protein-bound radioactivity. Most of the asialo-transferrin associated with the liver could be displaced by asialo-orosomucoid, indicating that binding of asialo-transferrin to the galactose-specific lectin on the plasma membrane of hepatocytes was not followed by a signal for endocytosis. A range of doses, up to an average of 509.2mug of asialo-transferrin per 100g body wt., resulted in progressive increments in asialo-transferrin catabolism, as evidenced by lower dose recoveries and increased concentrations of non-protein-associated radioactivity in the liver and plasma volume. These observations indicate that binding and endocytosis of human asialo-transferrin by the rat hepatocyte are distinct phenomena. Individual asialo-transferrin molecules, although readily bound by the hepatic lectin, lack either the quantity or spacing of terminal galactose residues necessary for triggering endocytosis. Although endocytosis is induced by several asialo-transferrin molecules acting synergistically, preliminary experiments with asialo-glycopeptides and other substances have so far failed to provide further insight into the chemical basis of the signal for endocytosis.

Animals↗

Isolation and partial characterization of rabbit plasma alpha1-antitrypsin.

Alpha1-Antitrypsin was isolated from rabbit plasma by salting out with (NH4)2SO4 followed by ion-exchange chromatography either on DEAE-Sephadex or DEAE-cellulose (each at pH8.8 and 6.5), and affinity chromatography on Sepharose-Cibacron Blue and Sepharose-concanavalin A. The protein thus obtained was homogeneous during crossed immunoelectrophoresis by using an antiserum to whole rabbit plasma, but it migrated as two broad bands when electrophoresed in alkaline polyacrylamide gels. Under optimal loading conditions, two or three subcomponents could be distinguished in each band. The two major forms of rabbit alpha1-antitrypsin, designated components F and S, were separated by preparative polyacrylamide-gel electrophoresis, and some of their physico-chemical properties were established. Both forms reacted with trypsin at a molar ratio of 1:1. Their elution volumes from a Sephadex G-200 column were identical, corresponding to a mol.wt. of 58000; however, some heterogeneity was observed after sodium dodecyl sulphate/polyacrylamide-gel electrophoresis. Isoelectric focusing in polyacrylamide gel in a pH 4-6 gradient revealed a multiple-band pattern for each form in the range of pH4.4-4.9. The two forms of rabbit alpha1-antitrypsin possessed the same N-terminal amino acid (glutamic acid) and had very similar amino acid and carbohydrate compositions.

Amino Acids↗