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Biomedical subjects

A Wasteson

Publications and source records attributed to A Wasteson.

At least 73 records · Page 4Linked to original sources

A comparative study of glycosaminoglycans in cultures of human, normal and malignant glial cells.

The glycosaminoglycans (GAG) of human cultured normal glial and malignant glioma cell lines were studied using 35S-sulphate or 3H-glucosamine as markers. 35S-labelled GAG were assayed by precipitation with cetylpyridinium chloride; 3H-labelled sulphated GAG and 3H-labelled hyaluronic acid were quantitated after separation on a DEAE-cellulos column. The net production of GAG and the distribution, composition and turnover of GAG were similar in all of the normal cell lines tested, but showed a great variability in the malignant cell lines. Most of the glioma cell lines produced more hyaluronic acid and less sulphated GAG than the normal cell lines, but exceptions were noted. The GAG of the trypsin susceptible (pericellular pool of normal glial cells consisted mainly of heparan sulphate with only minor amounts of other GAG. The analogous material of most glioma cells showed hyaluronic acid as the major GAG. Material liberated by trypsin from EDTA-detached cells (membrane fraction) was enriched in heparan sulphate as compared to the entire pericellular pool. Substrate attached material (SAM) left with the plastic dish after EDTA treatment of normal cultures was rich in heparan sulphate, whereas SAM of glioma cells lacked heparan sulphate or showed greatly reduced amounts of this component. Release of newly synthesized GAG to the extracellular medium was a rapid process in the normal cells but was more or less delayed in the glioma cells. The extracellular medium of the malignant glioma cultures was consistently poor in dermatan sulphate, as compared to that of normal cultures.

Cell Adhesion↗

Platelet-derived growth factor: purification and partial characterization.

A cationic protein that stimulates DNA synthesis in human cultured cells was isolated from human platelets by ion exchange chromatography, hydrophobic chromatography, gel chromatography, and gel electrophoresis in sodium dodecyl sulfate. The electrophoretic behavior of biologically active or radioiodinated and reduced growth factor indicated that the native protein (approximately 30,000 daltons) was composed of two different polypeptides (approximately 13,000-14,000 and 16,000-17,000 daltons, respectively) linked via reduction-susceptible bonds. The stimulatory activity on human glial cells of the purified product at a concentration of approximately 4 ng/ml (0.13 nM) was equal to that of 1% human serum.

Blood Platelets↗

Composition and distribution of glycosaminoglycans in cultures of human normal and malignant glial cells.

The glycosaminoglycans of human cultured normal glial and malignant glioma cells were studied. [35S]Sulphate or [3H]glucosamine added to the culture medium was incorporated into glycosaminoglycans; labelled glycosaminoglycans were isolated by DEAE-cellulose chromatography or gel chromatography. A simple procedure was developed for measurement of individual sulphated glycosaminoglycans in cell-culture fluids. In normal cultures the glycosaminoglycans of the pericellular pool (trypsin-susceptible material), the membrane fraction (trypsin-susceptible material of EDTA-detached cells) and the substrate-attached material consisted mainly of heparan sulphate. The intra- and extra-cellular pools showed a predominance of dermatan sulphate. The net production of hyaluronic acid was low. The accumulation of 35S-labelled glycosaminoglycans in the extracellular pool was essentially linear with time up to 72h. The malignant glioma cells differed in most aspects tested. The total production of glycosaminoglycans was much greater owing to a high production of hyaluronic acid and hyaluronic acid was the major cell-surface-associated glycosaminoglycan in these cultures. Among the sulphated glycosaminoglycans chondroitin sulphate, rather than heparan sulphate, was the predominant species of the pericellular pool. This was also true for the membrane fraction and substrate-attached material. Furthermore, the accumulation of extracellular 35S-labelled glycosaminoglycans was initially delayed for several hours and did not become linear with time until after 24 h of incubation. The glioma cells produced little dermatan sulphate and the dermatan sulphate chains differed from those of normal cultures with respect to the distribution of iduronic acid residues. The observed differences between normal glial and malignant glioma cells were not dependent on cell density; rather they were due to the malignant transformation itself.

Cells, Cultured↗

Biosynthesis of chondroitin sulphate in cartilage regenerated from perichondrium.

In a rabbit's ear cartilage an experimental defect was lined with a perichondrial flap and in a rabbit's trachea a defect in two tracheal cartilages was reconstructed with a free autogenous graft of aural perichondrium. Outgrowth of new tissue, morphologically indistinguishable from cartilage was observed within 4 weeks. In cartilage defects not bridged by perichondrium, no regeneration of cartilage occurred. Inorganic 35SO4, administered in vivo, was incorporated into the newly formed tissue. The labelled product was isolated and identified as chondroitin sulphate. The results support the view that authentic cartilage may be regenerated from the perichondrium.

Animals↗

Biosynthesis of heparin. Solubilization and partial characterization of N- and O-sulphotransferases.

Assay methods were developed enabling separate determination of N- and O-sulphotransferase activities in an enzyme preparation from mouse mastocytoma. N-Desulphoheparin and chemically N-acetylated heparan sulphate were used as specific exogenous sulphate acceptors in the transfer of [35S]sulphate residues from adenosine 3'-phosphate 5'-[35S]sulphatophosphate to amino and hydroxyl groups respectively. The resulting 35S-labelled polysaccharides were isolated as their cetylpyridinium complexes on filter paper. Sulphotransferases were solubilized from a mastocytoma microsomal fraction by treatment with detergent-alkali. The pH optimum for both enzymes was about 7.5 Km with regard to adenosine 3'-phosphate 5'-sulphatophosphate was estimated to be 2 X 10(-5) M for the N-sulphotransferase and 1 X 10(-4) M for the O-sulphotransferase(s). The enzymes required bivalent cations for maximum activity, Mn2+ stimulating both the N- and O-sulphotransferase four- to five-fold, whereas Ca2+ increased the N- but not the O-sulphotransferase activity. The O-sulphotransferase was found to be more sensitive to heat-inactivation, 60% of the activity being lost after 1 min at 50 degrees C, whereas only 15% of the N-sulphotransferase activity was lost. In contrast, the N-sulphotransferase was selectively inhibited (or inactivated) by NaCl; at 0.125 M-NaCl concentration the O-sulphotransferase activity was essentially unaffected, whereas the N-sulphotransferase activity was depressed by 80%. These results strongly indicate that N- and O-sulphate-transfer reactions should be ascribed to different enzymes, or, alternatively, to separate and independent active sites on the same enzyme molecule.

Cations, Divalent↗