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P Hovingh

Publications and source records attributed to P Hovingh.

4 recordsLinked to original sources

Topography of proteoglycan and glycosaminoglycan free chain expression in 3T3 fibroblasts and human keratinocytes.

Synthesis of heparan sulfate-free chains by human keratinocytes is upregulated during terminal differentiation. The cellular location of this product class and the significance of the differentiation effect are unknown. Differential plasma membrane shearing with cationized colloidal silica was used to evaluate the compartmentalization of the heparan and chondroitin sulfate free chains and their respective proteoglycans in 3T3 fibroblasts and human keratinocytes. The method exploits the topologic segregation of plasma membranes of adherent cells into ventral, dorsal, and intracellular domains and the selective binding of the silica to the dorsal membranes, which by shearing can be separated from ventral membranes adherent to the substratum. Analysis of membrane preparations from sheared cells that had been prelabeled with [35S]-sulfate revealed the proteoglycans to be predominantly ventral, at which location a matrix binding function could be accommodated. Proteoglycans were also recovered from dorsal and intracellular membranes, suggesting active trafficking between intra- and extra-cellular sites. In contrast, the major fraction of heparan and chondroitin sulfate free chains was either cytosolic or associated with intracellular membranes, with the remaining approximately 20% segregated to dorsal and ventral membranes. These results suggest different cellular functions for the proteoglycans and glycosaminoglycan free chains. The partial localization of the free chains to peripheral membranes is compatible with our prior hypothesis that they arise by processing of precursor proteoglycans on cell surfaces. Following this origin, the free glycosaminoglycan polymers could be available to bind ligands such as cytokines prior to transport to intracellular sites of action.

3T3 Cells

Specificity of flavobacterial glycuronidases acting on disaccharides derived from glycosaminoglycans.

The specificity of the unusual flavobacterial glycuronidases that act on disaccharides containing delta4,5-unsaturated uronic acids was reinvestigated. The results show that the enzyme that hydrolyses the uronidic bond in disaccharides from hyaluronic acid and the chondroitin sulphates appears to be mainly specific for beta-D-(1 leads to 3)-derived linkages. The enzyme that hydrolyses the uronidic bond in a variety of disaccharides obtained from heparan sulphate and heparin appears to be specific for beta-D-(1 leads to 4)- and alpha-L-(1 leads to 4)- derived linkages. Thus the glycuronidases seem to be specific for linkage position rather than anomeric configuration, as had been thought previously. In addition, the data confirm other evidence that the major glucuronidic linkages in heparan sulphate and heparin have the beta-D-configuration, and the iduronidic linkages the alpha-L-configuration.

Chondroitin Sulfates

Structural studies of heparitin sulfates.

Heparitin sulfate fractions with a large range in sulfate content were subjected to degradation by Flavobacterium heparinase and by nitrous acid. The products obtained were fractionated by chromatography, characterized, and used to arrive at tentative structures for these complex polysaccharides. The heparitin sulfate chains examined appear to be composed of: 1. uninterrupted blocks of N-acetylglucosamine containing disaccharides; 2. larger blocks with a molecular weight range of 5000 to 6000 which include the N-acetyl block but do not contain heparinase sensitive linkages; 3. segments containing mainly areas where N-acetyl, N-sulfate and some disulfated units alternate in the chain. The size and arrangement of these polymer segments seem to vary with the sulfate content of a particular heparitin sulfate. For instance, the polysaccharides with the highest degree of sulfation do not appear to contain N-acetyl blocks of significant size.

Acetates