Search PubMedSearch

Biomedical subjects

B Olgemöller

Publications and source records attributed to B Olgemöller.

10 recordsLinked to original sources

Elevated glucose decreases the content of a basement membrane associated heparan sulphate proteoglycan in proliferating cultured porcine mesangial cells.

The effect of elevated glucose concentrations on the synthesis of basement membrane components was investigated in proliferating cultured porcine mesangial cells. Basement membrane associated heparan sulphate proteoglycan was determined by enzyme immunoassay with a specific antiserum recognizing the core protein of the heparan sulphate proteoglycan. When cells were exposed to increasing glucose concentrations up to 40 mmol/l, the heparan sulphate proteoglycan content was concomitantly decreased to 53% when compared to cells cultured under normal glucose concentrations or in the presence of 40 mmol/l sorbitol. The fibronectin content was essentially unchanged under these conditions. No significant effect of insulin on these basement membrane components was found. The results indicate that hyperglycaemia may be responsible for a decrease of mesangial heparan sulphate proteoglycan content in diabetes mellitus. This supports the view that loss of heparan sulphate proteoglycan may be an important step or even an initial event of mesangial alterations in diabetic glomerulopathy.

Animals

Glomerular changes in diabetes mellitus.

Ultrastructural, immunohistochemical and biochemical studies have improved our knowledge on the events occurring during the development of diabetic late complications. Immunohistochemical investigations of diabetic kidneys, using antibodies against various components of the extracellular matrix, showed increased collagen type IV (alpha 1,alpha 2-chain) deposition in the mesangial matrix, and a decrease of heparan sulphate proteoglycan in the mesangial matrix and glomerular basement membrane. Changes in matrix components seem to be the underlying cause of the alterations in renal function, as reflected by albuminuria and proteinuria. The occurrence of collagen type III in late diffuse glomerulosclerosis has been interpreted as an irreversible change in glomerular structure. The extent of alteration of the extracellular matrix correlates to a certain extent with the severity of nephropathy of the individual subject. The studies performed to date support the hypothesis that hyperglycaemia, whatever its origin, is the primary cause of diabetic late complications, although the pathobiochemical mechanisms are not yet fully understood. Increased intra- and extracellular levels of glucose and its derivatives are thought to contribute to diabetic tissue dysfunction. Three pathobiochemical theories are favoured in the current discussion: i) the polyol pathway ii) non-enzymatic glycation of proteins iii) direct influence of hyperglycaemia on the synthesis of matrix components. The evidence for the participation of the polyol pathway in the pathogenesis of diabetic nephropathy comes mainly from animal data using aldose reductase inhibitors, but only limited data are available for humans, so that the significance of this pathomechanism cannot yet be determined.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals

High concentrations of low density lipoprotein decrease basement membrane-associated heparan sulfate proteoglycan in cultured endothelial cells.

The effect of increasing low density lipoprotein (LDL) concentrations on the synthesis of basement membrane components was investigated in proliferating porcine aortic endothelial cells (PAEC) in culture. Basement membrane-associated heparan sulfate proteoglycan (HSPG) and fibronectin were determined by enzyme immunoassay. Low extracellular LDL-levels increase, high extracellular LDL-levels decrease the HSPG content of PAEC. Fibronectin synthesis was only slightly affected while proliferation and metabolic activity as assessed by lactate production were constant. Insulin or high extracellular glucose did not influence the effect of LDL on basement membrane components.

Animals

Competitive inhibition by glucose of myo-inositol incorporation into cultured porcine aortic endothelial cells.

To explore the significance of hyperglycaemia as a causal factor for the appearance of diabetic angiopathies we investigated aspects of myo-inositol metabolism in porcine aortic endothelial cells. myo-Inositol was shown to be a long-living metabolite. Its uptake into the cells was mediated by a high-affinity, Na(+)-dependent uptake system inhibitable by ouabain with an apparent KM of 18.6 mumols/l, which was responsible for more than 80% of total uptake at physiological myo-inositol concentrations. Inhibition of inositol uptake by D-glucose was exclusively competitive with an apparent Ki of 24 mmol/l as shown by Lineweaver-Burk- and Dixon-plot analysis. The specificity of competitive inhibition was studied. L-Glucose which is stereochemically related to myo-inositol in the same way as the D-isomer proved to be an equally potent inhibitor. The hexoses D-galactose, D-mannose and D-fructose inhibited myo-inositol uptake to a minor extent. D-allose and 3-O-methyl-D-glucose had no inhibitory effect indicating that the OH-group of the carbon atom in 3 position is essential for the interaction with the carrier. The acyclic hexitol sorbitol also did not compete. As expected, the aldose reductase blocker sorbinil did not influence the carrier since there is no polyol pathway operating in porcine aortic endothelial cells. In accordance with the results of the uptake experiments, the incorporation of exogenous myo-inositol into membrane phosphatidylinositol was reduced at elevated extracellular glucose levels. The results raise the possibility that hyperglycaemia impairs endothelial inositol supply.

Aldehyde Reductase

Differential kinetics of glucose metabolism in porcine retinal and aortic endothelial cells.

Rates of glucose utilization, measured by steady state lactate production, and the rates of initial uptake of [14C]glucose were determined in cultured porcine retinal endothelial cells. The apparent Km for the steady state process proved to be lower than that determined for the uptake step (0.20 vs. 0.86 mmol/l glucose), suggesting that the carrier-mediated uptake of glucose into retinal endothelial cells cannot be the rate limiting step of overall glucose consumption. Thus, porcine retinal endothelial cells differ from porcine aortic endothelial cells, in that the aortic endothelial cell membrane acts as a barrier for the uptake of glucose into the cell. Accordingly, dexamethasone, which is known to reduce glucose uptake and degradation in aortic endothelial cells, does not influence glucose utilization in the retinal cells.

Animals

Isolation, characterization and immunological determination of basement membrane-associated heparan sulfate proteoglycan.

Basement membrane-associated heparan sulfate proteoglycan (HSPG) was extracted from isolated porcine glomerular basement membranes and purified by ion-exchange chromatography. The proteogycan was characterized by specific enzymatic digestions, by amino-acid analysis, by SDS-polyacrylamide gel electrophoresis and by density gradient centrifugation. Polyclonal antibodies were raised against the purified HSPG in rabbits. Antibodies were characterized by enzyme immunoassays, immunoprecipitation and immunohistological methods. They were shown to recognize specifically the core protein of HSPG from porcine, human and rat glomerular basement membrane but did not recognize HSPG from guinea pig or rabbit kidney. The affinity-purified antibodies did not cross-react with other basement membrane proteins like laminin, fibronectin or collagen type IV nor with chondroitin sulfate-rich or keratan sulfate-rich proteoglycans from human or bovine tissue. Using these antibodies an enzyme immunoassay was developed for determination of HSPG in the range of 1-100 ng/ml. Studies with cultured porcine endothelial cells showed that subendothelial basement membrane-associated HSPG may be determined with the enzyme immunoassay.

Amino Acids

Characterization and localization of basement membrane-associated heparan sulfate proteoglycan in human tissues.

A polyclonal antiserum was raised in rabbits against basement membrane heparan sulfate proteoglycan (HSPG) purified from extracts of isolated porcine glomeruli. The antiserum was characterized by enzyme immunoassay, immunoprecipitation, and immunohistological methods. It was shown to recognize specifically the core protein of HSPG from porcine, rat, bovine, and human glomerular basement membrane, but it did not bind to HSPG from guinea pig or rabbit kidney. The affinity-purified antiserum did not cross-react with other basement membrane proteins like laminin, fibronectin, or collagen type IV. Immunohistochemical studies on tissue sections from several human organs revealed specific basement membrane staining, although the intensity of the reaction differed among the organs tested. Whereas glomerular and other capillary basement membranes showed prominent staining with antibody to the core protein of the proteoglycan, those from nerve, skeletal, cardiac, and smooth muscle reacted only weakly. Adipocytes and liver sinusoid walls were not stained. Independent of the extent of HSPG staining the basement membranes of all different tissues tested reacted strongly with an antiserum against type IV collagen.

Antibody Specificity

Limited nonenzymatic glucosylation of low-density lipoprotein does not alter its catabolism in tissue culture.

This study examines the effects of various degrees of chemical modification of low-density lipoprotein (LDL) on its catabolism by various cell types. Moderate glucosylation of LDL does not alter its interaction with the high-affinity receptor present on human fibroblasts at concentration of 5-2000 micrograms LDL-cholesterol/ml. Only heavily glucosylated LDL (more than 12 lysine residues glucosylated per apolipoprotein B) or LDL glucosylated in the presence of Na(CN)BH3, i.e., conditions not expected to occur in diabetes, inhibit receptor-mediated internalisation and degradation. Moderately glucosylated LDL is also readily recognized by cultured rat hepatocytes and porcine endothelial cells. Human monocyte-derived macrophages accumulate cholesteryl ester when incubated with acetylated LDL for 12 days but no enhanced cholesteryl ester formation was found when native or glucosylated LDL (3.3 lysines glucosylated per apolipoprotein B) were used.

Acetylation

Endothelial plasma membrane is a glucocorticoid-regulated barrier for the uptake of glucose into the cell.

The effect of glucose concentrations and hormones on glucose consumption, lactate, pyruvate, sorbitol and fructose formation of porcine aortic endothelial cells and human umbilical vein endothelial cells has been investigated. Endothelial cells have a high glycolytic activity which is saturated far below physiologic blood glucose levels (KM apparent less than 1 mmol/l). Glucocorticoids reduce glucose catabolism as a function of their concentration. Insulin, adrenaline, triiodothyronine and glucagon do not influence glucose consumption. Studies with the non-metabolizable analogue 3-O-methyl-D-glucose revealed that glucocorticoids slow down glucose transport into the endothelial cell. The passage of glucose through the cell membrane is the rate-limiting step of glucose utilization. Consequently, the intracellular glucose level is independent of the ambient glucose concentration and endothelial cells do not accumulate sorbitol under hyperglycaemic conditions since the affinity of aldose reductase for glucose is low.

3-O-Methylglucose

Different effects of reductive and nonreductive glucosylation on LDL-catabolism.

The effects of various degrees of reductive and nonreductive glucosylation of low density lipoprotein on its catabolism by human fibroblasts have been examined. Moderate glucosylation of LDL does not alter its interaction with the high affinity receptor at concentrations of 5-2000 micrograms LDL-cholesterol/ml. Only heavy glucosylation of LDL (more than 12 lysine residues glucosylated per apo B), i.e. conditions not expected to occur in diabetes, slows receptor-mediated internalisation and degradation. In contrast, impairment of LDL-catabolism has been found at even low degrees of reductive glucosylation. The possible reasons for the different properties of reductively and nonreductively glucosylated LDL are discussed.

Fibroblasts