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Biomedical subjects

J Ostman

Publications and source records attributed to J Ostman.

At least 109 records · Page 6Linked to original sources

Effect of glucose on beta-adrenergic induced downregulation of insulin receptor binding in human fat cells.

The effect of beta-adrenergic stimulation on specific insulin binding to isolated human fat cells was investigated at 24 degrees C and 37 degrees C. In the absence of glucose isoprenaline caused a 40% decrease in high affinity insulin binding at both temperatures. At 37 degrees C the reduction in binding was completely offset by the addition of glucose to the medium. A maximum effect of glucose occurred at 5 mmol/l. At 24 degrees C, however, there was no effect of glucose on insulin binding. The effects of glucose and isoprenaline on insulin binding were not related to the lipolytic activities these two agents. In conclusion, low amounts of glucose prevent catecholamine induced down-regulation of insulin receptor binding in human fat cells at physiological temperature.

Adipose Tissue↗

Short-term effects of felodipine, a new dihydropyridine, in hypertension.

Felodipine, a dihydropyridine, is a new vasodilating calcium antagonist which lowers blood pressure (BP) by selective action on vascular smooth muscle, especially in the resistance vessels. The effects on BP, heart rate (HR) and tolerance of different single oral doses of felodipine were studied in two series of hypertensive patients. When felodipine was given as single drug to 14 previously untreated hypertensives in a single-blind manner, BP was rapidly reduced by about 15% while HR increased by 25%. Felodipine given in a double-blind manner to eight patients on chronic beta-adrenoceptor blockade reduced BP by some 15-20% compared to placebo, while HR did not change. There was a significant correlation between the pre-treatment mean arterial BP (MAP) and the maximal relative change in MAP, i.e. the higher the initial BP the greater the reduction after felodipine. A significant correlation was also found between the plasma concentration of felodipine and the relative change in MAP. Felodipine was generally well tolerated. When given alone felodipine caused the side effects expected from a pure vasodilator, i.e. headache, flushing and palpitations. When given together with a beta-adrenoceptor blocker, the side effects were much less apparent.

Adult↗

Influence of fasting on lipolytic response to adrenergic agonists and on adrenergic receptors in subcutaneous adipocytes.

The influence of 1 week's total fasting on the lipolytic effect of adrenergic agonists and on the binding of adrenergic antagonists was examined in isolated adipocytes of subcutaneous specimens removed from the hypogastric and the femoral sites in seventeen obese women. In the femoral adipocytes the lipolytic sensitivity to isopropyl noradrenaline decreased 30-fold (P less than 0.01) during fasting. The specific binding of the radioligands (-)-[3H]-dihydroalprenolol and (-)-[125I]-cyanopindolol decreased significantly during fasting, essentially owing to a reduction in the receptor density. In adipocytes from the hypogastric region no such changes were found. For both tissue regions fasting induced a right-ward shift in the dose-response curve for the inhibitory effect of the alpha 2 agonist, clonidine, on theophylline-induced lipolysis, corresponding to a 10-fold decrease in sensitivity. There was also a significant decrease of about 20% in the alpha 2-adrenoceptor density, as estimated with the radioligand [3H]-yohimbine. The results suggest that the regulation of the lipid mobilization in man by the sympathetic nervous system during fasting occurs not only through an increase in the level of circulating noradrenaline but also through changes in the adrenergic receptor density of the adipocytes.

Adipose Tissue↗

Influence of obesity on the antilipolytic effect of insulin in isolated human fat cells obtained before and after glucose ingestion.

The antilipolytic effect of insulin was studied in 9 obese and 10 age- and sex-matched subjects of normal weight. Isolated fat cells were taken before and 1 h after an 100 g oral glucose load. Insulin inhibition of basal and isoprenaline-induced rates of lipolysis were determined by using a sensitive bioluminescent glycerol assay. When compared with the controls, the obese group showed a lower glucose tolerance, a higher insulin secretion, and a lower specific insulin receptor binding per adipocyte surface area, which would suggest an insulin-resistant state. Before oral glucose, however, the sensitivity of the antilipolytic effect of insulin was enhanced 10-fold in obesity (P less than 0.01), but the maximum antilipolytic effect was not altered. Glucose ingestion induced a 10-25-fold increase in insulin sensitivity (P less than 0.01) and a 10% but not significant increase in specific adipocyte insulin receptor binding in the nonobese group. In the obese group, however, neither the insulin binding nor the antilipolytic effect of the hormone was increased by oral glucose. After oral glucose, insulin sensitivity was similar in the two groups. The concentration of the hormone which produced a half maximum effect was about 1 microU/ml. Similar results were obtained with insulin inhibition of basal and isoprenaline-stimulated glycerol release. It is concluded that, after an overnight fast, the sensitivity of the antilipolytic effect of insulin is markedly enhanced in adipocytes of "insulin-glucose resistant" obese subjects, presumably because of alterations at postreceptor levels of insulin action. In obesity, the antilipolytic effect of insulin seems normal after glucose ingestion. Furthermore, in adipocytes of subjects of normal weight, oral glucose rapidly stimulates the sensitivity of the antilipolytic effect of insulin, apparently because of changes at postreceptor sites. This short-term regulation of insulin action following the ingestion of glucose does not seem to be present in obesity.

Adipose Tissue↗

Turnover and splanchnic metabolism of free fatty acids and ketones in insulin-dependent diabetics at rest and in response to exercise.

Nine insulin-dependent diabetics and six healthy controls were studied at rest, during, and after 60 min of bicycle exercise at a work load corresponding to 45% of their maximal oxygen intake. The catheter technique was employed to determine splanchnic and leg exchange of metabolites. FFA turnover and regional exchange was evaluated using [14C]oleate infusion. Basal glucose (13.8 +/- 1.1 mmol/l), ketone body (1.12 +/- 0.12 mmol/l), and FFA (967 +/- 110 mumol/l) concentrations were elevated in the diabetics in comparison with controls. In the resting state, splanchnic ketone acid production in the diabetics was 6-10-fold greater than in controls. Uptake of oleic acid by the splanchnic bed was increased 2-3-fold, and the proportion of splanchnic FFA uptake converted to ketones (61%) was threefold greater than in controls. In contrast, splanchnic fractional extraction of oleic acid was identical in diabetics and controls. A direct relationship was observed between splanchnic uptake and splanchnic inflow (plasma concentration X hepatic plasma flow) of oleic acid that could be described by the same regression line in the diabetic and control groups. During exercise, splanchnic ketone production rose in both groups. In the control group the increase in ketogenesis was associated with a rise in splanchnic inflow and in uptake of oleic acid, a rise in splanchnic fractional extraction of oleate, and an increase in the proportion of splanchnic FFA uptake converted to ketone acids from 20-40%. In the diabetic group, the increase in ketogenesis occurred in the absence of a rise in splanchnic inflow or uptake of oleic acid, but was associated with an increase in splanchnic fractional extraction of oleic acid and a marked increase in hepatic conversion of FFA to ketones, so that the entire uptake of FFA was accountable as ketone acid output. Splanchnic uptake of oleic acid correlated directly with splanchnic oleic acid inflow in both groups, but the slope of the regression line was steeper than in the resting state. Plasma glucagon levels were higher in the diabetic group at rest and during exercise, while plasma norepinephrine showed a twofold greater increment in response to exercise in the diabetic group (to 1,400-1,500 pg/ml). A net uptake of ketone acids by the leg was observed during exercise but could account for less than 5% of leg oxidative metabolism in the diabetics and less than 1% in controls. Despite the increase in ketogenesis during exercise, a rise in arterial ketone acid levels was not observed in the diabetics until postexercise recovery, during which sustained increments to values of 1.8-1.9 mmol/l and sustained increases in splanchnic ketone production were observed at 30-60 min. The largest increment in blood ketone acids and in splanchnic ketone production above values observed in controls thus occurred in the diabetics after 60 min of recovery from exercise. We concluded that: (a) In the resting state, increased ketogenesis in the diabetic is a consequence of augmented splanchnic inflow of FFA and increased intrahepatic conversion of FFA to ketones, but does not depend on augmented fractional extraction of circulating FFA by the splanchnic bed. (b) Exercise-induced increases in ketogenesis in normal subjects are due to augmented splanchnic inflow and fractional extraction of FFA as well as increased intrahepatic conversion of FFA to ketones. (c) When exercise and diabetes are combined, ketogenesis increases further despite the absence of a rise in splanchnic inflow of FFA. An increase in splanchnic fractional extraction of FFA and a marked increase intrahepatic conversion of FFA to ketones accounts for the exaggerated ketogenic response to exercise in the diabetic. (d) Elevated levels of plasma glucagon and/or norepinephrine may account for the increased hepatic ketogenic response to exercise in the diabetic. (e) Ketone utilization by muscle increases during exercise but constitutes a quantitatively minor oxidative fuel for muscle even in the diabetic. (f) The accelerated ketogenesis during exercise in the diabetic continues unabated during the recovery period, resulting in an exaggerated postexercise ketosis.

Adult↗

Influence of thyroid hormone level on insulin action in human adipose tissue.

The relationship between the levels of circulating thyroid hormones and the action of insulin on adipose tissue was investigated in 6 hypothyroid patients and 6 hyperthyroid patients, all untreated, and 8 healthy control subjects. All were matched for age, body weight, and fat cell size. Gluteal s.c. adipose tissue was used. The insulin receptor number in isolated adipocytes was increased by 70% in hypothyroidism and decreased by 40% in hyperthyroidism. The sensitivities of the effects of insulin on lipolysis and glucose oxidation were increased fourfold in hypothyroidism and decreased fivefold in hyperthyroidism. The maximum insulin-induced glucose oxidation (insulin responsiveness) was inhibited by 60% in hypothyroidism and enhanced by 180% in hyperthyroidism. The thyroid hormone concentration was significantly correlated with insulin receptor number (r = -0.72), insulin responsiveness (r = 0.71), and insulin sensitivity (r = -0.75). It is suggested that thyroid hormones regulate the effect of insulin on adipose tissue, which occurs at the receptor and postreceptor levels of insulin action.

Adipose Tissue↗

Influence of physical training on formation of muscle capillaries in type I diabetes.

The effects of physical training on skeletal muscle morphology and enzyme activities were compared in 10 male, type I diabetic subjects and 10 healthy, male, control subjects. The training program consisted of running for 45 min, three times per week for 8 wk. Muscle biopsies were obtained before and after the training period from the lateral portion of the gastrocnemius muscle. Pretraining maximal oxygen uptake was similar in the two groups (diabetic subjects 42 +/- 1 versus control subjects 43 +/- 2 ml X kg-1 X min-1), and the training resulted in an identical increase (+ 13%, P less than 0.01). Muscle capillarization (number of capillaries per muscle fiber) increased on the average in the control group (+ 14 +/- 4%, P less than 0.01), but was unchanged in the diabetic group (0 +/- 4%). Capillary density, expressed as number of capillaries per unit muscle cross sectional area, also increased on the average in controls (8 +/- 4%, P less than 0.05) but failed to do so in the diabetic patients (-8 +/- 6%, NS). The activities of the mitochondrial enzymes citrate synthase (+ 26-27%, P less than 0.01-0.05) and succinate dehydrogenase (+ 24-25%, P less than 0.05) increased significantly and similarly in the two groups, whereas training did not result in significant changes in the activities of the glycolytic enzymes 6-phosphofructokinase and glyceraldehyde-phosphate dehydrogenase. Glycemic control in the diabetic group did not improve with the training, as evaluated from hemoglobin A1 and home-monitored blood glucose.(ABSTRACT TRUNCATED AT 250 WORDS)

Adult↗

Deterioration in glucose metabolism in pancreatic transplant recipients after conversion from azathioprine to cyclosporine.

Six recipients of combined pancreas and kidney transplants displayed a deterioration in glucose tolerance when the immunosuppressive therapy was changed from azathioprine-prednisolone to cyclosporine-prednisolone. Because at the same time the plasma C-peptide level increased it seems that insulin resistance, rather than reduced insulin secretion, caused the impairment in glucose tolerance. The condition was found to be reversible.

Adult↗

Glucose stimulation of the antilipolytic effect of insulin in humans.

Dose-response studies of the inhibition of lipolysis by insulin in isolated human adipocytes were conducted with the use of a sensitive bioluminescent assay of glycerol release. The addition of glucose to the incubation medium was associated with an increase in insulin sensitivity and an increase in the maximum insulin effect. The results suggest that glucose plays an important role in regulating the antilipolytic action of insulin in humans.

Adipose Tissue↗

Effect of nicotinic acid on acylglycerol metabolism in human adipose tissue.

1. The effect of nicotinic acid on the metabolism of acylglycerols was investigated in human adipose tissue incubated with [U-14C]-glucose. 2. Nicotinic acid caused a 25% inhibition of the conversion of [U-14C]glucose into total lipids of adipose tissue, which was solely attributed to a decrease in the formation of the glyceride-glycerol moiety of triacylglycerols. There was no effect on the conversion of [U-14C]glucose to carbon dioxide by nicotinic acid. The drug inhibited the rate of glycerol release by 50% and significantly reduced the tissue level of diacylglycerols but did not alter the tissue concentration of monoacylglycerols. 3. It is concluded that in human adipose tissue nicotinic acid inhibits both the synthesis and hydrolysis of triacylglycerols and influences the metabolism of diacylglycerols.

Adipose Tissue↗

Determination of adrenoceptors of the alpha 2-subtype on isolated human fat cells.

Binding state for the selective alpha 2-adrenergic antagonist (3H)-yohimbine on isolated intact human subcutaneous abdominal fat cells is described in the present study. Specific binding was rapid, reversible, saturable and stereospecific. Adrenergic antagonists competed with (3H)-yohimbine binding in the order indicative of alpha-receptors. Competition studies with adrenergic antagonists revealed that (3H)-yohimbine binding sites displayed properties consistent with those of alpha 2-subtype. Saturation experiments demonstrated that (3H)-yohimbine specific binding was of high affinity with a dissociation constant (Kd) of 3.7 +/- 0.4 nmol/l and a maximum occupancy (BO) of 10.5 +/- 2.1 pmol/10(7) cells. The latter corresponded to approximately 600,000 alpha 2-receptors/fat cell. A significant (P less than 0.002) linear relationship was found between the fat cell volume and BO. A complete saturation experiment for the determination of Kd and BO could be performed using 0.5 g adipose tissue (0.5 ml isolated fat cells), which is 30 times less required when adipocyte membranes are used for these studies. It is concluded that the method can be used for the study of alpha 2-receptor properties and regulation in subcutaneous adipose tissue in a given individual.

Adipose Tissue↗

Residual C-peptide production in type I diabetes mellitus. A comparison of different methods of assessment and influence on glucose control.

The aims of the present study were to compare various methods for assessment of residual insulin production and to evaluate its role in the metabolic regulation in insulin-dependent, type I diabetes mellitus. Glycosylated hemoglobin (HbA1) was used as a measure of the long-term glycemic control. Twenty-eight patients with type I diabetes mellitus with onset before the age of 30 and with a duration of less than 6 years were studied. C-peptide in plasma in the fasting state, after glucagon stimulation, and the 24-hour urinary excretion were measured. Fasting plasma C-peptide was detected in 61%, and 39% showed a significant rise after glucagon stimulation. The increment correlated negatively with HbA1 (rs = -0.57, p less than 0.001), as did the 24-hour urinary excretion (rs = -0.61, p less than 0.001). The 16 patients with urinary C-peptide values of at least 1 nmol had a mean HbA1 of 8.9 +/- 0.3%, as opposed to 11.6 +/- 0.5% for those excreting less (p less than 0.001). Measurement of the 24-hour urinary excretion of C-peptide provides a reliable method for evaluating residual insulin secretion.

Adult↗

Marked increase in insulin sensitivity of human fat cells 1 hour after glucose ingestion.

The effect of glucose ingestion on insulin action was investigated in isolated human fat cells. Subcutaneous adipose tissue was obtained from eight normal adult volunteers before and 1 h after oral intake of 100 g of glucose. Lipolysis (glycerol release) and specific insulin receptor binding were determined. Insulin binding increased significantly by 20-30% after glucose ingestion. This was due to an increase in insulin binding affinity, without any change in the receptor number. The concentration of insulin producing half-maximum inhibition (ED(50)) of basal lipolysis was 50 muU/ml before and 0.25 muU/ml after glucose ingestion (P < 0.01), which represented a 200-fold difference. As regards isoprenaline-induced lipolysis, the ED(50) for insulin inhibition was 30 muU/ml before and 2.5 muU/ml after oral glucose (P < 0.01), which was a 12-fold difference. The maximum insulin-induced inhibition of basal and isoprenaline-induced lipolysis were not altered after oral glucose. It is concluded that glucose ingestion is accompanied by a marked increase in insulin sensitivity of human fat cells and this may be an important modulating factor in the overall scheme of insulin action.

Adipose Tissue↗