PubMed Health⌕ Search

Biomedical subjects

J Bolinder

Publications and source records attributed to J Bolinder.

At least 127 records · Page 7Linked to original sources

Insulin action in human adipose tissue in acromegaly.

The mechanisms underlying insulin resistance in acromegaly were investigated. Adipose tissue was obtained from nine patients with acromegaly who had in vivo insulin resistance and from 14 matched healthy control subjects. Receptor binding and the antilipolytic effect of insulin were determined in isolated fat cells. Insulin-induced glucose oxidation at a physiological hexose concentration was investigated in fat segments. In fat cells obtained from acromegaly patients after an overnight fast, insulin binding at low hormone concentrations was significantly reduced by 20-30%, insulin-induced antilipolysis was unchanged, but glucose oxidation was unresponsive to insulin. Since it has recently been observed that glucose feeding may rapidly modify insulin action in human adipocytes, fat cells were also obtained 60 min after an 100-g oral glucose load. In this situation, insulin binding at low hormone concentrations was further reduced to one-half of that in the control group, and the sensitivity of insulin-induced antilipolysis was markedly decreased in acromegaly. It is concluded that, in the fasting state, the action of insulin on glucose utilization but not on lipolysis is impaired in adipose tissue of acromegalic patients because of a postreceptor defect. After glucose ingestion, the resistance to insulin in acromegaly is further enhanced and antilipolysis is also impaired. Altered coupling between receptor and effector alone or in combination with an additional decrease in receptor binding may explain the enhancement of insulin resistance. These mechanisms may be essential factors in the pathogenesis of insulin resistance in acromegaly.

Acromegaly↗

Effects of obesity, hyperinsulinemia, and glucose intolerance on insulin action in adipose tissue of sixty-year-old men.

The relative effects of obesity alone, and in combination with fasting hyperinsulinemia and glucose intolerance, on the peripheral action of insulin in adipose tissue were investigated in twenty-four 60-yr-old men, who had been followed for 10 yr. They were divided into four groups of six subjects each on the basis of the following criteria: (1) normal body weight, normal fasting insulin level, and normal glucose tolerance; (2) moderate obesity, normal fasting insulin level, and normal glucose tolerance; (3) moderate obesity, fasting hyperinsulinemia, and normal glucose tolerance; and (4) moderate obesity, fasting hyperinsulinemia, and newly developed, moderate, untreated fasting hyperglycemia and/or glucose intolerance (i.e., mild type II diabetes mellitus). Specific adipocyte insulin binding and the effects of the hormone on adipose tissue lipolysis and glucose oxidation were determined. Insulin receptor binding per cell and per cell surface area were similar in all four groups. Regarding antilipolysis, the insulin sensitivity was the same in all groups and the maximum effect was significantly increased in the three obese groups, as compared with the normal-weight control group. In groups 1-3, insulin stimulated adipose tissue glucose oxidation in a dose-dependent way, and the sensitivity and responsiveness to insulin were comparable. In contrast, in the obese glucose-intolerant subjects (4) there was no significant effect of insulin on glucose oxidation when the hormone was added in increasing concentrations of less than or equal to 35 nmol/L. The basal glucose oxidation was similar in all four study groups. The in vivo insulin tolerance was gradually reduced in groups 2-4, as compared with the normal-weight control group.(ABSTRACT TRUNCATED AT 250 WORDS)

Adipose Tissue↗

Effect of fasting on insulin receptor binding and insulin action in different human subcutaneous fat depots.

The possible existence of regional variations in fasting-mediated changes on insulin action an human adipose tissue was investigated in vitro. Subcutaneous adipose tissue was obtained from the femoral, abdominal, and gluteal areas of obese but otherwise normal subjects (16 women and 7 men) before and after 7 days of total fasting. Specific insulin receptor binding to isolated fat cells was similar in femoral and abdominal adipose tissues before and after fasting. However, the latter condition was associated with a significant increase in insulin receptor binding at low hormone concentrations (less than 2 nmol/liter) in gluteal adipocytes. Insulin stimulated glucose oxidation in a dose-dependent way in all 3 adipose regions before fasting. In the femoral and gluteal sites after fasting, the maximum insulin effect was significantly decreased, but a dose-dependent insulin effect was still present, and there was no change in insulin sensitivity. However, abdominal adipose tissue after fasting was completely unresponsive to insulin stimulation when the hormone was added in increasing concentrations up to 80 nmol/liter. The results in fasting women were similar to those in the whole study group. In conclusion, there appear to be marked regional variations in fasting-mediated changes in insulin action on glucose metabolism in human adipose tissue. Alterations at the postreceptor level which lead to insulin resistance appear to be of greater importance than the counteracting receptor changes.

Adipose Tissue↗

Reversal of insulin resistance in adipose tissue of non-insulin-dependent diabetics by treatment with diet and sulphonylurea.

The effect of conventional treatment on insulin action in subcutaneous adipose tissue was studied in 6 patients with non-insulin-dependent diabetes mellitus (NIDDM). Insulin receptor binding and the effect of the hormone on glucose oxidation were determined before and after 6-14 months of treatment with diet plus sulphonylurea. Glycaemic control and in vivo insulin sensitivity were significantly improved by the treatment. Before treatment, the adipocyte insulin receptor binding and the sensitivity to insulin stimulation of adipose tissue glucose oxidation were normal and did not change after treatment. In contrast, the maximum insulin-induced glucose oxidation was markedly decreased before treatment, whereas it was totally normalized after treatment. The conclusion is that insulin resistance in adipose tissue of NIDDM subjects is solely due to post-receptor defects in insulin action. This resistance is completely off-set by conventional treatment with diet plus sulphonylurea.

Adipose Tissue↗

Influence of fasting and refeeding on the antilipolytic effect of insulin in human fat cells obtained from obese subjects.

The antilipolytic effect of insulin was investigated in obese subjects before and after 7 days of total fasting, and 1 h after oral refeeding with 100 g glucose. Isolated fat cells were prepared from subcutaneous gluteal adipose tissue and incubated in vitro. Specific insulin receptor binding and insulin inhibition of basal and isoprenaline-stimulated lipolysis were determined. During the fasting period, a 15% increase (P less than 0.05) in high-affinity insulin binding and a concomitant 3-4-fold increase in insulin sensitivity were noted, and there was a marked enhancement of the maximum insulin-induced inhibition of basal lipolysis, from 4 to 10 mumol of glycerol/10(7) cells/2 h. The maximum insulin-induced inhibition of isoprenaline-induced lipolysis was similar before and after fasting, about 10 mumol/10(7) cells/2 h. Glucose refeeding induced a 30% decrease (P less than 0.02) in high-affinity insulin binding and a 20-60-fold decrease (P less than 0.01) in the sensitivity of the antilipolytic effect of insulin under basal conditions and in the presence of isoprenaline. The maximum antilipolytic effect of insulin, however, was not altered by glucose refeeding. Thus, in the basal state, maximum antilipolytic effect was larger after refeeding as compared with that before fasting. The high-affinity insulin binding and insulin sensitivity were significantly lower after refeeding than before fasting. Before the fasting period, neither the insulin binding nor the antilipolytic effect of the hormone was altered by oral glucose. It is concluded that fasting and glucose refeeding are associated with marked alterations in the antilipolytic effect of insulin on human fat cells of obese subjects.(ABSTRACT TRUNCATED AT 250 WORDS)

Adipose Tissue↗

Effects of intravenous and oral glucose administration on insulin action in human fat cells.

The effects of various forms of glucose administration on insulin action were investigated in isolated human fat cells. Subcutaneous (s.c.) adipose tissue was obtained before and (1) 30 min (eight subjects) and 60 min (seven subjects) after an intravenous (i.v.) glucose load, and (2) after a 60-min continuous i.v. glucose infusion (five subjects). In addition, five subjects were reinvestigated before and 60 min after oral glucose ingestion. Lipolysis (glycerol release) and insulin receptor binding were determined. After all forms of i.v. glucose administration, adipocyte insulin binding was significantly reduced by 20% owing to a decrease in the high-affinity binding, whereas the concentrations of insulin producing the half-maximum inhibitions of basal and isoprenaline-induced rates of glycerol release were unaltered. Sixty minutes after oral glucose ingestion, insulin sensitivity increased 7-30-fold (P less than 0.05-0.01) and high-affinity insulin binding increased by 25% (P less than 0.05). The maximum insulin-induced inhibitions of basal and isoprenaline-stimulated lipolysis were not altered after oral or i.v. glucose. The plasma level of glycerol was markedly and rapidly reduced after oral glucose, but the fall was slow and less pronounced after i.v. glucose. It is concluded that oral, but not i.v., glucose administration mediates a rapid increase in the antilipolytic potency of insulin in human fat cells in vitro. This may explain why antilipolysis in vivo is more pronounced after oral than after i.v. glucose challenge.(ABSTRACT TRUNCATED AT 250 WORDS)

Adipose Tissue↗

Binding and molecular weight properties of the insulin receptor from omental and subcutaneous adipocytes in human obesity.

The insulin binding properties and the molecular weights of the insulin receptor and its insulin binding subunit were studied in omental and subcutaneous adipocytes prepared from obese- and normal-weight subjects. Insulin binding by such adipocytes was decreased in obesity when the binding activity was expressed per unit of cell surface area. No significant difference from the lean controls was evident, however, when binding was calculated on a per cell basis, indicating that the total receptor content of the cells from the obese subjects was not altered. In addition, the normal difference in the receptor binding affinities previously reported between omental and subcutaneous cells from lean individuals was unaffected by the obese condition. Studies of the molecular weight of the non-reduced insulin receptor in fat cell membranes prepared from pieces of omental and subcutaneous fat demonstrated a major receptor species of 390-425K Mr. In contrast, adipocytes isolated by collagenase treatment of the fat had heterogeneous non-reduced receptor species of Mr 355K, 285K and small amounts of 427K and 182K. Although different non-reduced receptor species were evident depending on the adipocyte receptor preparation (e.g. isolated adipocytes or fat cell membranes), no differences were found between obese and lean controls or between subcutaneous and omental receptors when the appropriate comparisons were made. Upon sulphydryl reduction, all receptor preparations had a major binding subunit of 125K Mr. In conclusion, obesity is characterized by a dilution of the insulin receptor over the adipocyte cell surface in the absence of a change in total cellular content of receptors.(ABSTRACT TRUNCATED AT 250 WORDS)

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↗

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↗

Insulin secretion in human obesity: effects of prolonged fasting and refeeding.

The effects of prolonged fasting and refeeding on insulin secretion were examined in seven obese non-diabetic subjects. Plasma insulin and C-peptide concentrations were measured before and after fasting for 7 days, and after refeeding with a low caloric diet. Urine C-peptide excretion during 24 h was determined daily during the study period. Plasma insulin and C-peptide levels fell by about 50 percent during fasting and returned to the prefasting values after refeeding. During fasting the 24-h urine C-peptide excretion was markedly diminished; after 7 days it was less than 10 percent of the prefasting level; on refeeding a low caloric diet, it increased significantly although not to the initial basal values. It is concluded that in human obesity pancreatic insulin secretion is markedly diminished by prolonged fasting.

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↗

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↗

Site differences in insulin receptor binding and insulin action in subcutaneous fat of obese females.

Regional differences in insulin-induced sc adipose tissue metabolism in 7 weight-stable obese women were investigated. Insulin receptor binding to isolated fat cells and the effects of insulin on glucose oxidation and lipolysis in adipose tissue segments obtained from abdominal and femoral regions were determined. The mean dose-response relationships for the antilipolytic effect of insulin were almost identical in both regions; the half-maximum effect (ED50) was obtained with 100 microU/ml, and the maximum effect (responsiveness) was a decrease of about 7 mumol glycerol/10(7) cells X 2 h. The mean insulin dose-response curves for glucose oxidation differed; the ED50 was 100 microU/ml in femoral and 300 microU/ml in abdominal adipose tissue (P less than 0.01), and responsiveness was enhanced 2-fold in femoral fat (P less than 0.01). Insulin receptor number was higher in femoral than in abdominal adipocytes (600,000 and 250,000 sites/cell, respectively; P less than 0.01). However, the apparent insulin receptor affinity was increased 2- to 3-fold in abdominal fat cells. The ED50 for insulin stimulation of glucose utilization occurred at a higher level of receptor occupancy in abdominal than in femoral fat. Thus, significant regional differences in insulin binding and insulin action were found in sc fat depots in obese women. Differences at the postreceptor rather than at the receptor level are probably responsible for the enhanced insulin-induced glucose utilization in femoral fat.

Abdomen↗

Influence of aging on insulin receptor binding and metabolic effects of insulin on human adipose tissue.

The influence of aging on the peripheral action of insulin was studied using subcutaneous adipose tissue from eight young (range 22-30 yr) and seven middle-aged (40-59 yr), healthy, normal-weight subjects. Insulin binding per cell was 50% lower in the older than in the younger group (P less than 0.01), essentially owing to a decrease in the insulin receptor number. Concomitantly, insulin sensitivity, as reflected in the degree of antilipolysis and stimulation of glucose oxidation, was 10-20 times smaller in the older subjects (P less than 0.01). Basal lipolysis and the maximum antilipolytic effect of insulin were similar in the two groups. The basal rate of glucose oxidation in the older subjects was less than one-half that for the younger group (P less than 0.025), and the maximum level of insulin-induced glucose oxidation was lower by about 75% (P less than 0.012). Age was significantly and negatively correlated with insulin receptor number (r = -0.81), basal production of 14CO2 (r = -0.73) and maximum level of insulin-induced glucose oxidation (r =- -0.68). The decreases in the receptor number and insulin sensitivity were larger in early adulthood than in the elderly, while the decrease in insulin responsiveness was more uniform. It is concluded that aging is accompanied by impairment of the action of insulin on target cells, owing to alterations at both the receptor and the postreceptor levels. These mechanisms, and especially the postreceptor defect, may be essential factors in the development of relative glucose intolerance in the aged.

Adipose Tissue↗

Differences at the receptor and postreceptor levels between human omental and subcutaneous adipose tissue in the action of insulin on lipolysis.

The possible existence of regional differences in the antilipolytic action of insulin in human adipose tissue was investigated in vitro. Insulin-induced inhibition of glycerol release and insulin binding, measured in terms of receptor number, receptor affinity, and dissociation rates, were determined in omental and subcutaneous adipose tissue segments and isolated fat cells of 16 nonobese subjects who were undergoing elective abdominal surgery but were otherwise healthy. The sensitivity of the antilipolytic effect of insulin was higher in subcutaneous than in omental adipose tissue; the half-maximal effect was obtained with 1 and 3 microU/ml of insulin, respectively (P less than 0.01). Responsiveness of the antilipolytic effect of insulin was threefold higher in the subcutaneous than in the omental region (P less than 0.005). Insulin receptor affinity was significantly higher in subcutaneous than in omental fat cells, but there was no difference in receptor number (about 300,000 sites/cell). 125I-insulin dissociated more rapidly from omental than from subcutaneous adipocytes in both the absence and the presence of excess native insulin. The data suggest that significant regional differences exist in the antilipolytic action of insulin in man; omental fat being less responsive than subcutaneous fat. The difference involves the insulin receptor affinity, which is caused at least partly by variations in the insulin dissociation rate but is also due to differences in insulin action at the postreceptor level.

Adipose Tissue↗

The relationship between the basal lipolytic and lipoprotein lipase activities in human adipose tissue.

The basal rate of lipolysis and basal lipoprotein lipase activity were determined in vitro in subcutaneous adipose tissue obtained from eight healthy non-obese subjects, ten obese subjects before and during one week's starvation, nine untreated non-insulin dependent diabetics and seven treated non-insulin dependent diabetics whose disease had been under metabolic control for at least three months. There was a negative correlation between the rate of lipolysis and activity of lipoprotein lipase in untreated diabetes mellitus and during starvation (r from -0.87 to -0.81). Under these two conditions the rate of lipolysis is increased and the lipoprotein lipase activity is decreased. There was no correlation between lipolysis and lipoprotein lipase in non-obese subjects, non-starving obese subjects and treated diabetic patients (r from 0.11 to 0.36). Thus, during starvation and in untreated diabetes, there is a strong reciprocal relationship between basal lipolytic activity and basal lipoprotein lipase activity in human adipose tissue which is not found under normal conditions or in obesity and well-controlled diabetes. It is concluded that a negative connection between lipolysis and lipoprotein lipase in human adipose tissue may be of physiological importance for the regulation of the energy balance in conditions such as untreated non-insulin dependent diabetes and starvation where adipose tissue lipids are the major source of energy.

Adipose Tissue↗

Phosphodiesterase activity in human subcutaneous adipose tissue in hyper- and hypothyroidism.

Phosphodiesterase (PDE) activity was determined in sc adipose tissue from 12 patients with untreated hyperthyroidism, 8 patients with untreated hypothyroidism, and 10 healthy nonobese subjects. Eight of the hyperthyroid group were reexamined after treatment when they were euthyroid. The apparent Vmax of the low Km form of PDE was 25% lower in untreated hyperthyroidism (P less than 0.05) and 100% higher in untreated hypothyroidism (P less than 0.01) than in the controls; treatment of the hyperthyroidism resulted in normalization of the value. There was a positive correlation between the mean fat cell volume and the Vmax of the low Km PDE in all conditions (r = 0.64-0.85). As regards the high Km form of PDE, the Vmax values for both hyper- and hypothyroid patients did not differ from those for the control group. The results of this study suggest that in man, the apparent Vmax for the PDE with low Km is determined by the thyroid hormones.

Adipose Tissue↗

Phosphodiesterase activity in human subcutaneous adipose tissue in insulin- and noninsulin-dependent diabetes mellitus.

The influence of diabetes mellitus on phosphodiesterase (PDE) activity in human sc adipose tissue was investigated in 8 patients with insulin-dependent (IDDM) and 9 with noninsulin-dependent (NIDDM) diabetes mellitus. The results were compared with data from 10 healthy normal weight subjects. The apparent maximal PDE activity (Vmax) of the low Km form of PDE was 60% lower (P less than 0.01) in untreated IDDM and NIDDM than in the control state. After treatment of IDDM and NIDDM, the Vmax of the low Km PDE was normalized. In untreated IDDM and NIDDM, the Vmax of the low Km PDE was correlated to the cAMP level (r = 0.8). This correlation was not observed after antidiabetic treatment or in the control state. The apparent Vmax values of the high Km form of PDE were similar in the diabetic states and in control subjects. The results suggest that the low Km PDE is inhibited in untreated IDDM and NIDDM. In these conditions, PDE may be one factor responsible for regulation of the cAMP level.

3',5'-Cyclic-AMP Phosphodiesterases↗