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Biomedical subjects

P Arner

Publications and source records attributed to P Arner.

At least 109 records · Page 6Linked to original sources

Noradrenaline-induced lipolysis in isolated mesenteric, omental and subcutaneous adipocytes from obese subjects.

OBJECTIVE: The action of noradrenaline on human mesenteric, omental and subcutaneous adipocytes was compared. We also determined whether regional differences in the noradrenaline-effect were linked to variations in adrenoceptor subtype function. DESIGN: The lipolytic effects of different concentrations of noradrenaline (beta 1-, beta 2-, beta 3- and alpha 2-adrenoceptor agonist), isoprenaline (beta 1-, beta 2- and beta 3-adrenoceptor agonist) and selective beta 1-, beta 2- and beta 3-adrenoceptor agonists (dobutamine, terbutaline and CGP 12177, respectively) were studied in adipocytes isolated from the three adipose tissue regions in the same subject. In addition, the effect of the alpha 2-adrenoceptor antagonist, yohimbine, was studied on noradrenaline-induced glycerol release. SUBJECTS: Thirteen otherwise healthy obese subjects (nine females, four males). RESULTS: The noradrenaline-induced lipolytic response did not differ between omental and mesenteric adipocytes but was 50% higher than in subcutaneous adipocytes (P < 0.05). Furthermore, noradrenaline sensitivity and intrinsic activity (in relation to isoprenaline) were higher in the two visceral fat cells than in the subcutaneous fat cells. The intrinsic activity of noradrenaline increased close to that of isoprenaline when yohimbine was added to the incubation system. Isoprenaline sensitivity was five times higher in the two visceral fat cells than in the subcutaneous fat cells. For CGP 12177, sensitivity and intrinsic activity did not differ between mesenteric and omental adipocytes, but was higher in these two regions when compared to subcutaneous adipocytes. For dobutamine and terbutaline no significant regional differences were found. CONCLUSION: beta 3-adrenoceptor action is enhanced and alpha 2-adrenoceptor action is decreased in both mesenteric and omental adipocytes as compared to subcutaneous adipocytes. However, the two visceral fat depots show no difference in adrenoceptor function. The difference in beta 3- and alpha 2-adrenoceptor function might explain why noradrenaline induced lipolysis is increased in the two visceral fat depots, as compared to the subcutaneous fat depot.

Adipocytes↗

Low circulating leptin levels in protein-energy malnourished chronically ill elderly patients.

OBJECTIVE: To evaluate serum leptin, a fat cell-derived protein, levels in relation to the malnutrition often observed in chronic disease. DESIGN: A comparison of circulating leptin concentrations in malnourished chronically ill elderly and in age-matched controls. SETTING: A university-affiliated teaching hospital in Stockholm, Sweden. SUBJECTS: Nineteen protein-energy malnourished elderly patients (74 +/- 1 years) with various chronic nonmalignant diseases and 18 healthy controls (72 +/- 1 years). MAIN OUTCOME MEASURES: Serum leptin levels measured by radioimmunoassay technique, nutritional status as expressed by body mass index (kg m[-2]), triceps skin fold, arm muscle circumference and serum albumin, and serum orosomucoid concentrations indicating inflammatory status. RESULTS: Patients and controls displayed body mass indexes of 17.4 +/- 0.7 and 25.0 +/- 1.1 (P < 0.001), respectively. Triceps skin fold (TSF) measurements revealed a pronounced fat depletion in the patients, being 8.5 +/- 0.9 and 22.3 +/- 1.5 mm (P < 0.001) in female and 6.1 +/- 0.7 and 10.8 +/- 0.8 mm (P < 0.001) in male patients and controls, respectively. Patient serum leptin concentrations were less than half of the corresponding concentrations in the controls, 4.3 +/- 1.1 and 9.3 +/- 1.3 ng mL(-1)(P < 0.01), respectively. The highest leptin concentrations were registered in female controls, 12.1 +/- 1.6 ng mL(-1). The serum leptin levels in the controls correlated with TSF (r = 0.74: P < 0.001). No such correlation was found in the patients. CONCLUSIONS: Serum leptin levels were low and did not seem to be directly associated with fat and muscle depletion in elderly patients with chronic illness, whereas they appeared to be positively correlated to body fat in healthy elderly.

Adipose Tissue↗

Is familial combined hyperlipidaemia a genetic disorder of adipose tissue?

Familial combined hyperlipidaemia is a common cause of coronary heart disease. Its aetiology is heterogeneous. The genetic and metabolic basis of the disorder has not yet been defined. This review discusses the putative role of adipose tissue in the pathogenesis of familial combined hyperlipidaemia. It is possible that mutations in genes regulating the turnover of lipids in fat cells are involved in the aetiology.

Adipose Tissue↗

Forskolin potentiates isoprenaline-induced glycerol output and local blood flow in human adipose tissue in vivo.

The synergistic action of forskolin on beta-adrenoceptor-mediated glycerol output and changes in local blood flow were investigated in situ, in human adipose tissue of healthy subjects, by the use of microdialysis. The addition of isoprenaline 0.1-1.0 microM or forskolin 10-100 microM to the perfusion solvent caused a concentration-dependent, marked and sustained increase in the levels of glycerol in the dialysate (lipolysis index) as compared to the solvent alone. On a molar basis, isoprenaline was almost one thousand times more potent than forskolin. Isoprenaline caused a rapid and concentration-dependent decrease in the ethanol clearance ratio (index of local blood flow, i.e. a decrease in ethanol ratio implies an increase in blood flow). Forskolin had no effect on the ethanol ratio at either 1.0 microM or 10 microM, while forskolin at 100 microM induced a significant decrease in the ethanol ratio. When adipose tissue was pre-treated with forskolin, the subsequent addition of isoprenaline to the microdialysate resulted in a significantly higher glycerol output and a significantly more prominent decrease in the ethanol ratio than with isoprenaline alone. In conclusion, the data demonstrate that forskolin and the (beta-adrenoceptor-agonist both stimulate lipolysis and local blood flow in human adipose tissue in vivo. Furthermore, forskolin, at concentrations that are ineffective alone, potentiates the actions of isoprenaline on lipolysis and blood flow.

Adipose Tissue↗

Absolute concentrations of glycerol and lactate in human skeletal muscle, adipose tissue, and blood.

The absolute concentrations of glycerol and lactate were studied with microdialysis of adipose tissue and skeletal muscle in normal-weight subjects. The basal interstitial glycerol concentration was 232 +/- 33, 96 +/- 8, and 59 +/- 6 mumol/l in fat, muscle, and arterialized plasma, respectively (P = 0.0002). This relationship was maintained during both euglycemic hyperinsulinemia, when glycerol decreased in all three compartments, and hypoglycemia, when glycerol first decreased and then increased in fat, muscle, and blood (P = 0.0001 for both). Basal interstitial lactate concentrations were similar in adipose tissue (1.1 +/- 0.2 mmol/l) and skeletal muscle (1.9 +/- 0.4 mmol/l) and higher than in arterialized blood (0.6 +/- 0.1 mmol/l, P = 0.002). During hyperinsulinemia and hypoglycemia, lactate increased (P = 0.0001) and the tissue-blood relationship was maintained (P = 0.04). In conclusion, adipose tissue and skeletal muscle mobilize glycerol and lactate at rest. Glycerol and lactate production are influenced by hyperinsulinemia and hypoglycemia in both tissues. Adipose tissue appears to be the major site of glycerol production, whereas skeletal muscle and fat may be equally important for lactate production.

Adipose Tissue↗

Adipose tissue lipoprotein lipase and hormone-sensitive lipase. Contrasting findings in familial combined hyperlipidemia and insulin resistance syndrome.

The metabolism of free fatty acids (FFA) is altered in two common atherosclerosis-promoting disorders: familial combined hyperlipidemia (FCHL) and insulin resistance syndrome (IRS). It has been suggested that these two conditions may have a common etiology. The enzymes lipoprotein lipase (LPL) and hormone-sensitive lipase (HSL) are rate-limiting steps for the turnover of fatty acids in adipose tissue, because they hydrolyze extracellular triglycerides in lipoproteins (LPL) and intracellular triglycerides in adipocytes (HSL). The present study was undertaken to simultaneously determine the activities of LPL and HSL in subcutaneous adipose tissue from male patients with FCHL and IRS. LPL and HSL activity was investigated in 10 nonobese FCHL patients and compared with 10 matched healthy nonobese subjects, and in 8 essentially normolipidemic IRS patients (who did not have overt diabetes mellitus) and compared with 9 nonobese matched control subjects. LPL activity was 43% lower in patients with IRS (P < .0005), as compared with control subjects, but HSL activity was not significantly different in the two groups, On the other hand, HSL activity was decreased by 45% in FCHL patients (P < .01), as compared with control subjects, but LPL activity was not significantly different in FCHL patients and the control group. In conclusion, triglyceride metabolism in adipose tissue is altered in both FCHL and IRS. However, the abnormalities observed involve impaired function of LPL in IRS and impaired function of HSL in FCHL, suggesting separate etiologies for the altered lipolysis in these conditions, at least in male subjects.

Adipose Tissue↗

Sex differences in visceral fat lipolysis and metabolic complications of obesity.

Cardiovascular complications of obesity are more common in men than women. Sex differences in visceral fat lipolysis may be of importance in this respect, since increased release of free fatty acids (FFAs) from visceral fat to the liver by the portal venous system has been thought to cause several metabolic complications due to obesity, such as hypertension, hyperlipidemia, and glucose intolerance. The aim of this study was to investigate sex differences in clinical characteristics and visceral fat mobilization in obesity. Obese subjects (22 male and 23 female) undergoing elective surgery were matched for body mass index and age. The males had both higher waist-to-hip ratio (WHR), sagittal diameter, blood pressure, fat-cell volume, plasma insulin, glucose, and triglyceride and lower HDL cholesterol levels than the females. The rate of norepinephrine-induced FFA and glycerol release was twofold higher in men (P = .02). No significant reutilization of FFA was observed. The difference in maximum norepinephrine-induced rate of lipolysis between men and women was independent of both WHR and sagittal diameter and was an independent regressor for levels of plasma glucose and plasma HDL cholesterol. Fat-cell volume was an independent regressor for plasma triglycerides and blood pressure. No sex differences in the lipolytic sensitivity to beta 1- or beta 2-adrenoceptor-specific agonists or in the antilipolytic effect of insulin were observed. However, the lipolytic beta 3-adrenoceptor sensitivity was 12 times higher (P = .004) and the antilipolytic alpha 2-adrenoceptor sensitivity 17 times lower (P = .003) in men. Furthermore, lipolysis induced by agents acting at the adenylate cyclase and protein kinase A levels were almost twofold enhanced in men. However, no sex difference in maximum hormone-sensitive lipase activity was observed. In conclusion, in obesity, catecholamine-induced rate of FFA mobilization from visceral fat to the portal venous system is higher in men than women. This phenomenon is partly due to a larger fat-cell volume but also to a decrease in the function of alpha 2-adrenoceptors, an increase in the function of beta 3-adrenoceptors, and an increased ability of cyclic AMP to activate hormone-sensitive lipase. These factors may contribute to gender-specific differences in metabolic and cardiovascular disturbances accompanied by obesity.

Adipose Tissue↗

Catecholamine-induced adipocyte lipolysis in human hyperthyroidism.

Increased lipid mobilization in thyrotoxicosis is attributed to amplification of catecholamine action in fat cells by thyroid hormones. We investigated the adrenergic regulation of lipolysis in isolated sc abdominal fat cells obtained from 14 patients with thyrotoxicosis and 18 control subjects. Ten of the hyperthyroid subjects were also reinvestigated after antithyroid treatment. The thyrotoxic state was associated with a 3-fold increase in maximum norepinephrine-induced lipolysis (P < 0.005), unaltered sensitivity to dobutamine (selective beta 1-adrenoceptor agonist) and clonidine (selective alpha 2-adrenoceptor agonist), but 15 times enhanced sensitivity to terbutaline (selective beta 2-adrenoceptor agonist; P < 0.01). Moreover, thyrotoxicosis was accompanied by a 3-fold increase in beta 2-adrenoceptor number (P < 0.005), but unchanged beta 1-adrenoceptor levels. Further, the lipolytic effects of dibutyryl cAMP (activating protein kinase A and thereby hormone-sensitive lipase) and forskolin (activating adenylate cyclase) were about 60% enhanced (P < 0.005). No change in the maximum activity of the hormone-sensitive lipase could be demonstrated in the hyperthyroid state compared to that in the euthyroid state. The observed abnormalities in lipolysis and beta 2-adrenoceptor number were normalized after antithyroid treatment. It is concluded that in human hyperthyroidism, the interactions between thyroid hormone and catecholamines in adipocytes involve abnormalities at both receptor and postreceptor levels. The former mechanism seems to be a selective increase in the expression of the beta 2-adrenoceptors. The latter mechanism involves increased ability of cAMP to activate hormone-sensitive lipase, but not a change in maximum enzyme capacity.

Adipocytes↗

Impaired adipocyte lipolysis in nonobese women with the polycystic ovary syndrome: a possible link to insulin resistance?

The polycystic ovary syndrome (PCOS) is the most common hyperandrogenic disorder among women and is characterized by metabolic and cardiovascular aberrations similar to those seen in the so-called insulin resistance syndrome. The regulation of lipolysis was investigated in isolated abdominal sc adipocytes from 10 nonobese women with PCOS and in 11 age- and body mass index-matched healthy women. Eight PCOS women were reinvestigated after 3 months of treatment with combined oral contraceptives containing ethinyl estradiol and norethisterone, which normalized hyperandrogenicity. The PCOS women showed a marked resistance to the lipolytic effect of noradrenaline due to defects at two different levels in the lipolytic cascade: first, a 7-fold reduction in sensitivity to the beta 2-selective agonist terbutaline (P < 0.005), which could be ascribed to a 50% lower beta 2-adrenoceptor density (P < 0.02) as determined with radioligand binding; there was no difference with regard to dobutamine (beta 1) or clonidine (alpha 2-sensitivity) or beta 1-adrenoceptor density; second, the maximum lipolytic response was also 35% lower (P < 0.02) in the PCOS women compared to that in the healthy women. This was seen with all beta-adrenergic agonists and the postreceptor-acting agents forskolin (activating adenylyl cyclase) and dibutyryl cAMP (activating protein kinase). Neither beta 2-adrenoceptor sensitivity or density nor the reduced lipolytic responsiveness was restored by 3 months of oral contraceptives treatment. The results indicate the existence of a marked impairment of catecholamine-induced lipolysis in nonobese PCOS women displaying early features of the insulin resistance syndrome due to multiple lipolysis defects as a lower beta 2-adrenoceptor density and reduced function of the protein kinase, hormone-sensitive lipase complex. These lipolysis defects are identical to those observed in the insulin resistance (metabolic) syndrome and could be a primary pathogenic mechanism for the development of these disorders.

Adipocytes↗

Differential regulation of the p80 tumor necrosis factor receptor in human obesity and insulin resistance.

Previous studies have shown that tumor necrosis factor (TNF)-alpha production from adipose tissue is elevated in rodent and human obesity and plays an important role in insulin resistance in experimental animal models. In this study, we examined the adipose expression of both TNF receptors (TNFR1 and TNFR2) in human obesity and demonstrated that obese female subjects express approximately twofold more TNFR2 mRNA in fat tissue and approximately sixfold more soluble TNFR2 in circulation relative to lean control subjects. In contrast, TNFR1 expression and protein levels were similar in these subjects. TNFR2 expression levels in adipose tissue were strongly correlated with BMI (r = 0.65, P < 0.001) and level of hyperinsulinemia (P < 0.001), an indirect measure of insulin resistance, as well as level of TNF-alpha mRNA expression in fat tissue (r = 0.56, P < 0.001). These results suggest that TNFR2 might play a role in human obesity by modulating the actions of TNF-alpha.

Adipose Tissue↗

Self-monitoring of blood glucose in type I diabetic patients: comparison with continuous microdialysis measurements of glucose in subcutaneous adipose tissue during ordinary life conditions.

OBJECTIVE: To evaluate whether frequent self-monitoring of blood glucose (SMBG) sufficiently reflects the true diurnal glucose control during ordinary daily life in type I diabetic patients. RESEARCH DESIGN AND METHODS: By using a microdialysis technique, continuous monitoring of adipose tissue glucose was performed in 24 type I diabetic patients during ambulatory conditions. A microdialysis probe was implanted subcutaneously and perfused by a portable microinfusion pump. Dialysate fractions were collected in 1- to 2-h samples during 3 consecutive days. The diurnal microdialysis glucose profiles were compared with those obtained by SMBG recordings performed seven times a day. RESULTS: In seven patients, the SMBG profiles showed marked aberrations as compared to the continuous microdialysis glucose recordings; during the 3-day study period, 5-6 inconsistencies were registered. In only 4 patients (17%) did SMBG provide a valid reflection (0-2 inconsistencies) of the diurnal glucose profile, whereas in 13 patients the SMBG recordings paralleled the diurnal adipose tissue glucose profiles in an intermediate way (3-4 major inconsistencies). The inaccuracy of the SMBG data was due more often to the fact that wide glucose swings remained unrecognized, rather than to erroneous testing techniques (P < 0.05), and it was more evident during the night (P < 0.05). CONCLUSIONS: In many type I diabetic patients, the true diurnal variability in glycemia is too great to be accurately reflected even by frequent self-monitoring of blood glucose.

Adipose Tissue↗

Variation in adrenergic regulation of lipolysis between omental and subcutaneous adipocytes from obese and non-obese men.

Regional variations in adipocyte lipolysis between subcutaneous and visceral fat may be important for obesity complications. In the present study, we compared adrenergic regulation of lipolysis in omental and subcutaneous adipocytes from obese (n = 15) and non-obese (n = 14) male subjects. Waist-to-hip ratio, blood pressure, plasma insulin, and plasma triglycerides were increased in obesity. No regional differences in adrenoceptor lipolytic function were observed in non-obese subjects with the exception of a slight increase in noradrenaline sensitivity in omental adipocytes (P < 0.05), because of increased beta(1)-adrenoceptor sensitivity (P < 0.05). In the obese subjects, the rate of noradrenaline-induced glycerol release was 2-fold higher (P < 0.005) and the noradrenaline sensitivity was 3-fold higher (P < 0.05) in omental versus subcutaneous adipocytes. These findings were mainly due to a 50-fold increase in omental beta(3)-adrenoceptor sensitivity (P < 0.002) and to a smaller 6-fold increase in omental beta(1)-adrenoceptor sensitivity (P < 0.02), accompanied by increased beta(3)- as well as beta(1)-adrenoceptor lipolytic rates at approximately 50% receptor subtype occupancy by the agonist (P < 0.05). In conclusion, minor regional differences in adipocyte lipolytic response to catecholamines are present in non-obese males. In contrast, catecholamine-induced lipolysis is markedly increased in omental as compared to subcutaneous adipocytes in obese males, mainly due to an increase in beta(3)-adrenoceptor function of visceral fat cells, in combination with a smaller increase in beta(1)-adrenoceptor function.

Adipocytes↗

Adipocyte lipolysis in normal weight subjects with obesity among first-degree relatives.

In this study we investigated whether fat cell lipolysis could be involved in the aetiology of obesity by comparing non-obese subjects with (Hob) or without (Hnorm) a family trait for overweight. A family history of obesity was present when at least one of the first-degree relatives had body mass index of 27 kg/m2 or more. Twenty-seven healthy, drug-free non-obese adult subjects were investigated; 13 were Hob and the remaining 14 were Hnorm. Eleven Hob had at least one obese parent. Isolated fat cells from abdominal subcutaneous adipose tissue were incubated in vitro. Glycerol release (lipolysis index), mRNA levels and enzymatic activity of hormone-sensitive lipase and radioligand binding to beta 1- and beta 2-adrenoceptors were determined. The lipolytic effects of noradrenaline (major endogenous lipolytic agent), isoprenaline (a non-selective beta-adrenoceptor agonist), forskolin (a direct activator of adenylyl cyclase) and dibutyryl cyclic AMP (activating protein kinase and thereby hormone-sensitive lipase) were reduced by about 50% (p from 0.001 to 0.01). The maximum activity of hormone-sensitive lipase was reduced 50% in Hob (p < 0.05) and correlated with the lipolytic responsiveness of fat cells in the whole population (r = 0.71). However, there was no difference between the groups in steady-state mRNA levels for the enzyme. Beta 1-->, beta 2- and alpha 2-adrenoceptor sensitivity as well as beta 1- and beta 2-adrenoceptor numbers were normal in Hob. Fasting plasma insulin was 49.1 and 32.6 pmol/l, respectively in Hob and Hnorm (p = 0.01). There was, however, no significant correlation between lipolysis in vitro and plasma insulin. Thus, lipolytic catecholamine resistance in fat cells, at least partly due to impaired function of hormone-sensitive lipase, is an adipocyte abnormality associated with a family tendency to obesity.

Adipocytes↗

Stimulation of adipose tissue lipolysis following insulin-induced hypoglycaemia: evidence of increased beta-adrenoceptor-mediated lipolytic response in IDDM.

The adrenergic regulation of adipose tissue lipolysis in response to insulin-induced hypoglycaemia (intravenous infusion of soluble insulin 0.10 IU.kg body weight-1.h-1 until the arterial plasma glucose fell below 2.8 mmol/l) was investigated directly in vivo in 11 insulin-dependent diabetic (IDDM) patients and 12 control subjects, using microdialysis of the extracellular space of abdominal subcutaneous adipose tissue. The tissue glycerol level (lipolysis index) and the escape of ethanol from the perfusion medium (blood flow index) were continuously monitored. During insulin infusion the arterial glucose level was reduced in parallel and the hypoglycaemic nadir was almost identical in the two groups (diabetic patients 2.2 +/- 0.1 and control subjects 2.3 +/- 0.1 mmol/l). While the maximum response of plasma epinephrine to hypoglycaemia was 30% lower in diabetic patients than in the control subjects (p < 0.05), the glycerol levels in adipose tissue and in plasma, as well as in serum non-esterified fatty acids, increased twice as much in the former as in the latter group following hypoglycaemia (p < 0.01). Addition of the beta-adrenoceptor blocker propranolol (10(4) mol/l) to the tissue perfusate almost completely prevented the hypoglycaemia-induced increase in the adipose tissue glycerol level in both groups, whereas in situ perfusion with 10(-4) mol/l of the alpha-adrenoceptor blocker phentolamine resulted in an additional increase in the tissue glycerol levels; during alpha-blockade, the glycerol response to hypoglycaemia remained enhanced by threefold in the diabetic patients (p < 0.01). In both groups local adipose tissue blood flow increased transiently in a similar way after hypoglycaemia; the increase being inhibited by in situ beta-adrenoceptor blockade. We conclude that both alpha- and beta-adrenergic mechanisms regulate adipose tissue lipolysis in response to hypoglycaemia. In IDDM, lipolysis is markedly enhanced following hypoglycaemia, despite a reduced catecholamine secretory response, because of increased beta-adrenoceptor action in adipose tissue.

Adipose Tissue↗

Phenotypic characterization of the Trp64Arg polymorphism in the beta 3-adrenergic receptor gene in normal weight and obese subjects.

The beta 3-adrenergic receptor, located mainly in fat cells of visceral adipose tissue, is involved in the regulation of lipolysis and thermogenesis. Recently, a mutation in the corresponding gene resulting in the replacement of tryptophan by arginine in position 64 (Trp64Arg) has been demonstrated, which associated with obesity and metabolic complications of obesity. We have investigated whether this polymorphism is associated with changes in beta 3-adrenergic receptor function or clinical characteristics in 40 non-obese and 43 obese non-diabetic subjects who underwent elective abdominal surgery. The beta-adrenergic receptor gene polymorphism was examined by restriction-enzyme cleavage conformation. Beta 3-adrenergic receptor function was investigated by measuring lipolysis in isolated visceral white fat cells incubated with noradrenaline (natural ligand) or (CGP) 12,177 (selective beta 3-agonist). No homozygotes for the mutation were found. The allelic frequency of Trp64Arg was similar in obese and non-obese subjects (9.4 and 12.5%, respectively). In obese and non-obese subjects there was no change in body mass index, body fat distribution, fat cell size, fasting circulating levels of insulin, glucose or lipids, blood pressure or adipocyte lipolysis induced by noradrenaline or CGP 12,177 when Trp64Arg heterozygotes were compared with Trp64A homozygotes. Our results suggest that the Trp64Arg mutation in its heterozygous form is not a major determinant of beta 3-adrenergic receptor function (when assessed by lipolysis in white adipose tissue) or of the pathophysiology of obesity.

Adipocytes↗