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M Stumvoll

Publications and source records attributed to M Stumvoll.

At least 37 records · Page 2Linked to original sources

Genetic determinants of insulin action in polycystic ovary syndrome.

INTRODUCTION: Insulin resistance is associated with both type 2 diabetes (T2 D) and polycystic ovary syndrome (PCOS). There is an association of T2 D with several polymorphisms in candidate genes related to insulin resistance. However, there is limited information about the association of these polymorphisms with PCOS. METHODS: 57 non-diabetic women with PCOS and a control group of 567 healthy non-diabetic women underwent an oral glucose tolerance test (OGTT). They were genotyped for the polymorphisms Gly972Arg in IRS-1, Gly1057Asp in IRS-2, SNP 43, 44, and 45 in CAPN10, Pro12Ala in PPAR(gamma)2, C-512 T in FOXC2, and T45 G in adiponectin. RESULTS: Women with PCOS had higher 2-h blood glucose levels (6.5 +/- 0.2 vs. 6.0 +/- 0.06 mmol/l, p = 0.03) compared to control women, higher fasting insulin (79 +/- 7 vs. 53 +/- 2 pmol/l, p = 0.02), and a lower insulin sensitivity estimated from the OGTT (12.4 +/- 1.1 vs. 19.1 +/- 0.5 U, p = 0.0001). More homozygous G allele carriers of the T45 G polymorphism in the adiponectin gene were found in women with PCOS compared to controls (13.2 % vs. 2.6 %, p = 0.008). In women with PCOS, G-allele carriers had lower fasting insulin levels than TT carriers (61 +/- 9 vs. 88 +/- 10, p = 0.02) in contrast to controls (p = 0.03 for interaction genotype x PCOS). The other polymorphisms were distributed equally among women with PCOS and controls (all p > 0.5). SUMMARY: We found a higher prevalence of the T45 G polymorphism in the adiponectin gene in women with PCOS compared to controls. This was not associated with a more insulin resistant phenotype in PCOS, however. Other frequent polymorphisms in genes related to insulin resistance and type 2 diabetes showed no association with PCOS.

Adiponectin↗

Elevated serum GGT concentrations predict reduced insulin sensitivity and increased intrahepatic lipids.

Elevated serum gamma-glutamyltransferase (GGT) concentrations have been related to features of the metabolic syndrome as well as increased risk of cardiovascular and liver disease. More recently, elevated GGT levels were shown to predict development of type 2 diabetes in a longitudinal study from Korea. The aim of the present study was to test the hypothesis that serum GGT is associated with glucose tolerance, insulin sensitivity and beta-cell function in a healthy, non-diabetic Caucasian population from the Tübingen family study. Insulin sensitivity was estimated by oGTT (n = 850) or measured by hyperinsulinemic euglycemic clamp (n = 245), respectively. A subgroup (n = 70) underwent additional determination of intrahepatic lipid content using 1H magnetic resonance spectroscopy. Serum GGT was positively correlated with two-hour glucose during oGTT (r = 0.15, p < 0.0001) and negatively correlated with insulin sensitivity from oGTT (r = -0.31, p < 0.0001) and clamp (r = -0.27, p < 0.0001). The relationship between GGT and insulin sensitivity remained significant after adjusting for sex, age, BMI, and AST using multivariate regression analysis. Inclusion of serum triglyceride levels as a parameter of lipid metabolism kept the relationship significant in the oGTT group (p < 0.0001), but not in the smaller clamp group (p = 0.11). Additionally, serum GGT was positively correlated with hepatic lipid content (r = 0.49, p < 0.001) independent of sex, age, BMI, AST or serum triglycerides. There was no significant correlation between GGT and the index for beta-cell function after adjusting for age, sex, BMI and insulin sensitivity (p = 0.74). In conclusion, elevated serum GGT levels predict glucose intolerance probably via insulin resistance rather than beta-cell dysfunction. This may be primarily related to hepatic insulin resistance and increased intrahepatic lipids. The association observed between elevated hepatic lipids and reduced insulin sensitivity might explain the increased diabetes risk observed in subjects with elevated serum GGT concentrations. In the absence of overt liver disease, elevated serum GGT concentrations may point the clinician to incipient disturbances in the glucose metabolism.

Adolescent↗

Increased renal glucose metabolism in Type 1 diabetes mellitus.

AIMS: In poorly controlled diabetes, increased renal glucose uptake has been implicated in the pathogenesis of diabetic nephropathy by promoting nonenzymatic glycosylation of proteins, activation of protein kinase C, and increased polyol pathway flux. However, whether glucose uptake by the diabetic kidney is actually increased, especially in patients with Type 1 diabetes, is unclear. METHODS: To examine this question, we used a combination of net balance and isotopic techniques to compare renal glucose uptake in 12 subjects with Type 1 diabetes before and after restoration of near normoglycaemia by infusion of insulin with that in 15 postabsorptive nondiabetic volunteers. RESULTS: Prior to insulin infusion, the diabetic subjects were markedly hyperglycaemic (arterial glucose 15.8 +/- 0.9 vs. 4.4 +/- 0.1 mm) and their renal tissue glucose uptake (i.e. total glucose disappearance across the kidney minus glycosuria) was increased more than 2 1/2-fold (388 +/- 43 vs. 148 +/- 12 micromol/min, P < 0.001). This was wholly explained by the mass action effects of hyperglycaemia since the diabetic subjects had normal renal blood flow (1575 +/- 82 vs. 1492 +/- 68 mL/min, P = 0.46) and reduced renal tissue glucose fractional extraction (1.7 +/- 0.2 vs. 2.3 +/- 0.1%, P = 0.027). Insulin infusion for three hours, which restored near normoglycaemia (arterial glucose 7.6 +/- 0.7 mm), reduced renal tissue glucose uptake toward normal (258 +/- 41 micromol/min, P = 0.006) without altering renal blood flow (1557 +/- 110, P = 0.63) or renal tissue glucose fractional extraction (2.1 +/- 0.3%, P = 0.35). Renal and hepatic glucose release, which had been increased (419 +/- 49 and 960 +/- 54 vs. 204 +/- 9 and 734 +/- 32 micromol/min, both P < 0.001), were suppressed by insulin to 138 +/- 22 and 520 +/- 53 micromol/min, respectively (both P < 0.001). CONCLUSIONS: In poorly controlled Type 1 diabetes, renal glucose uptake is markedly increased, which provides a link between hyperglycaemia and biochemical processes implicated in the pathogenesis of diabetic nephropathy. Its reversal by restoration of near normoglycaemia with insulin may explain the benefit of intensive insulin therapy in preventing diabetic nephropathy.

Adult↗

Serum adiponectin levels predict the effect of short-term dietary interventions on insulin sensitivity in humans.

AIMS/HYPOTHESIS: Fat-rich diets can acutely induce insulin resistance. Data from adiponectin knock-out mice suggest that this effect might be increased in the absence of adiponectin. In the present study we tested whether plasma adiponectin concentrations influence changes in insulin sensitivity induced by a short-term dietary intervention in humans. METHODS: We analysed data from 27 healthy, non-obese men with normal glucose tolerance. These men ate a diet high in fat and a diet high in carbohydrates for three days each. RESULTS: The high-fat diet induced a significant drop in insulin sensitivity (determined by euglycaemic-hyperinsulinaemic clamp) compared to baseline (0.100+/-0.009 vs 0.083+/-0.007 micro mol.kg(-1).min(-1).(pmol.l(-1)), p=0.01). The drop in insulin sensitivity was more pronounced in subjects with low serum adiponectin (0.094+/-0.011 vs 0.077+/-0.010 micro mol.kg(-1).min(-1).(pmol.l(-1)), p=0.02) than in subjects with high serum adiponectin (0.103+/-0.011 vs 0.090+/-0.040 micro mol.kg(-1).min(-1).(pmol.l(-1)), p=0.16). In the whole group the high-carbohydrate, low-fat diet did not cause an increase in insulin sensitivity (0.095+/-0.007 vs 0.102+/-0.009 micro mol.kg(-1).min(-1).(pmol.l(-1)), p=0.06). However, insulin sensitivity was significantly increased in the subgroup with low serum adiponectin levels (0.084+/-0.013 vs 0.099+/-0.018 micro mol.kg(-1).min(-1).(pmol.l(-1)), p=0.01). In an additional multivariate analysis post-intervention insulin sensitivity was predicted by pre-intervention insulin sensitivity ( p<0.001) and adiponectin concentrations ( p=0.001). CONCLUSIONS/INTERPRETATION: These data indicate that the reduction in insulin sensitivity achieved by a short-term high-fat diet is more pronounced in non-obese subjects with low serum adiponectin. Thus it is possible that the restriction of dietary fat and a diet high in carbohydrates might be particularly effective in subjects with low adiponectin such as obese or Type 2 diabetic individuals.

Adiponectin↗

Control of glycaemia: from molecules to men. Minkowski Lecture 2003.

Regulation of glycaemia represents a fundamental biological principle, and its failure underlies Type 2 diabetes. The complex aetiology of Type 2 diabetes, which probably involves a medley of molecular mechanisms, requires dissection out of diabetes-associated subphenotypes, such as the non-obese with increased liver fat or the obese with low plasma adiponectin. The concepts of the hyperbolic relationship of insulin secretion and insulin sensitivity with glucose allostasis help us to establish the pathophysiological framework within which such mechanisms must operate. The translation of burgeoning new basic science findings into a physiological and clinical context calls for novel and imaginative clinical experimental tools. For the purpose of this review, four molecules (adiponectin [APM1], stearoyl CoA desaturase-1 [SCD1], insulin receptor substrate-1 [IRS1], peroxisome proliferator-activated receptor-gamma [PPARG]), each with a plausible role in the disease process, have been selected to illustrate the use of such techniques in humans. These include procedures as diverse as isotope dilution for turnover studies (e.g. glycerol turnover as a proxy for lipolysis), conventional and modified clamp procedures, association studies of functionally relevant single nucleotide polymorphisms in candidate genes (e.g. IRS-1 and PPAR gamma), multivariate correlational analyses (as with plasma adiponectin), magnetic resonance spectroscopy to quantify intra-tissue lipid deposition and regional fat distribution, and gas chromatography to determine fatty acid patterns in selected lipid fractions as proxy for intrahepatic enzyme activity. A concerted effort by scientists from many disciplines (genetics and cell biology, physiology and epidemiology) will be required to bridge the growing gap between basic scientific concepts of biological modifiers of glycaemia and concepts that are truly relevant for human Type 2 diabetes.

Adipose Tissue↗

[Reduced insulin effect in subclinical fatty liver].

BACKGROUND AND OBJECTIVE: Steatosis of the liver is known to be associated with impaired insulin action and is considered to be a feature of the metabolic syndrome. In the present study we addressed the question whether liver fat content, as measured by proton MR spectroscopy ( (1)H MRS), in healthy subjects without clinical signs (hepatomegaly, elevation of transaminases) of relevant liver disease correlates with whole-body insulin sensitivity. METHODS: 21 (18 males and 3 females, age 35 +/- 11 years) non-diabetic subjects underwent the euglycemic-hyperinsulinemic clamp test for determination of whole body insulin action. Liver fat content was measured by means of proton MR spectroscopy ( (1)H MRS). Lipid content was calculated as percentage share of the lipid signal in relation to the entire signal of the spectrum (water and lipid signals). Clinically relevant steatosis of the liver was ruled out by standard magnetic resonance imaging (MRI). Subjects with a history of alcohol intake of more than 40 g/d were excluded from analysis. RESULTS: In a single correlation analysis percentage liver fat strongly correlated with insulin sensitivity index (ISI) (r = 0.7, p = 0.001). After adjusting for the effects of percentage body fat (PFAT) percentage liver fat remained an independent determinant of ISI (p = 0.01). CONCLUSION: Our results suggest that liver fat content is an important predictor of whole-body insulin sensitivity in healthy subjects. The correlation of liver fat content with insulin sensitivity was found in the absence of clinical steatosis and was independent of body fat content.

Adult↗

[White blood cell count as a predictor of glucose tolerance and insulin sensitivity. The role of inflammation in the pathogenesis of type 2 diabetes mellitus].

BACKGROUND AND OBJECTIVE: Chronic subclinical activation of the immune system is probably involved in the pathogenesis of type 2 diabetes. In the present study we examined whether an association exists between a non-specific inflammatory marker such as white blood count (WBC) and factors relevant to the pathogenesis of type 2 diabetes. PATIENTS AND METHODS: The statistical association between WBC and glucose tolerance, insulin secretion and insulin sensitivity estimated in an oral glucose tolerance test (OGTT, n = 607) or measured during an euglycemic clamp (N = 280) was determined in non-diabetic individuals. RESULTS: WBC was positively correlated with body weight (r = 0.32, p < 0.001) and postprandial (2-hour) blood glucose during the OGTT (r = 0.22, p < 0.001) independent of sex, age and percentage body fat. WBC negatively correlated with insulin sensitivity both measured by the euglycemic clamp (r = -0.23, p < 0.001) and estimated from the OGTT (r = -0.34, p < 0.001). This relationship remained significant upon adjusting for sex, age and percentage body fat. No relationship between WBC and insulin secretion independent of percentage body fat and insulin sensitivity was found (p = 0.95). CONCLUSION: An increase in WBC is associated with deterioration of glucose tolerance. This is mostly explained by reduced insulin sensitivity. These results are compatible with the hypothesis that chronic subclinical inflammation is involved in the pathogenesis of type 2 diabetes.

Adolescent↗

[Skin changes in diabetes mellitus].

Diabetes mellitus is the most frequent metabolic disorder. Just under 5 million people suffer from this disease in Germany. Four types of diabetes mellitus are distinguished: type 1 diabetes, type 2 diabetes, other specific diabetes forms, and gestational diabetes. Many characteristics of diabetes mellitus including skin changes are already manifest in the "prediabetic" stage when glucose tolerance is limited so that every elevation of blood sugar levels must be considered pathological. Changes in skin due to diabetes mellitus can be categorized into four disease groups: skin infections, skin diseases found overly frequently in association with diabetes mellitus, skin alterations due to diabetic complications, and reactions to antidiabetic treatment.

Diabetes Complications↗

Association of the -514C-->T polymorphism in the hepatic lipase gene (LIPC) promoter with elevated fasting insulin concentrations, but not insulin resistance, in non-diabetic Germans.

Hepatic lipase hydrolyses triglycerides and phospholipids in all major classes of lipoproteins. The -514C-->T genetic variation in the hepatic lipase gene promoter was found to be associated with diminished lipase activity, dyslipidemia, and atherosclerosis. We investigated whether this polymorphism associates with hyperinsulinemia and insulin resistance in 535 normal glucose-tolerant Germans. Only in homozygous individuals (22 subjects), the T allele (frequency: 18.1 %) was significantly associated with elevated glucose concentrations after 120 min of oral glucose tolerance test (p = 0.05) and with elevated fasting concentrations of insulin (p = 0.03), triglycerides (p < 0.01), total and HDL-cholesterol (p = 0.02), as determined by multivariate linear regression analysis. In a recessive model (C/C+C/T vs. T/T), T/T was associated with decreased insulin sensitivity index (p = 0.03) as calculated from oral glucose tolerance test data (n = 535), but not with the glucose infusion rate during hyperinsulinemic euglycemic clamp (n = 218). In conclusion, we have provided evidence that, among the metabolic parameters tested, the hepatic lipase -514C-->T gene polymorphism correlates with elevated fasting insulin concentrations in a German population. Since no corresponding difference in insulin sensitivity was seen in the clamp-subgroup, an effect of this polymorphism on insulin clearance has to be considered.

Adult↗

The Gly482Ser variant in the peroxisome proliferator-activated receptor gamma coactivator-1 is not associated with diabetes-related traits in non-diabetic German and Dutch populations.

The peroxisome proliferator-activated receptor gamma coactivator-1 (PGC-1) is involved in regulation of fatty acid oxidation, skeletal muscle fiber type specificity, and gluconeogenesis. The prevalent Gly482Ser variant in PGC-1 was shown to be associated with type 2 diabetes in some but not all studies. Moreover, it is unclear whether it influences prediabetic subphenotypes in non-diabetic populations. We studied the association of this variant with glucose tolerance (oral glucose tolerance test), insulin sensitivity (euglycemic hyperinsulinemic clamp) of glucose disposal and antilipolysis, insulin secretion (hyperglycemic clamp, 10 mM), maximal oxygen consumption (VO(2)max, bicycle ergometry), and intramyocellular lipids (magnetic resonance spectroscopy, tibialis and soleus muscle) in a normal glucose tolerant German cohort (n = 423) and a normal (n = 65) and impaired glucose tolerant (n = 94) cohort from the Netherlands. No statistically significant association with an examined phenotype was detected in any of the study cohorts. Specifically, VO(2)max and the soleus-to-tibialis ratio of intramyocellular lipid contents as a surrogate parameter of fiber type specificity was not different between the genotype groups. We conclude, that the Gly482Ser variant in PGC-1 is not associated with diabetes-related traits or skeletal muscle fiber type composition in a non-diabetic German and Dutch population.

Adult↗

Muscle type dependent increase in intramyocellular lipids during prolonged fasting of human subjects: a proton MRS study.

The amount of intramyocellular lipids in skeletal muscle was assessed by proton magnetic resonance spectroscopy during a voluntary fasting period of 120 h in four healthy lean volunteers. The aim of the study was to determine whether muscular lipid uptake in the presence of high plasma lipid levels, or lipid oxidation due to lacking glycogen as a source of energy in musculature, are the dominant effects on intramyocellular lipid levels under fasting conditions in various muscle types. Intramyocellular lipids were quantified in the tibialis anterior (mixed type I and type II fibers, predominantly type II) and the soleus muscle (predominantly type I fibers) before and after 24 h, 72 h, and 120 h of fasting. An extreme increase in intramyocellular lipids to levels of 369 % (median) was found in the tibialis anterior muscle compared to baseline value (intramyocellular lipid level prior to fasting, set to 100 %; p = 0.02). The soleus muscle with clearly higher baseline content of intramyocellular lipids (2 - 4-fold compared to tibialis anterior) revealed slightly delayed and less pronounced uptake of intramyocellular lipids during fasting to 152 % (median) after 120 h (p = 0.02). The absolute increment in intramyocellular lipids (in terms of ratios between lipid and creatine signals) was also higher in tibialis anterior than in soleus (not statistically significant). These findings indicate augmentation of the intramyocellular lipid pool during long-term elevation of plasma FFA in the presence of low plasma insulin concentrations in both muscles investigated. The rate of muscular lipid oxidation during fasting is clearly lower than the increased uptake of FFA by myocytes.

Adult↗

Exaggerated insulin secretion in Pima Indians and African-Americans but higher insulin resistance in Pima Indians compared to African-Americans and Caucasians.

AIMS: African-Americans have a higher prevalence of Type 2 diabetes than Caucasians, but a lower prevalence than Pima Indians. Studies suggest that both African-Americans and Pima Indians are more insulin resistant and have higher acute insulin secretory responses to glucose than Caucasians; however, a direct comparison between these three populations is lacking. METHODS: We measured insulin secretory responses to intravenous glucose (acute insulin response, AIR, 25 g ivGTT); insulin action at physiological (M-low) and supra-physiological (M-high) levels of hyperinsulinaemia (2-step hyperinsulinaemic clamp); basal and insulin-suppressed endogenous glucose production in 30 African-Americans, 30 Pima Indians and 30 Caucasians with normal glucose tolerance who were carefully matched for age, sex, and body fat (hydrodensitometry or DEXA). A subgroup of 24 subjects from each group additionally underwent a standardized mixed meal test. RESULTS: M-low was lower in Pima Indians (0.50 +/- 0.03) compared to Caucasians (0.59 +/- 0.02, P = 0.02) and African-Americans [0.58 +/- 0.03 mg/kgEMBS/min, log10 (means +/- SE), P = 0.03] but was not different between African-Americans and Caucasians. Basal endogenous glucose production was lower in Pima Indians (2.43 +/- 0.06) compared to African-Americans (2.70 +/- 0.06, P = 0.02) and was not different between Pima Indians and Caucasians (2.59 +/- 0.09 mg/kgEMBS/min) or African-Americans and Caucasians (all P > 0.18). Insulin-suppressed endogenous glucose production during the clamp was not different among the groups (all P > 0.40). AIR was higher in both African-Americans (13.51 +/- 0.26) and Pima Indians (13.72 +/- 0.27) compared to Caucasians (12.33 +/- 0.25 pM, log10, both P < 0.01). The areas under the curve for glucose in response to the oral glucose tolerance test and mixed meal test were higher in Pima Indians compared to African-Americans (P = 0.03 and P = 0.03, respectively) and Caucasians (P = 0.01, mixed meal test), but not different between African-Americans and Caucasians. CONCLUSIONS: Exaggerated glucose-stimulated insulin secretion, manifested initially as an increased response to an intravenous glucose challenge, appears to be a characteristic in people with normal glucose tolerance at higher risk for diabetes. Lower whole-body insulin sensitivity in Pima Indians compared to African-Americans, however, may contribute to the higher risk for Type 2 diabetes in Pima Indians compared to African-Americans.

Adolescent↗

Induction of adiponectin gene expression in human myotubes by an adiponectin-containing HEK293 cell culture supernatant.

AIMS/HYPOTHESIS: Adiponectin, an adipocytokine known to be down-regulated in obesity-linked disorders, is considered to be a potential key mediator of insulin sensitivity. In this study, we asked whether adiponectin is able to regulate ten selected genes possibly associated with insulin sensitivity in human skeletal muscle cells. METHODS: To this end, we treated in vitro differentiated human myotubes with the culture supernatant of HEK293 cells stably transfected with human recombinant adiponectin and assessed gene expression by RT-PCR. Intracellular adiponectin protein was quantified by radioimmunoassay and visualized by Western blotting. RESULTS: In contrast to the control supernatant, the adiponectin-containing supernatant consistently induced expression of adiponectin mRNA in human myotubes from eight different donors (mean increase: 90-fold over control; n=8, p<0.001). This increase in mRNA was paralleled by a rise in intracellular adiponectin protein (mean increase: 8.3-fold over control; n=4, p<0.05). Expression of the other nine candidate genes was not altered. In human skin fibroblasts and HepG2 cells, the adiponectin-enriched supernatant did not induce relevant amounts of adiponectin mRNA. CONCLUSIONS/INTERPRETATION: In conclusion, we show here that adiponectin gene expression is specifically inducible in skeletal muscle cells.

Adiponectin↗

For debate: Starling's curve of the pancreas--overuse of a concept?

It is commonly accepted that insulin secretion follows the pattern of an inverted U, also termed 'Starling's curve of the pancreas' during the natural history of hyperglycemia in glucose intolerance and type 2 diabetes. This concept is based on the cross-sectional observation that insulin concentrations initially increase when insulin sensitivity declines (as a consequence of obesity, for example) and decrease when glucose tolerance deteriorates (impaired glucose tolerance or overt type 2 diabetes). The initial increase in insulin concentrations has been viewed as 'hypersecretion' of insulin, thought to indicate that beta cell dysfunction is not etiological but secondary in nature. However, this view is oblivious to the now well-established fact that assessment of insulin secretion must account for individual insulin sensitivity. Here, we revisit the concept of Starling's curve of the pancreas based on first-phase C-peptide concentrations (hyperglycemic clamp) from subjects with normal glucose tolerance (n=66), impaired glucose tolerance (n=19) and mild type 2 diabetes (n=9). In absolute terms, first-phase C-peptide concentrations plotted against increasing fasting glucose concentrations indeed followed an inverted U. However, adjusted for direct and indirect measures of insulin sensitivity (insulin sensitivity index from the hyperglycemic clamp, body mass index, age and sex), first-phase C-peptide concentrations of the same individuals tended to decrease steadily. In conclusion, while the Starling curve exists for insulin concentrations, and perhaps also for insulin secretion, it does not hold for beta-cell function if that term were to imply appropriateness of insulin secretion (based on a formal test of glucose-stimulated insulin secretion) for the degree of insulin resistance, as it should.

Adult↗

Skeletal muscle cells from insulin-resistant (non-diabetic) individuals are susceptible to insulin desensitization by palmitate.

We recently demonstrated that in vivo insulin resistance is not retained in cultured skeletal muscle cells. In the present study, we tested the hypothesis that treating cultured skeletal muscle cells with fatty acids has an effect on insulin action which differs between insulin-sensitive and insulin-resistant subjects. Insulin effects were examined in myotubes from 8 normoglycemic non-obese insulin-resistant and 8 carefully matched insulin-sensitive subjects after preincubation with or without palmitate, linoleate, and 2-bromo-palmitate. Insulin-stimulated glycogen synthesis decreased by 27 +/- 5 % after palmitate treatment in myotubes from insulin-resistant, but not from insulin-sensitive subjects (1.50 +/- 0.08-fold over basal vs. 1.81 +/- 0.09-fold, p = 0.042). Despite this observation, we did not find any impairment in the PI 3-kinase/PKB/GSK-3 pathway. Furthermore, insulin action was not affected by linoleate and 2-bromo-palmitate. In conclusion, our data provide preliminary evidence that insulin resistance of skeletal muscle does not necessarily involve primary defects in insulin action, but could represent susceptibility to the desensitizing effect of fatty acids and possibly other environmental or adipose tissue-derived factors.

Adult↗

Insulin sensitivity of glucose disposal and lipolysis: no influence of common genetic variants in IRS-1 and CAPN10.

AIMS/HYPOTHESIS: This study aimed to assess the physiologic relationships between insulin sensitivity of lipolysis and that of glucose disposal and whether two common genetic polymorphisms associated with insulin resistance partially explained the remaining variation. METHODS: We measured suppression of lipolysis (isotopically [primed-continuous infusion of d5 glycerol] measured glycerol rate of appearance) and glucose disposal during a three-step (n = 24) or standard (n = 57) hyperinsulinaemic euglycaemic clamp in 81 healthy subjects. We also compared insulin sensitivity of lipolysis in carriers (vs. wildtype controls) of the CAPN10 UCSNP43 G/A and IRS-1 Gly972Arg polymorphisms. RESULTS: We observed a significant correlation between insulin sensitivity of glucose disposal and insulin sensitivity of lipolysis ( r = -0.39, p < 0.001) which was retained, albeit weaker, after adjusting for BMI ( r = -0.27, p = 0.002). No significant difference in insulin sensitivity of lipolysis was found between Gly/Gly compared with X/Arg ( IRS-1) and G/G compared with G/A + A/A ( CAPN10) (all p values > 0.15). CONCLUSION/INTERPRETATION: Insulin sensitivity of lipolysis has a considerable variation in healthy human beings and independently explains about 10% of the variation in insulin sensitivity of glucose disposal (or vice versa). It is possible that mediated through NEFAs, insulin resistance of glucose disposal is secondary to that of lipolysis. Alternatively, the biological variation in insulin sensitivity, to some extent, affects both systems in parallel. Neither of the two putatively insulin resistance-related polymorphisms that were tested contributed measurably to the biological variation of insulin sensitivity of lipolysis.

Adult↗