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Biomedical subjects

D C Simonson

Publications and source records attributed to D C Simonson.

At least 19 recordsLinked to original sources

Disparate effects of weight loss on insulin sensitivity and erythrocyte sodium-lithium countertransport activity.

Previous investigations have demonstrated an association between impaired insulin sensitivity and elevated erythrocyte sodium-lithium countertransport (Na(+)-Li+ CT) activity. It has been speculated that insulin resistance and endogenous hyperinsulinemia are causally related to the development of elevated Na(+)-Li+ CT activity. To test this hypothesis, we measured insulin sensitivity (euglycemic insulin clamp technique) and Na(+)-Li+ CT activity in eight obese women before (weight = 102 +/- 5 kg) and after (weight = 88 +/- 5 kg; P < .001) a 10 week weight reduction program. Maximal velocity of Na(+)-Li+ CT activity did not change (0.50 +/- 0.09 v 0.49 +/- 0.10 mmol/L red blood cells/h; P = NS) despite the significant improvement in insulin sensitivity (73 +/- 12 vs 110 +/- 7 mg/m2/min; P < .0025) and reduction in fasting insulin levels (17 +/- 2 v 10 +/- 2 microU/mL; P < .05) that accompanied weight loss. These results suggest that insulin resistance and hyperinsulinemia are not linked pathophysiologically to the development of elevated Na(+)-Li+ CT activity.

Adult

Effect of insulin on oxidative and nonoxidative pathways of free fatty acid metabolism in human obesity.

The dose-response relationship between the plasma insulin concentration and oxidative and nonoxidative pathways of free fatty acid (FFA) metabolism was examined in 11 obese and 7 lean subjects using a stepwise insulin clamp technique in combination with indirect calorimetry and infusion of [1-14C]palmitate. The fasting plasma FFA concentration was elevated in obese subjects (793 +/- 43 vs. 642 +/- 39 mumol/l; P less than 0.01) and was associated with an increased basal rate of plasma FFA turnover, FFA oxidation, and nonoxidative FFA disposal, i.e., reesterification (all P less than 0.01). Suppression of plasma FFA turnover by physiological increments in plasma insulin was impaired in obese compared with lean subjects. However, plasma FFA turnover expressed per kilogram fat mass was normally suppressed by insulin in obese subjects. Although insulin suppressed plasma FFA oxidation to the same extent in lean and obese subjects, inhibition of total lipid oxidation by insulin was impaired in the obese group. Obese subjects had an enhanced basal rate of nonoxidative FFA disposal, which was suppressed less by physiological increments in plasma insulin compared with lean controls. Therefore, we conclude that 1) lipolysis in uncomplicated obesity is normally sensitive to insulin; the enhanced FFA flux is simply a consequence of the increased fat mass. 2) Nonoxidative FFA disposal expressed per lean body mass is enhanced in obese subjects and correlates with the increase in plasma FFA concentration and fat mass. 3) Enhanced oxidation of intracellular lipids contributes to the enhanced rate of total lipid oxidation in obese subjects.

Fatty Acids, Nonesterified

Effect of glycemic control on the overnight dexamethasone suppression test in patients with diabetes mellitus.

Because many of the clinical features associated with Cushing's syndrome are frequently found in patients with diabetes mellitus, diabetic patients are often evaluated for Cushing's syndrome. The initial test for Cushing's syndrome is the 1 mg overnight dexamethasone suppression test (DST), but its value as a screening test in diabetic subjects, especially those with poor glycemic control, has been questioned. To address this issue, an overnight DST was administered to 100 subjects with diabetes. Only 7 patients failed to suppress their plasma cortisol to less than 140 nmol/L (5.0 micrograms/dL), achieving a specificity of 93%. There was no relation between acute glycemic control (as measured by the mean of 4 serum glucose values obtained before receiving dexamethasone) or chronic glycemic control (as measured by glycohemoglobin) and false positive responses to the 1 mg overnight DST. The mean of the measures of acute glycemic control of the 7 subjects who had false positive results, 14.4 +/- 2.8 mmol/L, was not significantly different than that of the 93 subjects with normal responses, 13.2 +/- 3.3 mmol/L. Similarly, the mean glycohemoglobin of the subjects with false positive results, 12.8 +/- 2.4%, was not significantly different than that of the subjects with normal responses, 12.9 +/- 2.5%. There was no correlation between plasma cortisol after dexamethasone and glycohemoglobin (r = 0.05), and only a weak correlation with the mean serum glucose (r = 0.21). We conclude that the 1 mg overnight DST is a valid screening test for Cushing's syndrome in patients with diabetes, regardless of glycemic control.

Adult

Intermittent hypoglycemia impairs glucose counterregulation.

IDDM patients who maintain strict glycemic control have impaired counterregulatory hormone and symptomatic responses to hypoglycemia. To test the hypothesis that intermittent exposure to hypoglycemia plays an etiological role in these defective responses, we produced 4 consecutive daily episodes of hypoglycemia in 10 healthy, nondiabetic volunteers by using the insulin clamp technique. Fasting (5.3 +/- 0.1 vs. 5.4 +/- 0.1 mM) and nadir (2.3 +/- 0.1 vs. 2.4 +/- 0.1 mM) glucose levels achieved during insulin infusion did not differ on study days 1 and 4. In contrast, the glucose levels required to stimulate an increase in EPI (2.8 vs. 3.1 mM), glucagon (2.8 vs. 3.2 mM), cortisol (2.4 vs. 2.9 mM), GH (2.6 vs. 3.0 mM), and autonomic hypoglycemic symptoms (2.2 vs. 2.5 mM) were all significantly lower on study day 4 versus study day 1 (P < 0.005-0.05). Basal levels of EPI and cortisol, but not glucagon, GH, or NE also were reduced on the final study day. We conclude that intermittent hypoglycemia can result in attenuation of the hormonal and symptomatic responses to insulin-induced hypoglycemia and may contribute to the defective counterregulatory responses in patients with well-controlled IDDM.

Adult

Alterations in glucose metabolism during menstrual cycle in women with IDDM.

OBJECTIVE: To examine the hormonal mechanisms underlying the variability in glycemic control during the different phases of the menstrual cycle in women with insulin-dependent diabetes mellitus (IDDM). RESEARCH DESIGN AND METHODS: Hyperglycemic (11.7 +/- 0.1 mM), hyperinsulinemic (24 +/- 3 mU/L) clamp studies were performed in 16 women with IDDM during the follicular (day 8 +/- 1) and luteal (day 23 +/- 1) phases of the menstrual cycle. Seven of the patients (group 1) experienced worsening glucose control during the luteal phase, whereas nine patients (group 2) did not. RESULTS: In group 1, glucose metabolism fell from 30.2 +/- 3.8 mumol.kg-1.min-1 during the follicular phase to 24.5 +/- 2.0 mumol.kg-1.min-1 during the luteal phase (P = 0.09), whereas in group 2 it increased from 18.5 +/- 1.2 to 23.2 +/- 2.3 mumol.kg-1.min-1 (P = 0.03). The decrease in glucose metabolism during the luteal phase in patients in group 1 was associated with a significant rise in the serum estradiol levels from the follicular to luteal phase (164 +/- 39 vs. 352 +/- 59 pM, P = 0.006), whereas this rise was not observed in group 2 (334 +/- 156 vs. 423 +/- 74 pM, NS). Changes in other reproductive hormones (progesterone, testosterone, dihydrotestosterone, androstenedione, luteinizing hormone, follicular-stimulating hormone, or prolactin) were not related to the differences in glucose uptake in the two groups. CONCLUSIONS: 1) Marked heterogeneity in glucose metabolism is seen throughout the menstrual cycle in women with IDDM, 2) a subgroup of patients exhibits worsening premenstrual hyperglycemia and a decline in insulin sensitivity during the luteal phase, and 3) the deterioration in glucose uptake in this subgroup was associated with a greater increment in estradiol levels from the follicular to the luteal phase.

Adult

Effect of sulphonylurea on glucose-stimulated insulin secretion in healthy and non-insulin dependent diabetic subjects: a dose-response study.

The effect of a rapid-acting sulphonylurea, glipizide, on the dose-response relationship between the beta-cell response (insulin and C-peptide secretion) and the ambient plasma glucose concentration was examined in 12 healthy and 6 non-insulin-dependent diabetic subjects. The subjects participated in two sets of experiments which were performed in random order: (A) four hyperglycaemic clamp studies, during which the plasma glucose concentration was raised for 120 min by 1 (only in healthy subjects), 3, 7, and 17 mmol/l; and (B) the same four hyperglycaemic clamp studies preceded by ingestion of 5 mg glipizide. All subjects participated in a further study, in which glipizide was ingested and the plasma glucose concentration was maintained at the basal level. In control subjects in the absence of glipizide, the first-phase plasma insulin response (0-10 min) increased progressively with increasing plasma glucose concentration up to 10 mmol/l, above which it tended to plateau. Glipizide augmented the first-phase insulin response without changing the slope of the regression line relating plasma insulin to glucose concentrations. The second-phase plasma insulin response (20-120 min) increased linearly with increasing hyperglycaemia (r = 0.997). Glipizide alone increased the plasma insulin response by 180 pmol/l. A similar increase in plasma insulin response following glipizide was observed at each hyperglycaemic step, indicating that glipizide did not affect the sensitivity of the beta-cell to glucose. First-phase insulin secretion was reduced in the type 2 (non-insulin-dependent) diabetic patients, and was not influenced by glipizide.(ABSTRACT TRUNCATED AT 250 WORDS)

Adult

Mechanism of metformin action in obese and lean noninsulin-dependent diabetic subjects.

The effect of metformin on glucose metabolism was examined in eight obese (percent ideal body weight, 151 +/- 9%) and six lean (percent ideal body weight, 104 +/- 4%) noninsulin-dependent diabetic (NIDD) subjects before and after 3 months of metformin treatment (2.5 g/day). Fasting plasma glucose (11.5-8.8 mmol/L), hemoglobin-A1c (9.8-7.7%), oral glucose tolerance test response (20.0-17.0 mmol/L; peak glucose), total cholesterol (5.67-4.71 mmol/L), and triglycerides (2.77-1.52 mmol/L) uniformly decreased (P less than 0.05-0.001) after metformin treatment; fasting plasma lactate increased slightly from baseline (1.4 to 1.7 mmol/L; P = NS). Body weight decreased by 5 kg in obese NIDD subjects, but remained constant in lean NIDD. Basal hepatic glucose production declined in all diabetics from 83 to 61 mg/m2.min (P less than 0.01), and the decrease correlated (r = 0.80; P less than 0.01) closely with the fall in fasting glucose concentration. Fasting insulin (115 to 79 pmol/L) declined (P less than 0.05) after metformin. During a 6.9 mmol/L hyperglycemic clamp, glucose uptake increased in every NIDD subject (113 +/- 15 to 141 +/- 12 mg/m2.min; P less than 0.001) without a change in the plasma insulin response. During a euglycemic insulin clamp, total glucose uptake rose in obese NIDD subjects (121 +/- 10 to 146 +/- 9 mmol/m2.min; P less than 0.05), but decreased slightly in lean NIDD (121 +/- 10 to 146 +/- 0.5; P = NS). Hepatic glucose production was suppressed by more than 80-90% in all insulin clamp studies before and after metformin treatment. In conclusion, metformin lowers the fasting plasma glucose and insulin concentrations, improves oral glucose tolerance, and decreases plasma lipid levels independent of changes in body weight. The improvement in fasting glucose results from a reduction in basal hepatic glucose production. Metformin per se does not enhance tissue sensitivity to insulin in NIDD subjects. The improvement in glucose metabolism under hyperglycemic, but not euglycemic, conditions suggests that metformin augments glucose-mediated glucose uptake. Metformin has no stimulatory effect on insulin secretion.

Blood Glucose

Effects of glyburide on in vivo insulin-mediated glucose disposal.

The purpose of this study was to examine the effects of glyburide on peripheral (muscle) and hepatic insulin sensitivity in patients with non-insulin-dependent diabetes mellitus (NIDDM) and insulin-dependent diabetes mellitus (IDDM) as well as in healthy control subjects. In protocol 1, 10 patients with NIDDM and seven young healthy control subjects were studied. Changes in insulin sensitivity (40 mU/m2.min euglycemic insulin clamp), hepatic glucose production (3-[3H]glucose turnover), and insulin secretion (+125 mg/dL hyperglycemic clamp) were measured before and after 3 months (in patients with NIDDM) and 6 weeks (in young control subjects) of glyburide therapy. In protocol 2, five patients with IDDM and eight patients with insulin-treated NIDDM were evaluated before and after two months of glyburide therapy (20 mg per day). Changes in daily insulin requirements, 24-hour plasma glucose profiles, glycohemoglobin, glucagon-stimulated C-peptide secretion, insulin sensitivity, and hepatic glucose production were measured. In protocol 1, glyburide significantly improved insulin sensitivity (p less than 0.01) and insulin secretion (p less than 0.01) in the NIDDM patients. The elevated rates of hepatic glucose production (2.4 +/- 0.3 mg/kg.min) were reduced after glyburide therapy (1.7 +/- 0.2 mg/kg.min; p less than 0.01) and were highly correlated with an improvement in fasted plasma glucose levels (r = 0.92; p less than 0.001). Insulin sensitivity also improved in the young healthy control subjects after glyburide therapy (6.5 +/- 0.5 to 7.6 +/- 0.7 mg/kg.min; p less than 0.05). In protocol 2, glyburide treatment produced no change in daily insulin requirement (54 +/- 8 versus 53 +/- 7 units per day), mean 24-hour glucose levels (177 +/- 20 versus 174 +/- 29 mg/dL), glycohemoglobin (10.1 +/- 1.0 percent versus 9.5 +/- 7 percent), C-peptide secretion, insulin sensitivity, or basal hepatic glucose production (p values not significant) in the IDDM patients. In contrast, the insulin-treated NIDDM patients had significant reductions in mean daily insulin requirement (72 +/- 6 versus 58 +/- 9 units per day; p = 0.05), mean 24-hour plasma glucose levels (153 +/- 10 to 131 +/- 5 mg/dL; p less than 0.05), and glycohemoglobin levels (10.3 +/- 0.7 percent to 8.0 +/- 0.4 percent; p less than 0.05) and an improvement in C-peptide secretion (0.24 +/- 0.07 to 0.44 +/- 0.09 pmol/mL; p = 0.08). Stimulated C-peptide levels were highly correlated with a reduction in insulin dose observed during the 2-month treatment period (r = 0.93; p less than 0.001). Insulin sensitivity improved slightly but not significantly after glyburide treatment.(ABSTRACT TRUNCATED AT 400 WORDS)

Adult

Glycemic control and neuropsychologic function during hypoglycemia in patients with insulin-dependent diabetes mellitus.

STUDY OBJECTIVE: To evaluate counterregulatory hormone secretion and neuropsychologic function during hypoglycemia in two groups of patients with insulin-dependent diabetes mellitus: those with good and those with poor glycemic control. DESIGN: Cross-sectional physiologic and neuropsychologic evaluation. SETTING: Clinical research unit of a referral-based diabetes clinic. PATIENTS: Eight patients with well controlled diabetes (glycosylated hemoglobin [HgbA1], 8.0% +/- 0.2%), nine patients with poorly controlled diabetes (HgbA1, 11.8% +/- 0.4%), and ten healthy persons. INTERVENTIONS: The insulin clamp technique was used to produce a stepwise decline in plasma glucose from 5.0 to 2.2 mmol/L over 3 hours. Tests of attention, memory, visual-spatial skills, visual-motor skills, and global cognition; a symptom survey; and counterregulatory hormone measurements were done at glucose decrements of 0.6 mmol/L. MEASUREMENTS AND MAIN RESULTS: Patients with well controlled diabetes did not differ statistically from those with poorly controlled diabetes regarding the median glucose threshold for dysfunction in visual-spatial skills, visual-motor skills, or global cognition. In contrast, glycemic thresholds for an increase in adrenergic symptoms and release of epinephrine, norepinephrine, cortisol, and growth hormone were lower in patients with well controlled diabetes than in those with poorly controlled diabetes (P less than 0.05 to 0.005). CONCLUSIONS: Despite alterations in the glucose levels at which adrenergic symptoms of hypoglycemia occur and counterregulation begins, there is no statistically detectable change in the glucose threshold at which cognitive deterioration occurs in diabetic persons with strict glycemic control. This dissociation of neuropsychologic function and counterregulatory hormone secretion suggests that diabetic patients with good glycemic control are at increased risk for developing cognitive impairment before the onset of adrenergic symptoms during hypoglycemia.

Adult

Indirect calorimetry: methodological and interpretative problems.

The technique of indirect calorimetry is now widely used to examine rates of energy production and substrate oxidation in humans. Although the basic principles of indirect calorimetry are well established, it is important to recognize that there are several potential pitfalls in the methodology and data interpretation that must be appreciated to properly understand and apply the results derived from this technique. In particular, one must recognize that the fundamental measurement provided by indirect calorimetry is the net disappearance rate of a substrate regardless of the metabolic interconversions that the substrate may undergo before its disappearance from its metabolic pool. Under most circumstances, direct oxidation represents the major route by which a substrate disappears from its metabolic pool, and the two terms are often used interchangeably. However, under conditions when rates of gluconeogenesis, ketogenesis, or lipogenesis are elevated, the presumed equivalence between oxidation and disappearance may no longer apply, even though the actual measurements derived from indirect calorimetry remain valid. When indirect calorimetry is combined with other in vivo metabolic techniques (e.g., the insulin clamp or radioisotope turnover methods) it can provide a powerful tool for noninvasively examining complex metabolic processes.

Body Temperature Regulation

Leucine metabolism in IDDM. Role of insulin and substrate availability.

The effect of insulin on plasma amino acid concentrations and leucine metabolism was examined in 18 healthy nondiabetic young volunteers and in 7 subjects with insulin-dependent diabetes mellitus (IDDM) with the euglycemic insulin-clamp technique (40 mU.m-2.min-1) in combination with [1-14C]leucine. All diabetic subjects were studied while in poor metabolic control (fasting glucose 13.3 +/- 1.1 mM; HbA1c 10.8 +/- 0.2%) and again after 2 mo of intensified insulin therapy (fasting glucose 7.2 +/- 0.5 mM; HbA1c 8.0 +/- 0.2%). Insulin-mediated total-body glucose uptake in poorly controlled diabetic subjects (3.6 +/- 0.5 mg.kg-1.min-1) was significantly reduced compared with control subjects (7.5 +/- 0.2 mg.kg-1.min-1; P less than .001) and improved slightly after insulin therapy (4.8 +/- 0.3 mg.kg-1.min-1; P less than .05), although it still remained significantly lower than in control subjects (P less than .01). During the insulin-clamp study performed in subjects with poorly controlled IDDM, endogenous leucine flux (ELF), leucine oxidation (LO), and nonoxidative leucine disposal (NOLD) all decreased (50.1 +/- 2.0 to 26.4 +/- 0.4; 9.2 +/- 0.4 to 6.0 +/- 0.3; 40.9 +/- 2.0 to 20.4 +/- 2.0 mumol.m-2.min-1, respectively) to the same extent as in control subjects. After 2 mo of intensified insulin therapy, the effect of acute hyperinsulinemia on ELF, LO, and NOLD was comparable to that of control subjects, whereas insulin-stimulated glucose metabolism was still impaired. To examine the effect of substrate availability on leucine turnover, well-regulated IDDM and control subjects underwent a repeat insulin-clamp study combined with a balanced amino acid infusion designed to increase circulating plasma amino acid levels approximately twofold. Under these conditions, NOLD was equally enhanced above baseline in both control and IDDM subjects (P less than .01), whereas ELF was inhibited to a greater extent (P less than .01) than during the insulin clamp performed without amino acid infusion (control vs. diabetic subjects, NS). In conclusion, insulin-mediated glucose metabolism is severely impaired in subjects with both poorly controlled and well-controlled IDDM, whereas the effect of acute insulin infusion on leucine turnover is normal, and combined hyperaminoacidemia/hyperinsulinemia stimulated NOLD to a similar extent in both IDDM and control subjects.

Adult

Hyperinsulinemia and its sequelae.

It is now well recognized that insulin resistance and/or hyperinsulinemia are characteristic of a number of common human disease states including obesity, non-insulin dependent diabetes mellitus (NIDDM), essential hypertension, and atherosclerotic cardiovascular disease. More recent evidence suggests that impaired insulin action and elevated levels of circulating insulin may also be present in a substantial proportion of apparently healthy nonobese individuals. Considerable attention is now being focused on the potential long term adverse consequences of elevated circulating insulin levels. In particular, the frequent concurrence of these clinical disorders of carbohydrate metabolism, lipid metabolism, and vascular disease has led to the hypothesis that insulin resistance and the ensuing hyperinsulinemia may be a common pathophysiologic factor in the etiology of these disease states. In this review, we will examine the evidence for this hypothesis with particular attention to the adverse effects of chronic hyperinsulinemia.

Arteriosclerosis

Fasting hyperglycemia in non-insulin-dependent diabetes mellitus: contributions of excessive hepatic glucose production and impaired tissue glucose uptake.

The factors responsible for fasting hyperglycemia were investigated in 77 normal weight non-insulin-dependent diabetic (NIDD) and 72 age-, sex-, and weight-matched control individuals. In diabetic subjects with mild fasting hyperglycemia (less than 140 mg/dL) hepatic glucose production (1.85 +/- 0.03 mg/kg.min) was similar to controls (1.84 +/- 0.02); the major factor responsible for the elevated basal glucose level in the diabetic group was a decreased efficiency in the tissue uptake of glucose, as reflected by a 30% decline in the rate of glucose clearance (1.56 +/- 0.03 v 2.00 +/- 0.03 mL/kg.min, P less than .001). In contrast, in diabetic subjects with fasting plasma glucose concentrations above 140 mg/dL, basal hepatic glucose production was significantly elevated (2.42 +/- 0.08 mg/kg.min, P less than .001) and correlated closely with the increase in fasting plasma glucose concentration (r = .796, P less than .001). The basal rate of whole body glucose clearance reached a plateau value at fasting glucose levels of 160 to 180 mg/dL and did not contribute to the further rise in fasting plasma glucose concentrations above 160 to 180 mg/dL. Decreased efficiency of tissue glucose uptake is responsible the development of fasting hyperglycemia in patients with mild NIDDM (fasting plasma glucose less than 140 mg/dL). As the diabetic state worsens, an increase in basal hepatic glucose production is the major factor responsible for the progressive rise in fasting glucose levels.

Blood Glucose

Increased insulin secretion in puberty: a compensatory response to reductions in insulin sensitivity.

Recent studies have suggested that insulin action is reduced during puberty in normal children. To determine whether such resistance leads to excessive insulin secretion, we used the hyperglycemic clamp technique to produce a standard hyperglycemic stimulus (125 mg/dl above fasting levels for 120 minutes) in 9 preadolescent and 14 adolescent healthy children and in 14 normal adults. Fasting plasma insulin and C-peptide concentrations were higher in adolescents than in preadolescents and adults (p less than or equal to 0.02). Despite identical glucose increments during the glucose clamp procedure, both first- and second-phase plasma insulin and C-peptide responses were also markedly greater in adolescents than in preadolescents or adults (p less than 0.01 vs. other groups). Despite sharply increased insulin responses in adolescents, the amount of exogenous glucose required to maintain hyperglycemia was similar in all three groups. Insulin responses in the children were directly correlated with fasting plasma levels of insulin-like growth factor I (r = 0.60 to 0.70, p less than 0.01). We conclude that glucose-stimulated insulin secretion is normally increased during puberty, a response that may compensate for puberty-induced defects in insulin sensitivity.

Adolescent

Menstrual cyclicity has a profound effect on glucose homeostasis.

Results from oral glucose tolerance tests have frequently demonstrated a deterioration in glucose metabolism during the luteal phase of the menstrual cycle. To examine this issue further, eight women underwent both midfollicular (days 3 to 10) and midluteal (days 20 to 25) phase hyperglycemic clamp studies (+125 mg glucose/dl) after an overnight fast. Glucose levels rose from 83 +/- 1 to 207 +/- 2 and 87 +/- 1 to 207 +/- 2 mg/dl, respectively, during the follicular and luteal phases. The basal (6 +/- 1 versus 7 +/- 1 microU/ml) and glucose-stimulated (42 +/- 5 versus 43 +/- 6 microU/ml) insulin responses were similar in the follicular and luteal studies. However, glucose uptake was significantly higher during the follicular versus the luteal phase (10.99 +/- 0.97 versus 6.93 +/- 0.37 mg/kg-min; P less than 0.01), as was the ratio of glucose uptake to insulin concentration (30.0 +/- 5.5 versus 19.7 +/- 3.7, P less than 0.01). The authors conclude that: (1) Glucose metabolism is impaired in the luteal phase of the menstrual cycle; (2) This defect cannot be explained by differences in the plasma insulin response; and (3) This impairment in the ability to promote glucose uptake under hyperglycemic conditions suggests a defect in the mass action effect of glucose per se.

Adult

Insulin resistance and hyperinsulinemia in patients with thalassemia major treated by hypertransfusion.

Diabetes mellitus in patients receiving hypertransfusion for thalassemia major is usually attributed to damage to beta cells. To determine whether iron overload leads to insulin resistance before the development of insulin deficiency, insulin was infused (by euglycemic insulin-clamp technique) into 12 children with thalassemia (4 of whom were prepubertal, and 8 pubertal) who had normal or only moderately impaired glucose tolerance and who were receiving chelation therapy. Although insulin-stimulated glucose metabolism in the prepubertal children with thalassemia was similar to that in controls (normal prepubertal children) (319 +/- 23 vs. 314 +/- 41 mg per square meter of body-surface area per minute, P not significant), the response to insulin was markedly impaired in the pubertal children with thalassemia (155 +/- 18 vs. 224 +/- 15 mg per square meter per minute in normal pubertal controls, P less than 0.01). Plasma insulin levels rose excessively after oral glucose administration in the pubertal subjects with thalassemia, but not in the prepubertal patients (P less than 0.001). Furthermore, in response to a standard hyperglycemic stimulus, insulin levels in the pubertal patients rose to two to three times greater than normal and C-peptide levels became significantly elevated. Our data suggest that insulin resistance and increased insulin secretion develop in older children with thalassemia treated with long-term hypertransfusion therapy before the development of diabetes.

Adolescent

Oxidative and non-oxidative glucose metabolism in non-obese type 2 (non-insulin-dependent) diabetic patients.

Insulin resistance is a common feature of Type 2 (non-insulin-dependent) diabetes mellitus. This defect in insulin-mediated glucose metabolism could result from a defect in either glucose oxidation or non-oxidative glucose disposal. To examine this question, euglycaemic insulin clamp studies were performed in 16 normal weight Type 2 and 11 age-matched control subjects. In Type 2 diabetic patients the fasting plasma glucose concentration, 8.39 +/- 0.50 mmol/l, was allowed to decline (over 54 +/- 6 min) to 5.33 +/- 0.11 mmol/l before starting the insulin clamp. Total body glucose uptake was significantly decreased in Type 2 diabetic patients vs control subjects (148 +/- 15 vs 264 +/- 25 mg/min.m2, p less than 0.001). Both total glucose oxidation (59 +/- 6 vs 89 +/- 6 mg/min.m2, p less than 0.005) and non-oxidative glucose disposal (89 +/- 15 vs 179 +/- 24 mg/min.m2, p less than 0.005) were significantly reduced in the Type 2 diabetic patients. Basal glucose oxidation was also reduced in the Type 2 diabetic patients (22 +/- 3 vs 38 +/- 5 mg/min.m2, p less than 0.01). In conclusion, during the postabsorptive state and under conditions of euglycaemic hyperinsulinaemia, impairment of glucose oxidation and non-oxidative glucose disposal both contribute to the insulin resistance observed in normal weight Type 2 diabetic patients. Since lipid oxidation was normal in this group of diabetic patients, excessive non-esterified fatty acid oxidation cannot explain the defects in glucose disposal.

Blood Glucose