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H Shamoon

Publications and source records attributed to H Shamoon.

At least 19 recordsLinked to original sources

Efficacy, safety, and dose-response characteristics of glipizide gastrointestinal therapeutic system on glycemic control and insulin secretion in NIDDM. Results of two multicenter, randomized, placebo-controlled clinical trials. The Glipizide Gastrointestinal Therapeutic System Study Group.

OBJECTIVE: To investigate the efficacy, safety, and dose-response characteristics of an extended-release preparation of glipizide using the gastrointestinal therapeutic system (GITS) on plasma glucose, glycosylated hemoglobin (HbA1c), and insulin secretion to a liquid-mixed meal in NIDDM patients. RESEARCH DESIGN AND METHODS: Two prospective, randomized, double-blind, placebo-controlled, multicenter clinical trials were performed in 22 sites and 347 patients with NIDDM (aged 59 +/- 0.6 years; BMI, 29 +/- 0.3 kg/m2; known diabetes duration, 8 +/- 0.4 years) were studied. Each clinical trial had a duration of 16 weeks with a 1-week washout, 3-week single-blind placebo phase, 4-week titration to a fixed dose, and 8-week maintenance phase at the assigned dose. In the first trial, once-daily doses of 5, 20, 40, or 60 mg glipizide GITS were compared with placebo in 143 patients. In the second trial, doses of 5, 10, 15, or 20 mg of glipizide GITS were compared with placebo in 204 patients. HbA1c, fasting plasma glucose (FPG), insulin, C-peptide, and glipizide levels were determined at regular intervals throughout the study. Postprandial plasma glucose (PPG), insulin, and C-peptide also were determined at 1 and 2 h after a mixed meal (Sustacal). RESULTS: All doses of glipizide GITS in both trials produced significant reductions from placebo in FPG (range -57 to -74 mg/dl) and HbA1c (range -1.50 to -1.82%). Pharmacodynamic analysis indicated a significant relationship between plasma glipizide concentration and reduction in FPG and HbA1c over a dose range of 5-60 mg, with maximal efficacy achieved at a dose of 20 mg for FPG and at 5 mg for HbA1c. PPG levels were significantly lower, and both postprandial insulin and C-peptide levels significantly higher in patients treated with glipizide GITS compared with placebo. The percent reduction in FPG was comparable across patients with diverse demographic and clinical characteristics, including those with entry FPG > or = 250 mg/dl, resulting in greater absolute decreases in FPG and HbA1c in patients with the most severe hyperglycemia. Despite the forced titration to a randomly assigned dose, only 11 patients in both studies discontinued therapy because of hypoglycemia. Glipizide GITS did not alter lipids levels or produce weight gain. CONCLUSIONS: The once-daily glipizide GITS 1) lowered HbA1c, FPG, and PPG over a dose range of 5-60 mg, 2) was maximally effective at 5 mg (using HbA1c) or 20 mg (using FPG) based on pharmacokinetic and pharmacodynamic relationships, 3) maintained its effectiveness in poorly controlled patients (those with entry FPG > or = 250 mg/dl), 4) was safe and well tolerated in a wide variety of patients with NIDDM, and 5) did not produce weight gain or adversely affect lipids.

Adult

Increased lipid oxidation but normal muscle glycogen response to epinephrine in humans with IDDM.

The effects of physiological increments in epinephrine and insulin on glucose production (GP), skeletal muscle glycogen metabolism, and substrate oxidation were studied in eight insulin-dependent diabetes mellitus (IDDM) and nine control subjects. Epinephrine was coinfused for the final 120 min of a 240-min euglycemic, hyperinsulinemic clamp. In both groups, insulin increased glucose uptake, glycogen synthesis, and whole body carbohydrate (CHO) oxidation and inhibited GP (by 70-80%) and lipid oxidation (by approximately 50%), whereas epinephrine antagonized the effect of insulin on glucose uptake and glycogen synthesis. In contrast, GP increased in IDDM subjects (P < 0.02) but remained suppressed by insulin in controls. CHO oxidation fell (1.37 +/- 0.25 vs. 2.08 +/- 0.32 mg.kg-1.min-1) and lipid oxidation increased to baseline in IDDM subjects, with increments in plasma free fatty acids (FFA) and glycerol. In contrast, in controls, plasma FFA and glycerol remained suppressed and lipid oxidation decreased further with epinephrine (P < 0.005). Epinephrine completely reversed insulin's activation of muscle glycogen synthase in both groups. Thus, during hyperinsulinemia, the hepatic response to epinephrine in IDDM subjects may be dependent on activation of lipid oxidation. Skeletal muscle glycogen metabolism is exquisitely sensitive to epinephrine despite the presence of hyperinsulinemia.

Adult

Oral vanadyl sulfate improves insulin sensitivity in NIDDM but not in obese nondiabetic subjects.

We compared the effects of oral vanadyl sulfate (100 mg/day) in moderately obese NIDDM and nondiabetic subjects. Three-hour euglycemic-hyperinsulinemic (insulin infusion 30 mU / m / min) clamps were performed after 2 weeks of placebo and 3 weeks of vanadyl sulfate treatment in six nondiabetic control subjects (age 37 +/- 3 years; BMI 29.5 +/- 2.4 kg/m2 ) and seven NIDDM subjects (age 53 +/- 2 years; BMI 28.7 +/-1.8 kg/m2). Glucose turnover ([3-3 H]glucose), glycolysis from plasma glucose, glycogen synthesis, and whole-body carbohydrate and lipid oxidation were evaluated. Decreases in fasting plasma glucose (by approximately 1.7 mmol/l) and HbAlc (both P < 0.05) were observed in NIDDM subjects during treatment; plasma glucose was unchanged in control subjects. In the latter, the glucose infusion rate (GIR) required to maintain euglycemia (40.1 +/- 5.7 and 38.1 +/- 4.8 micromol / kg fat-free mass FFM / min) and glucose disposal (Rd) (41.7 +/- 5.7 and 38.9 +/-4.7 micromol / kg FFM / min were similar during placebo and vanadyl sulfate administration, respectively. Hepatic glucose output (HGO) was completely suppressed in both studies. In contrast, in NIDDM subjects, vanadyl sulfate increased GIR approximately 82% (17.3 +/- 4.7 to 30.9 +/- 2.7 micromol / kg FFM / min, P < 0.05); this improvement in insulin sensitivity was due to both augmented stimulation of Rd (26.0 +/-4.0 vs. 33.6 +/- 2.22 micromol / kg FFM / min, P < 0.05) and enhanced suppression of HGO (7.7 +/- 3.1 vs. 1.3 +/- 0.9 micromol / kg FFM / min, P < 0.05). Increased insulin-stimulated glycogen synthesis accounted for >80% of the increased Rd with vanadyl sulfate (P < 0.005), but plasma glucose flux via glycolysis was unchanged. In NIDDM subjects, vanadyl sulfate was also associated with greater suppression of plasma free fatty acids (FFAs) (P < 0.01) and lipid oxidation (P < 0.05) during clamps. The reduction in HGO and increase in Rd were both highly correlated with the decline in plasma FFA concentrations during the clamp period (P < 0.001). In conclusion, small oral doses of vanadyl sulfate do not alter insulin sensitivity in nondiabetic subjects, but it does improve both hepatic and skeletal muscle insulin sensitivity in NIDDM subjects in part by enhancing insulin's inhibitory effect on lipolysis. These data suggest that vanadyl sulfate may improve a defect in insulin signaling specific to NIDDM.

Administration, Oral

Assessment of documented foot examinations for patients with diabetes in inner-city primary care clinics.

BACKGROUND: The established guidelines for a diabetes foot examination include assessing circulatory, skin, and neurological status to detect problems early and reduce the likelihood of amputation. OBJECTIVE: To determine documented adherence with guidelines for foot examinations. SETTING: Four clinics in underserved areas. METHODS: Charts of 350 diabetic patients, identified by billing code, were reviewed for foot examination documentation. A documented foot examination was defined as assessing at least two of the three components of a foot examination. The review determined the periodicity and prevalence of foot examinations, referrals to a podiatrist or vascular surgeon during a 2-year period, and risk factors for foot complications. Stepwise logistic regression was used to determine whether risk factors for foot complications predicted foot examination status. RESULTS: The patients had a mean age and duration of diabetes of 57.7 and 8.8 years, respectively; 86% were black or Hispanic. There was no indication of foot examination or referral for 55.7% of the patients during the 2-year period. Patients with foot care referrals were more likely to have foot examinations by their primary care providers (P = .0001). There was almost a fourfold increase in the odds that patients with diagnosed peripheral vascular disease had foot examinations, with twofold greater odds for each 25-year increase in age. CONCLUSIONS: Populations at risk of diabetic complications are unlikely to have foot examinations in their primary medical care, but having peripheral vascular disease increases the likelihood. Efforts are needed to improve adherence to foot examination guidelines for patients with diabetes from underserved populations.

Ambulatory Care Facilities

Oral vanadyl sulfate improves hepatic and peripheral insulin sensitivity in patients with non-insulin-dependent diabetes mellitus.

We examined the in vivo metabolic effects of vanadyl sulfate (VS) in non-insulin-dependent diabetes mellitus (NIDDM). Six NIDDM subjects treated with diet and/or sulfonylureas were examined at the end of three consecutive periods: placebo for 2 wk, VS (100 mg/d) for 3 wk, and placebo for 2 wk. Euglycemic hyperinsulinemic (30 mU/m2.min) clamps and oral glucose tolerance tests were performed at the end of each study period. Glycemic control at baseline was poor (fasting plasma glucose 210 +/- 19 mg/dl; HbA1c 9.6 +/- 0.6%) and improved after treatment (181 +/- 14 mg/dl [P < 0.05], 8.8 +/- 0.6%, [P < 0.002]); fasting and post-glucose tolerance test plasma insulin concentrations were unchanged. After VS, the glucose infusion rate during the clamp was increased (by approximately 88%, from 1.80 to 3.38 mg/kg.min, P < 0.0001). This improvement was due to both enhanced insulin-mediated stimulation of glucose uptake (rate of glucose disposal [Rd], +0.89 mg/kg.min) and increased inhibition of HGP (-0.74 mg/kg.min) (P < 0.0001 for both). Increased insulin-stimulated glycogen synthesis (+0.74 mg/kg.min, P < 0.0003) accounted for > 80% of the increased Rd after VS, and the improvement in insulin sensitivity was maintained after the second placebo period. The Km of skeletal muscle glycogen synthase was lowered by approximately 30% after VS treatment (P < 0.05). These results indicate that 3 wk of treatment with VS improves hepatic and peripheral insulin sensitivity in insulin-resistant NIDDM humans. These effects were sustained for up to 2 wk after discontinuation of VS.

Administration, Oral

Counterregulation of hypoglycemia. Skeletal muscle glycogen metabolism during three hours of physiological hyperinsulinemia in humans.

We examined the role of skeletal muscle in counterregulation of hypoglycemia (3.4 +/- 0.1 mmol/l) in 12 nondiabetic individuals (age 26 +/- 1 years, body mass index 24.2 +/- 0.7 kg/m2) during physiological hyperinsulinemia (280 +/- 25 pmol/l) compared with euglycemia (4.8 +/- 0.1 mmol/l). During hypoglycemia, hepatic glucose output (3-[3H]-glucose) was greater (7.72 +/- 2.72 mumol.kg-1.min-1, P < 0.01), glucose uptake was approximately 49% lower (21.20 +/- 3.55 mumol.kg-1.min-1, P < 0.005), and glucose clearance was reduced (P < 0.002) compared with euglycemia. Rates of flux of plasma-derived glucosyl units through glycolysis were similar in the two experiments, while glycogen synthetic rates were significantly reduced during hypoglycemia (P < 0.01) and accounted entirely for the reduction in glucose disposal. The insulin-induced activation of skeletal muscle glycogen synthase (reflected by Km decline by approximately 50% from 0.408 +/- 0.056 mmol/l and fractional velocity increase by approximately twofold from 21.8 +/- 2.7%) was completely abolished in hypoglycemia. In concert, glycogen phosphorylase activity increased during hypoglycemia by approximately 40% (P = 0.0001). Hypoglycemia resulted in seven- to eightfold increments in plasma epinephrine (P < 0.0001) and growth hormone (P < 0.001) and 40-60% increments in plasma glucagon (P < 0.005) and cortisol (P < 0.05). We conclude that, in this model of mild hypoglycemia of moderate duration, the majority of the glucose made available during the counterregulatory process (approximately 60-70%) is due to the limitation of glucose disposal, mostly via decreased glycogen synthetic activity in skeletal muscle.

Adult

Recovery of epinephrine response but not hypoglycemic symptom threshold after intensive therapy in type 1 diabetes.

PURPOSE: Patients with intensively treated insulin-dependent diabetes mellitus (IDDM) exhibit more severe defects in counterregulatory hormone secretion and symptom recognition during hypoglycemia than do conventionally treated patients. In this prospective study in patients with preexisting defects in counterregulation, we examined the induction and reversibility of impaired symptomatic and adrenomedullary responses to hypoglycemia in 5 patients with IDDM (diabetes duration of 2 to 16 years; aged 19 to 36 years; 3 women, 2 men) who were receiving intensive therapy. METHODS: Counterregulatory responses were assessed by using a single-step (approximately 2.8 mmol/L plasma glucose) and multiple-step (from approximately 5 mmol/L to 2.2 mmol/L plasma glucose) clamped hypoglycemia procedure. Patients were first studied after a stable period of conventional insulin therapy (glycosylated hemoglobin [HbA1c] 9.5 +/- 1.2%), then after 3 to 5 months of intensive therapy (HbA1c 6.6 +/- 0.2%), and a third time after resuming conventional therapy (HbA1c 8.7 +/- 0.9%). RESULTS: Intensive therapy was associated with a 44% decline (P < 0.01) in the average plasma epinephrine increase during hypoglycemia, and the plasma glucose level required to stimulate epinephrine secretion fell from 3.7 +/- 0.2 to 3.0 +/- 0.1 mmol/L (P < 0.01). The threshold, but not the magnitude, of the plasma norepinephrine response was similarly altered. Hypoglycemic symptoms also decreased in intensity (by 67%, P < 0.01), and the glucose level required for symptom activation fell from 3.4 +/- 0.3 to 2.7 +/- 0.2 mmol/L, P < 0.01). When conventional therapy was resumed, the abnormalities in the epinephrine response due to intensive therapy were almost completely reversed. However, the reduction in symptoms and the altered thresholds for plasma norepinephrine were not reversed. CONCLUSIONS: There is dissociation between the treatment-associated defects in hypoglycemia counterregulation in IDDM, and an increase in average glycemia produced by a return to conventional insulin therapy is not sufficient to reverse hypoglycemia unawareness worsened by intensive therapy.

Adult

Increased epinephrine and skeletal muscle responses to hypoglycemia in non-insulin-dependent diabetes mellitus.

We evaluated skeletal muscle counterregulation during hypoglycemia in nine subjects with non-insulin-dependent diabetes mellitus (NIDDM) (HbA1c 9.4 +/- 0.5%, nl < 6.2%) compared with six normal controls, matched for age (51 +/- 3 and 49 +/- 5 yr, respectively) and body mass index (27.3 +/- 1.2 and 27.0 +/- 2.1 kg/m2). After 60 min of euglycemia (plasma insulin approximately 140 microU/ml), plasma glucose was lowered to 62 +/- 2 mg/dl by 120 min. Hypoglycemia induced a 2.2-fold greater increase in plasma epinephrine in NIDDM (P < 0.001), while the plasma glucagon response was blunted (P < 0.01). Hepatic glucose output ([3H-3]glucose) suppressed similarly during euglycemia, but during hypoglycemia was greater in NIDDM (P < 0.005). Conversely, glucose uptake during euglycemia was 150% greater in controls (P < 0.01) and remained persistently higher than in NIDDM during hypoglycemia. In NIDDM, plasma FFA concentrations were approximately fivefold greater (P < 0.001), and plasma lactate levels were approximately 40% higher than in controls during hypoglycemia (P < 0.01); the rates of glycolysis from plasma glucose were similar in the two groups despite a 49% lower rate of glucose uptake in NIDDM (3.4 +/- 0.9 vs. 6.9 +/- 1.3 mg/kg per minute, P < 0.001). Muscle glycogen synthase activity fell by 42% with hypoglycemia (P < 0.01) in NIDDM but not in controls. In addition, glycogen phosphorylase was activated by 56% during hypoglycemia in NIDDM only (P < 0.01). Muscle glucose-6-phosphate concentrations rose during hypoglycemia by a twofold greater increment in NIDDM (P < 0.01). Thus, skeletal muscle participates in hypoglycemia counterregulation in NIDDM, directly by decreased removal of plasma glucose and, indirectly, by providing lactate for hepatic gluconeogenesis. Consequently, in addition to inherent insulin resistance in NIDDM, the enhanced plasma epinephrine response during hypoglycemia may partially offset impaired glucagon secretion and counteract the effects of hyperinsulinemia on liver, fat, and skeletal muscle.

Adult

Effect of antecedent hypoglycemia on cognitive function and on glycemic thresholds for counterregulatory hormone secretion in healthy humans.

OBJECTIVE: To determine whether reduced hormonal, symptomatic, and/or cognitive responses to hypoglycemia are caused by an increase in the plasma glucose concentration required to stimulate these counterregulatory parameters after antecedent hypoglycemia. RESEARCH DESIGN AND METHODS: We studied nine healthy volunteers during stepped hypoglycemia clamps (plasma glucose targets from 80 to 50 mg/dl in 10 mg/dl steps) on two separate days. The study was preceded either by a 2-h period of hypoglycemia (plasma glucose 58 +/- 2 mg/dl) or a 2-h period of euglycemia (plasma glucose 94 +/- 2 mg/dl) for 90 min. RESULTS: The plasma glucose that triggered secretion of plasma norepinephrine (NE) was lower after antecedent hypoglycemia (control = 74 +/- 2 and experimental = 67 +/- 2 mg/dl, respectively, P < 0.005). In contrast, a relatively higher plasma glucose stimulated secretion of other counterregulatory hormones after antecedent hypoglycemia: growth hormone (GH) (65 +/- 2 to 72 +/- 2 mg/dl, P < 0.01); glucagon (63 +/- 2 to 70 +/- 2 mg/dl, P < 0.01); and epinephrine (EPI) (68 +/- 2 to 76 +/- 2 mg/dl, P < 0.01) when comparing control days with experimental days. Hypoglycemic symptoms were first observed at a plasma glucose plateau of 59 +/- 2 mg/dl. Motor function reflected by Digit Symbol Substitution deteriorated equally whether there had been antecedent hypoglycemia or euglycemia. Logical (immediate) memory deteriorated in the control study at a plasma glucose of 54 +/- 2 mg/dl but remained unchanged at equivalent hypoglycemia in the experimental study (P < 0.03). CONCLUSIONS: Our conclusions are as follows: 1) symptoms of moderate hypoglycemia occur at plasma glucose levels averaging approximately 5-15 mg/dl lower than the plasma glucose concentrations required to trigger counterregulatory hormone release; 2) after acute antecedent hypoglycemia, glucagon, EPI, and GH secretion occur at higher plasma glucose concentrations and NE is released at lower plasma glucose concentrations; and 3) there may be CNS adaptation to prior hypoglycemia reflected in preservation of logical memory function at plasma glucose levels of approximately 50 mg/dl. These findings suggest that thresholds for hormone secretion and for changes in cognitive function can be altered very acutely by foregoing hypoglycemia in healthy humans.

Adult

Hypoglycemia.

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Blood Glucose

Acute hyperglycaemic effect of anaesthetic induction with thiopentone.

The acute effects of thiopentone on plasma glucose concentration and regulation in humans have not been well described. We therefore examined the effect of a single dose (6 mg/kg) of thiopentone on plasma glucose, insulin, glucagon, adrenaline and noradrenaline in 16 healthy women undergoing elective abdominal surgery. To assess involvement of the neuroendocrine system in the response to thiopentone, half of the patients received labetalol prior to induction of anaesthesia. Thiopentone injection resulted in a 50% increase in plasma glucose levels (P < 0.001) in both labetalol-treated and non-treated patients 90 s following its administration. This was associated neither with significant increases in plasma glucagon, adrenaline and noradrenaline nor with a decline in plasma insulin. We conclude that acute hyperglycaemia following thiopentone is most likely the consequence of a non-adrenergically-mediated increase in hepatic glucose release.

Acute Disease

Quantitation of glycolysis and skeletal muscle glycogen synthesis in humans.

We measured the net rates of skeletal muscle glycogen synthesis and glycolysis (conversion of [3-3H]glucose to 3H2O) in healthy overnight-fasted volunteers. Two studies were performed. In study 1, seven subjects participated in two paired infusions under basal conditions of either [2-3H]glucose (H2) or [3-3H]glucose (H3). Total glucose uptake (Rd) and rates of whole body 3H2O formation (3H2O Ra) were measured. With H2, Rd and 3H2O Ra were similar. With H3, 3H2O Ra, equal to glycolysis, was 65% of Rd. In study 2, six different subjects underwent a 3-h, 40 mU.m-2 x min-1 euglycemic insulin clamp. [6,6-2H2]glucose was infused throughout and H3 was infused during the last hour of the study. Open muscle biopsies were obtained at 150 and 180 min. Glycogen synthesis was assessed by three independent means: 1) direct measurement, as 3H disintegrations per minute in isolated muscle glycogen per plasma H3 specific activity; 2) extrapolation from the activity of glycogen synthase assayed in the presence of the concentrations of glucose 6-phosphate and UDP-glucose measured in the biopsy; and 3) the difference between Rd and glycolysis. Despite a wide range in Rd [24.5-58.8 mumol.kg fat-free mass (FFM)-1 x min-1] and glycolysis (14.2-26.1), the three methods yielded similar results of 20.0 +/- 3.9, 22.5 +/- 3.7, and 20.6 +/- 3.7 mumol.kg FFM-1 x min-1 and correlated highly with each other (r2 = 0.92-0.96). Our results (study 1) indicate that the rate of plasma tritiated water formation reflects the intracellular detritiation of tritiated glucose. Under hyperinsulinemic conditions (study 2) the net rate of muscle glycogen synthesis can be accurately estimated from the glycogen synthase activity and from the difference between total glucose uptake and glycolysis. Thus, at high physiological plasma insulin concentrations resulting in submaximal stimulation of muscle glycogen synthesis, the latter can be accurately measured in humans.

Adult

Physiologic hyperinsulinemia enhances counterregulatory hormone responses to hypoglycemia in IDDM.

We evaluated the effect of physiologic hyperinsulinemia (plasma insulin 329 +/- 62 vs 687 +/- 62 pmol/L) on counterregulatory hormone responses in 8 IDDM subjects studied during a 2-hour hypoglycemic clamp study with an equivalent degree of hypoglycemia (plasma glucose 3.1 +/- 0.1 and 3.0 +/- 0.1 mmol/L, respectively). Plasma epinephrine levels were increased by 71% during the last 60 minutes of hypoglycemia in the high insulin study (840 +/- 180 vs 1440 +/- 310 pmol/L, respectively p = 0.006). In addition, plasma cortisol and norepinephrine were also increased in the high insulin study (by 19% and 24% respectively, p < 0.01, for both). Plasma growth hormone and glucagon concentrations were not altered by high dose insulin infusion. In spite of increased epinephrine secretion, the glucose infusion rate required to maintain glucose was 2-fold greater in the high insulin study, and there was greater suppression of lipolysis in that group. We conclude that hyperinsulinemia may enhance counterregulatory hormone secretion in IDDM.

Adult

Postprandial hypoglycemia in islet beta cell hyperplasia with adenomatosis of the pancreas.

Organic hyperinsulinism causing hypoglycemia in adults is caused by insulinoma, islet hyperplasia, or a combination of adenomata and hyperplasia. We present a patient with long-standing symptoms of postprandial hypoglycemia occurring within 15 minutes of meals in the absence of fasting hypoglycemic symptoms. An intravenous glucagon stimulation test resulted in a rise of plasma insulin from 194 to 21,883 pmol/L at 7.5 minutes. Blood glucose simultaneously rose from 4.9 to 5.9 mmol/L. A glucose tolerance test revealed an exuberant insulin response. A euglycemic hyperinsulinemic clamp demonstrated incomplete suppression of plasma C-peptide. At surgery, three nodules were found and a 50-60% distal pancreatectomy was performed. The pancreas revealed a combination of multiple beta-cell islet adenomata and islet hyperplasia with no evidence of nesidioblastosis. The coexistence of islet adenomata with hyperplasia must be considered in the differential diagnosis of postprandial hypoglycemia.

Adenoma

Impaired glucose disposal following mild hypoglycemia in nondiabetic and type I diabetic humans.

Insulin-mediated glucose disposal was studied immediately prior to and following moderate hypoglycemia in nondiabetic subjects and subjects with insulin-dependent (type I) diabetes mellitus (IDDM), the latter having varying epinephrine secretory capacities. Plasma insulin concentration was fixed throughout the study at approximately 300 to 400 pmol/L to avoid effects of waning insulin action and plasma glucose was clamped at either 5 mmol/L (euglycemic control) or at 3.1 mmol/L (hypoglycemic) periods of 120 minutes. Baseline (clamp 1) and postexperiment (clamp 2) periods were assessed for net glucose disposal (as a function of the exogenous glucose infusion rate) and glucose kinetics using 3H-glucose. In normal subjects, glucose disposal increased progressively by 132% during control studies but only by 57% with intervening hypoglycemia (P less than .005). Similarly, 33% during hypoglycemia, P less than .025). These changes were mediated by reduction of whole-body glucose uptake (rate of glucose disappearance [Rd], [3H]-3-glucose) and metabolic clearance rates with comparable suppression of hepatic glucose production in both groups. The increase in plasma free-fatty acids (FFA) following hypoglycemia was modest but greater in subjects with IDDM (P less than .01), whereas IDDM had reduced concentrations of epinephrine (P less than .01) and glucagon (P less than .005) during hypoglycemia. In subjects with IDDM but not in normal subjects, the change in posthypoglycemia glucose disposal was inversely correlated with the increase in plasma norepinephrine (R2 = .54, P less than .004) and epinephrine (R2 = .32, P less than .04). Glucose disposal did not correlate with other counterregulatory hormones, plasma FFA, or antecedent glycemic control.(ABSTRACT TRUNCATED AT 250 WORDS)

Adult

Effect of physiological hyperinsulinemia on counterregulatory hormone responses during hypoglycemia in humans.

UNLABELLED: We evaluated the effect of continuous physiological hyperinsulinemia on counterregulatory hormone responses in seven healthy subjects, each studied on two occasions. Hormone responses were measured during identical 2-h periods of hypoglycemia (plasma glucose target 3.5 mmol/L) at insulin levels of 350 pmol/L or 640 pmol/L. During hypoglycemia, there were significant (50-1400%) increases in glucagon, epinephrine, norepinephrine, GH, and cortisol which were comparable in the two groups. We further evaluated the influence of the duration of mild hyperinsulinemia on the responses in an additional group of normal subjects (n = 7). Brief (30 min) exposure to insulin was compared to a prolonged (3.5 h) insulin infusion, each followed by identical hypoglycemia. Plasma insulin (approximately 350 pmol/L) and plasma glucose (target 3.3 mmol/L) were similar in both groups. The increases in epinephrine, norepinephrine, GH, and cortisol during hypoglycemia were virtually identical in the two groups. However, the secretion of glucagon was blunted following prolonged hyperinsulinemia, increasing to levels of 249 +/- 17 ng/L in the brief studies and to only 185 +/- 20 ng/L in the prolonged studies (P < 0.005). The insulin-induced decrement in plasma amino acids were similar in the two studies and could not account for the impaired glucagon secretory response. CONCLUSIONS: 1) Brief exposure to even high physiological levels of insulin do not alter the magnitude of counterregulatory hormone secretion during hypoglycemia; 2) prolonged hyperinsulinemia results in a selective blunting of the plasma glucagon response to hypoglycemia, perhaps due to a direct suppressive effect of insulin on alpha-cell secretion.

Adult

Pathophysiology of diabetes. A review of selected recent developments and their impact on treatment.

Recent developments in epidemiology, physiology, anatomy and molecular biology have greatly increased our knowledge of the aetiology and immunological mechanisms involved in diabetes mellitus. This understanding has, in turn, facilitated progress in the diagnosis and treatment of the disease. It is generally accepted that both genetic and environmental factors have a role in the pathogenesis of insulin- and non-insulin-dependent diabetes mellitus. The contribution of insulin resistance or decreased insulin secretion to the pathogenesis of non-insulin-dependent diabetes remains controversial but it is likely that both have a role to play. Counterregulatory hormones, principally adrenaline (epinephrine) and glucagon, prevent blood glucose levels falling to extreme levels by antagonising the effect of insulin hypoglycaemia, and inducing hepatic glucose production. Patients with insulin-dependent diabetes frequently exhibit impaired glucose counterregulation and, although its aetiology is uncertain in some patients, intensification of insulin therapy per se has been implicated. Secondary failure of oral hypoglycaemic agents in patients with non-insulin-dependent diabetes is a major and often inevitable problem, necessitating combined use of sulphonylurea and insulin in most patients. Recently, new treatments for patients with diabetes have been developed, including insulin analogues administered by a variety of novel methods, pancreatic grafts and transplantation of islet cells. Although promising, the clinical viability of these techniques remains to be demonstrated.

Animals