Insulin resistance, plasma PAI-1 levels and PAI-1 gene polymorphism in healthy centenarians.
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Biomedical subjects
Publications and source records attributed to F Saccomanno.
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Studies have shown that a high plasma non-esterified fatty acid concentration may inhibit glucose induced insulin secretion in vitro and in vivo. The effect of lowering the fatty acid concentration on the acute insulin response was investigated in first degree relatives of people with Type II diabetes in a double-blind, randomised, placebo-controlled trial. Fifty first degree relatives of people with Type II diabetes volunteered for the study. Twenty five were given acipimox (250 mg/day, four times daily) and 25 placebo. The group treated with acipimox had a lower 2-h plasma glucose concentration (6.1 +/- 0.2 vs 7.7 +/- 0.3 vs mmol/l, p < 0.01); better insulin-mediated glucose uptake (35.4 +/- 0.5 vs 28.3 +/- 0.4 mumol/kg fat free mass per min, p < 0.01), acute insulin response (68 +/- 4.4 vs 46 +/- 7.3 mU/l, p < 0.01) and respiratory quotient (0.81 +/- 0.02 vs 0.77 +/- 0.03, p < 0.05); and a rise in the plasma glucagon (164 +/- 63 vs 134 +/- 72 ng/1, p < 0.05), growth hormone (1.31 +/- 0.13 vs 0.97 +/- 0.21 microgram/l, p < 0.03) and cortisol (325 +/- 41 vs 284 +/- 139 nmol/l, p < 0.05) concentrations. The difference in the acute insulin response persisted, even after adjustment for the 2-h plasma glucose concentration, insulin-mediated glucose uptake, the fasting plasma glucagon concentration and the growth hormone concentration (p < 0.05). In a subgroup of eight patients acipimox was compared with acipimox plus intralipid. The acute insulin response (44 +/- 5.1 vs 71 +/- 5.3 mU/l, p < 0.01) and the insulin-mediated glucose uptake (27.4 +/- 0.4 vs 36.7 +/- 0.5 mumol/kg fat free mass per min, p < 0.003) were lower with acipimox plus intralipid treatment than with acipimox alone. It is concluded that long term acipimox treatment lowers the plasma fasting free fatty acid concentration and improves the acute insulin response and the insulin mediated glucose uptake.
In vitro studies have demonstrated that free fatty acids (FFA) may enhance oxidative stress. In contrast, no in vivo studies have addressed such a relationship. This four-part study aims at investigating the association between FFA and oxidative stress in healthy volunteers. The following experimental procedures were carried out: 1) determination and simple correlations among fasting plasma FFA, glucose, insulin, plasma thiobarbituric acid-reactive substance (TBARS), the ratio of reduced glutathione (GSH) to oxidized GSH, and lipid hydroperoxide (n = 30); 2) time-dependent effect of FFA on plasma TBARS concentrations and GSH/oxidized GSH ratio (n = 10); 3) dose-dependent effect of FFA on plasma TBARS concentrations (n = 9); and 4) relationship among plasma FFA concentrations, plasma TBARS concentrations, and insulin action (n = 11). The results demonstrate that fasting plasma FFA concentrations correlated with fasting plasma TBARS concentrations (r = 0.65; P < 0.001) and lipid hydroperoxide (r = 0.79; P < 0.001). The correlation between plasma FFA and TBARS remained significant even after adjustment for age, sex, body mass index, and fasting and 2-h plasma glucose concentrations (r = 0.43; P < 0.01). In the time-dependent study, plasma TBARS concentrations increased with the rise in plasma FFA concentrations. In the dose-response study, a progressive increase in fasting plasma FFA concentrations was achieved by varying the Intralipid infusion rate, which also caused plasma TBARS concentrations to increase progressively until they reached a plateau between the last two infusion rates (0.3 and 0.4 mL/min). A euglycemic hyperinsulinemic glucose clamp (insulin infusion rate, 10.2 pmol/kg min for 360 min) was also performed. Simultaneous 10% Intralipid (0.4 mL/min) infusion significantly enhanced plasma TBARS concentrations and inhibited insulin-stimulated whole body glucose disposal (WBGD). GSH infusion (15 mg/min for 360 min) had opposite effects on plasma TBARS concentrations and WBGD. A combined infusion of 10% Intralipid and GSH was associated with a stimulation of WBGD with a magnitude midway between that of 10% Intralipid and GSH infused separately. In conclusion, fasting plasma FFA seems to enhances oxidative stress, which might contribute to the disruptive effects of plasma FFA on insulin-mediated glucose uptake.
Fourteen hypertensive (174.3/98.3 mmHg) non-diabetic patients were given a euglyceamic glucose clamp along with infusion of 0.9% NaCl and the prostacyclin (PGI2) analogue Iloprost (0.7 ng x kg x min(-1)). Substrate oxidation was also determined by indirect calorimetry. Over the last 60 min of the clamp, Iloprost vs saline improved whole body glucose disposal (WBGD) (35 vs 28.3 micromol x kg(-1) LBM) and non-oxidative glucose metabolism (24.7 vs 18.1 micromol x kg(-1) LBM x min(-1). Iloprost delivery was associated with a significant decrease in membrane microviscosity (0.253 vs 0.205), but did not affect arterial blood pressure and heart rate. In nine patients, skeletal muscle blood flow (SMBF) and insulin-stimulated glucose uptake (GU) were also studied. At the end of the study, despite a similar SMBF (37 vs 38 ml x min(-1) x kg(-1)), GU (0.55 vs 0.46 mmol x l(-1)) was significantly increased by Iloprost infusion. Percentage decrease in membrane microviscosity was correlated with percentage increase in WBGD (r = 0.65) and non-oxidative glucose metabolism (r = 0.68). In conclusion, low-dose Iloprost infusion improves insulin action and non-oxidative glucose metabolism in hypertensive patients.
OBJECTIVE: Our study investigated the metabolic benefits deriving from chronic pharmacological vitamin C administration in aged non-insulin dependent (Type II) diabetic patients. METHODS: Forty type II diabetic patients (age: 72 +/- 0.5 years) underwent placebo and vitamin C (0.5 g twice daily) administration in double-blind, randomized, cross-over fashion. All patients were treated by oral hypoglycaemic agents which continued throughout the study. After baseline observations, treatment periods lasted 4 months and were separated by a 30-day wash-out period. RESULTS: Patients' antropometric data were unchanged throughout the study. Chronic vitamin C administration vs placebo was associated with a significant decline in fasting plasma free radicals (0.26 +/- 0.06 vs 0.49 +/- 0.07 p < 0.03) and insulin (90 +/- 4 vs 73 +/- 6 pmol/L p < 0.04), total- (7.3 +/- 0.5 vs 5.8 +/- 0.4 mmol/L p < 0.03), LDL-cholesterol (5.6 +/- 0.6 vs 4.1 +/- 0.3 mmol/L p < 0.05) and triglycerides (2.58 +/- 0.07 vs 2.08 +/- 0.04 mmol/L p < 0.04) levels. In 20 patients, chronic vitamin C administration improved whole body glucose disposal and nonoxidative glucose metabolism. Percent increase in plasma vitamin C levels correlated with the percent decline in plasma LDL-cholesterol (r = 0.44; p < 0.007) and insulin levels (r = 0.42; p < 0.006). Finally percent increase in plasma vitamin C levels was correlated with the percent decline in plasma free radicals and increase in GSH levels. CONCLUSIONS: Chronic vitamin C administration has beneficial effects upon glucose and lipid metabolism in aged non-insulin dependent (type II) diabetic patients.
Hypertensive patients with left ventricular hypertrophy (LVH) have a higher degree of hyperinsulinaemia than hypertensive patients without LVH. Obese patients with LVH have also been demonstrated to have a very low glucose disappearance rate after an intravenous glucose bolus. No studies have investigated the difference in insulin action and substrate oxidation in hypertensive patients with and without LVH. For this reason 36 subjects were enrolled for our study: (1) healthy control subjects (n = 10); (2) hypertensive patients without LVH (n = 12); and (3) hypertensive patients with LVH (n = 14). All subjects underwent an oral glucose tolerance test (OGTT, 75 g of glucose) and a euglycaemic hyperinsulinaemic glucose clamp (insulin infusion rate, 7.1 pmol (kg min)-1 for 120 min). In this latter test indirect calorimetry allowed substrate oxidation determination. Echocardiographic methods allowed LVH assessment. Hypertensive patients with LVH had the lowest insulin-mediated nonoxidative glucose metabolism compared to hypertensive patients without LVH (P < 0.01) and to healthy subjects (P < 0.001). In the whole group of hypertensive patients (n = 26), partial correlations showed left ventricular mass index (LVMI) associated with fasting plasma insulin levels (r = 0.44 P < 0.005), insulin-mediated whole body glucose disposal (r = -0.41 P < 0.01) and nonoxidative glucose metabolism (r = -0.33 P < 0.04) independently of age, body weight, systolic blood pressure and plasma catecholamines levels. In conclusion, our data provide evidence that LVH in hypertensive patients is associated with a worsening in nonoxidative glucose metabolism.
Thirty elderly, mildly hypertensive patients were enrolled for a single-blind, randomised cross-over placebo controlled trial in which placebo and lisinopril (20 mg/day before breakfast) were given for 4 and 8 weeks, respectively. A wash-out period of 3 weeks between placebo and lisinopril was observed. In each patient a euglycaemic glucose clamp with simultaneous indirect calorimetry allowed us to determine whole body glucose disposal and substrate oxidation. Changes in morning SBP and DBP were also determined. Lisinopril vs. placebo significantly improved whole body glucose disposal (40.4 +/- 0.4 vs. 30.3 +/- 0.4 mumol/kg LBM x min; P < 0.01), non-oxidative glucose metabolism (18.1 +/- 0.7 vs. 10.9 +/- 0.6 mumol/kg LBM x min; P < 0.01) and fasting plasma potassium levels (4.8 +/- 3 vs. 4.4 +/- 0.4 mmol/l; P < 0.05). SBP (175 +/- 3.3 vs. 160 +/- 3.0 mm Hg; P < 0.001) and DBP (106 +/- 2.3 vs. 95 +/- 2.0 mm Hg; P < 0.001) were significantly reduced by lisinopril administration. After ACE inhibition, fasting plasma potassium levels correlated with the decline in mean arterial BP (r = -0.71; P < 0.006). In conclusion, lisinopril administration reduces arterial BP and improves insulin sensitivity in elderly hypertensive patients.
Ten healthy subjects and 30 non-insulin-dependent (type II) diabetic patients matched for age, gender ratio, body mass index, lean body mass (LBM), waist to hip ratio, and arterial blood pressure volunteered for the study. In all subjects, fasting plasma free radical (O2-) levels and basal membrane lipid fluidity (MLF) and protein mobility (MPM) were determined. The whole group of subjects underwent a euglycemic hyperinsulinemic glucose clamp with simultaneous indirect calorimetry for substrate oxidation determination. Diabetic patients versus controls displayed higher fasting plasma glucose (8.3 +/- 0.4 v 5.1 +/- 0.4 mmol/L, P +/- .001), O2- (0.48 +/- 0.02 v 0.16 +/- 0.02 mumol/L x min), and hemoglobin A1c ([HbA1C] 7.9% +/- 0.4% v 5.7% +/- 0.3%, P < .03) levels and a stronger reduction in basal MLF (0.243 +/- 0.006 v 0.318 +/- 0.009, P < .003) and basal MPM (0.348 +/- 0.003 v 0.518 +/- 0.010, P < .002). Whole-body glucose disposal (WBGD) and oxidative and nonoxidative glucose metabolism were also significantly lower in diabetics than in controls. In diabetic patients (n = 30), plasma O2- levels correlated with basal MLF (r = -.59, P < .005), basal MPM (r = -.84, P < .001), fasting plasma insulin level (r = .51, P < .004), WBGD (r = -.53, P < .002), and nonoxidative (r = -.45, P < .01) glucose metabolism. In conclusion, our results demonstrate that a relationship between plasma O2- levels and insulin action occurs in non-insulin-dependent diabetics.
The effect of the calcium antagonist nicardipine on insulin secretion and glucose homoeostasis was investigated in elderly hypertensives with and without diabetes mellitus; 15 patients with essential hypertension for at least 10 years and normal glucose tolerance according to standard criteria (Group I) and 15 elderly hypertensive patients affected by Type 2 diabetes mellitus and on treatment with diet or oral drugs (Group 2). In the basal state, all patients were submitted to an oral glucose tolerance test (OGTT, 75 g) and an iv arginine test (30 g), on two different days and in random order. The same tests were repeated after one month of treatment with nicardipine 60 mg/day, in three spaced doses, the last being given 1 h before the post-treatment test. Nicardipine did not change overall glucose homoestasis, as assessed by haemoglobin Alc and fructosamine, nor did it significantly affect the plasma insulin response either to glucose or arginine in Groups 1 and 2. Only the glucagon response to arginine was significantly reduced in diabetic hypertensives. Small, non-significant variations in the metabolic and hormonal parameters were seen in additional two groups of patients (Groups 3 and 4), matched with Groups 1 and 2 for age, sex and diseases, who took capsules containing placebo. Thus, nicardipine did not produce any significant overall alteration in glucose homoestasis when given to elderly diabetic or nondiabetic hypertensive subjects.
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In a double blind, controlled clinical study, 40 patients, 20 of whom were subjected to mastectomy or quadrantectomy and 20 to inguinal hernioplasty, were randomly assigned to two treatment groups of 20 subjects each, balanced by type of operation. Treatment lasted 3 days and involved the administration of 3 suppositories per day of nimesulide or diclofenac sodium. Independently of the type of operation, a significant reduction in pain symptomatology (spontaneous pain, pain on active and passive movements) and in inflammatory symptomatology (hyperaemia and tumefaction) and a good control of body temperature was observed for both treatment groups. No changes in arterial pressure or laboratory examinations were observed in either group, nor there were any noteworthy adverse reactions.
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To assess whether the beneficial effects of salicylates compounds and sulfonylureas on insulin secretion in patients with noninsulin-dependent diabetes mellitus could be ascribed to inhibition of prostaglandin E (PGE) synthesis, insulin responses to iv glucose pulses were determined in diabetic patients during infusion of lysine acetylsalicylate (LAS) or tolbutamide, with or without a concurrent infusion of PGE2. In these diabetic patients, the augmenting effects of LAS on glucose-induced insulin secretion were abolished by PGE2 infusion. Partial restoration by tolbutamide infusion of the first and second phases of glucose-induced insulin secretion was not affected by the administration of PGE2. The stimulatory effects of LAS and tolbutamide on insulin secretion were additive, suggesting separate mechanisms of action. Since salicylates and sulfonylureas lower plasma glucose concentrations, we also evaluated whether prevention of the fall in the prestimulus glucose level could result in a further amplification of insulin release. Resetting the prestimulus glucose level to control values by infusing glucose caused a further increase in the second, but not the first, phase of glucose-induced insulin secretion, indicating that the prestimulus glucose level had a role in regulating subsequent insulin release. These results indicate that salicylates, but not sulfonylureas, exert their acute insulinotropic effect in noninsulin-dependent diabetic patients by inhibiting endogenous PGE synthesis and support the idea that endogenous PGE may play a role in the impaired insulin response to glucose in this form of human diabetes.
Non insulin-dependent diabetes mellitus (Type II) is characterized by the loss of the acute insulin response to glucose. Met-enkephalin, catecholamines and prostaglandin E (PGE) have all been reported to inhibit the acute insulin response to glucose in normal humans. To evaluate the hypothesis that an increased sensitivity to these endogenous substances may play a role in defective insulin secretion in diabetes, we evaluated the effects of three blocking drugs upon the impaired insulin response to glucose in Type II diabetic subjects, as well as glucose-induced insulin secretion in normal humans. In diabetics, acute insulin responses to glucose were significantly increased by all the agents tested (naloxone, phentolamine and lysine acetylsalicylate), but only the cyclooxygenase inhibitor significantly augmented second phase insulin secretion and glucose disappearance rates. The combined infusion of the three agents caused a striking increase of the acute insulin response to glucose (response before: 3 +/- 2 uU/ml; after: 22 +/- 6 uU/ml, p less than 0.01). This was accompanied by a ninefold augmentation of the second phase of insulin secretion which was the result of a synergistic interaction between the three drugs (response significantly higher than the sum of single effects). In normals, insulin responses to glucose were also significantly increased by the combined infusions of the drugs, but to a significantly lesser extent than that of diabetics. This different degree of insulin potentiation between normals and diabetics under the infusion of the three agents persisted even when the prestimulus glucose level of normals was matched to that of diabetics by a glucose infusion.(ABSTRACT TRUNCATED AT 250 WORDS)
These studies were undertaken to evaluate in humans the possible physiological role of prostaglandins of the E series (PGE) in modulating insulin release and to assess whether endogenous PGE synthesis may account for the biphasic pattern of insulin secretion. We used a square-wave glucose stimulation previously determined to give maximal biphasic insulin release. Infusion of lysine acetylsalicylate to block the synthesis of endogenous PGE increased by twofold total insulin response to glucose and also converted insulin release to a multiphasic pattern. The infusion of exogenous PGE1 (0.2 microgram X kg-1 X min-1) or PGE2 (10 micrograms/min) in addition to lysine acetylsalicylate restored the typical biphasic pattern of insulin release and also decreased total insulin release to values similar to those of control studies. Infusion of either PGE1 or PGE2 in the absence of lysine acetylsalicylate reset insulin secretion to a lower level without altering the kinetics of release. On the basis of these results, it is hypothesized that endogenous PGE released in response to glucose stimulation exert an inhibiting effect on insulin release that becomes biphasic in appearance.
The serum concentrations of different glycosaminoglycan fractions have been studied in diabetic subjects without evidence of vascular complications and compared with those of age-and sex-matched normal subjects. Electrophoretic analysis of the various glycosaminoglycan fractions showed an increase in hyalunoric acid and heparin, and a decrease in heparan sulfate, chondroitin-4-sulfate and chondroitin-6-sulfate. Furthermore, the levels of glycosylated haemoglobin A1 were positively correlated with those of hyaluronic acid (r = 0.96, p. less than 0.001) and heparin (r = 0.45, p less than 0.01) in the diabetic group. The present data suggest thah a) in diabetics there is a shift in the metabolism of glycosaminoglycans towards a decreased sulfated glycosaminoglycans/hyaluronic acid ratio; and b) long-lasting hyperglycemia is correlated with the disturbances in the metabolism of glycosaminoglycans.
Human diabetes mellitus is characterized by impaired insulin response to intravenous glucose. In search of possible factors which impair insulin release, we have investigated the effect of naloxone, a specific opiate receptor blocker, on insulin responses to glucose in subjects with non-insulin-dependent diabetes, as well as in normal subjects. Naloxone was given as a priming dose of 0.4 mg followed by a constant infusion of either 0.4 mg (N = 7), 2 mg (N = 7), or 4 mg (N = 8) for 90 min. Acute insulin response to glucose (mean change 3-10 min insulin), second phase insulin secretion (change 10-60 min), as well as glucose disappearance rates (%/min) were significantly increased in the diabetics receiving the two higher doses of naloxone (2 and 4 mg, respectively). None of these effects were seen in diabetics receiving saline or in normal subjects receiving naloxone. These results seem to suggest that sensitivity to endogenous opiates may play some part in non-insulin-dependent diabetes.
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