Diabetes-related autoantibodies and the selection of subjects for trials of therapies to preserve pancreatic beta-cell function in recent-onset type 1 diabetes.
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Biomedical subjects
Publications and source records attributed to J Dupré.
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To study the metabolic effects of insulin derived from islet grafts, oral glucose tolerance (OGT) and glucose turnover were examined in streptozotocin-induced diabetic Lewis rats rendered normoglycemic by syngeneic islet grafts in the renal subcapsular space (REN), in REN with renal vein-to-mesenteric vein anastomosis (REN-RMA), in the liver (intrahepatic [IH]), or in a parahepatic omental pouch (POP) and compared with normal rats. Normal OGT was found at 1 month posttransplant in all animals receiving approximately 3,000 islets, with hyperinsulinemic responses in the REN group compared with the other groups, and with higher C-peptide responses in the IH group than in the other groups (P < 0.05 by one-way analysis of variance). Glucose turnover studies in the insulin-stimulated steady state (INS-SS; infusion of insulin at 10 pmol x kg(-1) x min(-1)) at 2 months posttransplant showed that whole body glucose disappearance rates (Rd) were similar in all groups, but the REN group had higher steady-state insulin levels than the other groups. Glucose infusion rates (GIRs) were lower in the REN and IH groups than in the other groups. Apparent endogenous glucose production (EGP) was not completely inhibited in the REN and IH groups, while complete inhibition was observed in the other groups. When INS-SS insulin levels were matched to the level in REN rats by increasing the insulin infusion rate to 20 pmol x kg(-1) x min(-1) in REN-RMA, IH, and normal rats, GIR and Rd were elevated, exceeding those values in REN rats, but GIR in IH rats was still lower than in REN-RMA and normal rats. Thus, 1) in the REN group, impairment of inhibition of EGP and of stimulation of Rd by exogenous insulin contribute to insulin resistance; 2) in the IH group, incomplete inhibition of EGP is the major determinant of insulin resistance; and 3) with portal delivery of insulin in the REN-RMA and POP groups, normal insulin sensitivity is preserved. The present study confirms that hepatic portal delivery of islet secretions is necessary for physiological regulation of glucose metabolism. The study also suggests the IH grafts do not provide physiological regulation of glucose metabolism, raising the question of whether the liver is an appropriate site for insulin-secreting tissue replacement therapy in diabetes.
The aim of this study was to analyse the Raman and infrared spectra of eight common mammalian bile acids in order to identify intermolecular interactions between hydroxyl and carbonyl groups. The results are considered in the light of the new hydrophilic/hydrophobic classification of bile acids. The alcohol OH group of the hydrophobic bile acids forms different intermolecular bonds. The most hydrophobic bile acid, lithocholic acid forms polymers, and this may explain its very low water solubility. The hydrophilic bile acids have some of their alcohol OH groups free of any intermolecular interaction. The strongly hydrophilic murideoxycholic acid also forms dimers, again consistent with a very low water solubility. The proposed structural arrangements are in agreement with published crystallographic studies.
We determined the metabolic effects of insulin derived from renal subcapsular islet grafts, either with systemic delivery of insulin through renal venous drainage (REN) or with portal delivery of insulin after renal vein-to-superior mesenteric vein anastomosis (RMA), in streptozotocin-induced diabetic Lewis rats, in comparison with normal rats. After gavage glucose, the plasma glucose responses were similar to normal in REN and RMA rats; however, hyperinsulinemia occurred in REN rats (area under the concentration curves [AUCs] of insulin, 27 +/- 3 nmol x 1(-l) min) in comparison with RMA (14 +/- 2) and normal rats (19 +/- 2), P < 0.003, with no difference in C-peptide responses. The ratio of AUC C-peptide to AUC insulin was lower in REN (2.0 +/- 0.2) than in RMA (3.4 +/- 0.3) and normal animals (3.2 +/- 0.3), P < 0.0005. In euglycemic-hyperinsulinemic clamp studies using the same insulin infusion rate (10 pmol x kg(-1) x min(-1), insulin resistance was found in REN animals (mean glucose infusion rate [GIR], REN: 7.5 +/- 1.2; RMA: 12.0 +/- 1.2; normal: 12.7 +/- 1.0 mg x kg(-1) x min(-1); P < 0.008), with higher steady-state insulin levels in REN (554 +/- 63 pmol/l) than in RMA (291 +/- 26) and normal rats (269 +/- 60), P < 0.0001. With matching steady-state insulin levels in RMA and REN rats during infusion of insulin at 20 pmol x kg(-1) x min(-1) in RMA rats (steady-state insulin 623 +/- 64 pmol/l), GIR was 15.7 +/- 0.7 mg x kg(-1) x min(-1). Thus, systemic delivery of insulin from islet grafts is associated with hyperinsulinemia, insulin resistance, and decreased metabolic clearance of insulin. These abnormalities are prevented by portal delivery of insulin from islet grafts in the same site. The findings are consistent with the hypothesis that portal delivery of insulin is important in maintenance of normal whole-body insulin sensitivity.
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To compare the metabolic effects of portal and systemic delivery of insulin, we used portal-caval transposition (PCT) in rats to provide total systemic diversion of splanchnic venous blood. PCT rats exhibited normal weight gain, liver histology, liver-function tests, glycosylated hemoglobin, arterial blood pressure, and hepatic blood flow. Mean liver weight relative to body weight was 12% lower in PCT rats than in sham-operated control (CTR) rats 30 days following transposition. Indwelling venous catheters were established to facilitate metabolic studies in conscious, minimally restrained animals. Postabsorptive plasma glucose and C-peptide (CPEP) levels were similar in PCT and CTR rats; however, postabsorptive immunoreactive insulin (IRI) levels were elevated in PCT rats (67 +/- 3.1 v 49 +/- 3.5 pmol.L-1, P < .002, n = 11 v 11), as were postabsorptive plasma glucagon levels (570 +/- 67 v 240 +/- 11 ng.L-1, P < .001, n = 11 v 16) at similar body weights. The postabsorptive CPEP/IRI concentration ratio was lower in PCT than in CTR rats (4.0 +/- 0.3 v 6.0 +/- 0.6, P < .02), suggesting reduced hepatic extraction of insulin. Insulin sensitivity (IS), determined by minimal model analysis of frequently sampled intravenous glucose tolerance tests yielding the sensitivity index (SI), was reduced in PCT compared with CTR (61 +/- 5.6 v 86 +/- 9.0 (mumol.L-1)-1.min-1, P < .04, n = 9 v 10). During euglycemic-hyperinsulinemic clamps, glucose infusion rates (GIRs) from 60 to 120 minutes were lower in PCT than in CTR rats (6.0 +/- 0.3 v 8.0 +/- 0.4 g.kg-1.min-1, P < .002, n = 9 v 7) with matching plasma IRI levels, confirming the reduced IS in PCT rats. Areas under the concentration curves ([AUCs] 0 to 150 minutes) for glucose tolerance tests (gavage) indicated that plasma glucose excursion was similar in PCT and CTR rats whereas AUC IRI was significantly higher in PCT than in CTR rats (23 +/- 1.3 v 18 +/- 0.6 nmol.L-1.min, P < .009, n = 11 v 11). However, AUC CPEP for oral glucose tolerance tests was lower in PCT than in CTR rats (55 +/- 3.4 v 68 +/- 4.8 nmol.L-1.min, P < .05), indicating decreased insulin secretion. Thus, the mean ratio AUC CPEP/AUC IRI was significantly lower in PCT rats (2.5 +/- 0.2 v 3.8 +/- 0.3, P < .002), again suggesting reduced hepatic extraction of insulin. Thus, euglycemia after PCT was accompanied by elevated postabsorptive and glucose-stimulated levels of IRI in systemic blood, postabsorptive hyperglucagonemia, and decreased insulin secretion in response to glucose challenge (gavage), with diminished hepatic extraction of insulin and decreased IS. The PCT model illustrates the insulin-resistant adaptive state that results from systemic delivery of insulin, and indicates the importance of hepatic portal delivery of insulin and possibly of other gastroenteropancreatic hormones in the maintenance of IS and physiological metabolic control.
Diabetes mellitus had traditionally been considered disqualifying for flying duties. Increasingly, our understanding of both Type I and Type II diabetes permits identification of subgroups of diabetics with an acceptable aeromedical risk. A case is presented of a Canadian Forces pilot with Type I diabetes who continues on restricted flying duties. The pathophysiology of Type I and Type II diabetes is discussed, as well as aeromedical considerations for returning a diabetic to flying status. Within an envelope of defined geographic and operational flying limitations, diabetic aircrew may be safely and usefully returned to restricted flying duties.
Previous studies demonstrated that porcine galanin is a potent inhibitor of insulin secretion in many species but fails to alter human insulin secretion. To resolve whether this discrepancy was due to the use of a heterologous peptide or to a true species response difference, we studied the effect of a synthetic replicate of human galanin on glucose-stimulated insulin secretion in rats, dogs, and humans. On administration into rats, human and rat galanin significantly inhibited glucose-induced insulin responses to a similar degree. Similarly, porcine and human galanin significantly elevated canine plasma glucose and inhibited canine plasma insulin responses. In contrast, plasma glucose and insulin responses to glucose administration in humans were unaltered by the addition of human galanin at or above the maximum effective dose employed in dogs. Possible effects of galanin administration were seen on human glucagon and pancreatic polypeptide responses to glucose at the highest dose of human galanin infused. We conclude that galanin probably does not play a major role in modulating human beta-cell function.
To determine whether hepatic extraction of insulin differs when glucose is administered by parenteral and physiological routes, we studied responses to oral glucose and to intravenous (IV) infusion of glucose or glucose plus arginine in normal volunteers. As in earlier studies, when IV glucose infusions were empirically programmed to to produce isoglycemic responses with 50 or 75 g oral glucose, ratios of integrated areas under concentration curves for immunoreactive C-peptide (CP) to insulin in the plasma were higher with IV than with oral glucose. Mean values +/- standard errors for these ratios in paired experiments with 50 g oral glucose were 5.6 +/- 0.66 compared with 8.3 +/- 1.4 with IV glucose (P < .03). With 75 g oral glucose, the corresponding values were 4.3 +/- 0.38 and 7.8 +/- 0.50 (P < .001). These results suggest that hepatic extraction of insulin is diminished when insulin secretion is potentiated by enteroinsular mechanisms after oral glucose administration. To determine whether this phenomenon is related to the route of administration of glucose or to the enhancement of insulin secretion with oral glucose, programmed IV infusions of glucose were used to elicit excursions of plasma CP similar to those obtained after 50 g oral glucose, and programmed infusions of glucose plus arginine were used to elicit excursions of plasma CP similar to those obtained after 75 g oral glucose. Plasma levels of immunoreactive gastric inhibitory polypeptide (GIP) increased substantially after ingestion of 75 g glucose, but did not change during isoglycemic IV glucose infusions or during IV infusions of glucose plus arginine.(ABSTRACT TRUNCATED AT 250 WORDS)
BACKGROUND: Corticotropin-independent nodular adrenal hyperplasia is a rare cause of Cushing's syndrome, and the factors responsible for the adrenal hyperplasia are not known. METHODS: We studied a 48-year-old woman with Cushing's syndrome, nodular adrenal hyperplasia, and undetectable plasma corticotropin concentrations in whom food stimulated cortisol secretion. RESULTS: Cortisol secretion had an inverse diurnal rhythm in this patient, with low-to-normal fasting plasma cortisol concentrations and elevated postprandial cortisol concentrations that could not be suppressed with dexamethasone. The cortisol concentrations increased in response to oral glucose (4-fold increase) and a lipid-rich meal (4.8-fold increase) or a protein-rich meal (2.6-fold increase), but not intravenous glucose. The infusion of somatostatin blunted the plasma cortisol response to oral glucose. Intravenous infusion of gastric inhibitory polypeptide (GIP) for one hour increased the plasma cortisol concentration in the patient but not in four normal subjects. Fasting plasma GIP concentrations in the patient were similar to those in the normal subjects; feeding the patient test meals induced increases in plasma GIP concentrations that paralleled those in plasma cortisol concentrations. Cell suspensions of adrenal tissue from the patient produced more cortisol when stimulated by GIP than when stimulated by corticotropin. In contrast, adrenal cells from normal adults and fetuses or patients with cortisol-producting or aldosterone-producing adenomas responded to corticotropin but not to GIP. CONCLUSIONS: Nodular adrenal hyperplasia and Cushing's syndrome may be food-dependent as a result of abnormal responsiveness of adrenal cells to physiologic secretion of GIP. "Illicit" (ectopic) expression of GIP receptors on adrenal cells presumably underlies this disorder.
In the Canadian/European randomized controlled study on cyclosporin A (CsA) in recent onset Type 1 (insulin-dependent) diabetes, treatment with the immunosuppressive drug had increased and maintained Beta-cell function and clinical remission during the first 12 months. Following discontinuation of the study drug and double-blinding after a mean of 13.8 months former CsA patients doubled the daily insulin dose within 6 months reaching the level of former placebo patients. The difference in Beta-cell function between the two groups was also lost. Metabolic control (HbA1c) was transiently worse in the former CsA group. Adverse effects of cyclosporin A on systolic blood pressure, haemoglobin levels, serum potassium and creatinine levels also remitted during that time. We conclude that treatment with cyclosporin A for a mean of 13.8 months had no long-lasting effect on the course of Type 1 diabetes persisting beyond drug discontinuation.
Allogeneic islets obtained from Lewis rats were transplanted into diabetic BB/W rats with or without cyclosporine. In addition, these islets were encapsulated in alginate-poly L-lysine membranes and then transplanted into diabetic BB/W rats with or without immunosuppressive and/or antiinflammatory agents. The agents used were cyclosporine, dexamethasone, indomethacin (Ind), or a combination of these. Our results show that islets alone survived for 7 days, with or without CsA therapy. Encapsulated islets survived for 14.2 days, and this was extended by CsA, Dex, or CsA + Ind. Loss of encapsulated graft functions was associated with formation of a dense pericapsular infiltrate, which was inhibited by CsA, Dex, CsA + Ind, or CsA + Dex. In addition, the infiltrate was reduced in animals that had diabetes for long periods of time (greater than 5 months versus less than 1 month). Empty capsules also provoked this cellular response. Thus, encapsulation of islets resulted in slightly prolonged islet survival, which was further enhanced by immunosuppression.
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The structure of rat galanin, recently elucidated using recombinant DNA technology, differs from porcine galanin by three amino acid residue substitutions at positions located in the C-terminal region. A synthetic replicate of the proposed structure of rat galanin was prepared and its potency to inhibit insulin responses to glucose in anesthetized rats was compared with that of porcine galanin. Within experimental error, the dose-response curves of porcine and rat galanin to inhibit glucose-stimulated rat insulin responses were indistinguishable. The ED50 dose of porcine galanin was 0.6 micrograms/100 g body weight and for rat galanin 0.8 micrograms/100 g body weight. These results suggest that the C-terminal region of the molecule is not essential for galanin's potent inhibitory action on insulin responses to glucose administration.
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In the rat, prolonged enteral or parenteral alimentation with a high-carbohydrate diet results in hyperinsulinemia, which is substantially greater with the parenteral route. Supplementing the parenteral infusate with porcine gastric inhibitory polypeptide (GIP) to approximate plasma immunoreactive GIP levels achieved with enteral feeding further increases steady-state plasma insulin and glucose concentrations, suggesting insulin resistance. We examined the effects of sustained hyperinsulinemia elicited by continuous nutrient infusion on insulin binding to isolated rat adipocytes and the modification of this response by GIP. Compared with a baseline group, both enterally and parenterally alimented groups showed decreased insulin receptor binding affinity. However, despite substantially different steady-state plasma insulin levels, insulin binding was similar with either infusion route. Factors other than plasma insulin concentration alone therefore contribute to insulin receptor down-regulation during prolonged enteral alimentation. Supplementing the parenteral infusate with exogenous GIP resulted in a further reduction in insulin receptor affinity. Thus, adaptation to continuous nutrient infusion is characterized by insulin receptor down-regulation regardless of the route of nutrient delivery. An additional suppression of insulin receptor binding may in part be responsible for the insulin resistance elicited by prolonged exogenous GIP administration.
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