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Biomedical subjects

P C Butler

Publications and source records attributed to P C Butler.

At least 55 records · Page 3Linked to original sources

Methods for assessment of the rate of onset and offset of insulin action during nonsteady state in humans.

Measurement of glucose turnover under non-steady-state conditions has proven problematic. When the mass of the glucose pool is not changing (i.e., glucose concentrations are constant) non-steady-state error can be minimized if all glucose entering the circulation has the same specific activity as plasma [radioactive infused glucose (hot-GINF) method]. Alternatively, a second tracer can be used to measure the effective volume of glucose [variable-pV method of Issekutz (T. Issekutz, R. Issekutz, and D. Elahi. (Can. J. Physiol. 52:215-224, 1974)]. To determine whether these techniques provide concordant assessments of insulin action under non-steady-state conditions, glucose turnover was measured in six subjects. After initiation of insulin (0.6 mU.kg-1 x min-1), both methods indicated similar rates of suppression of hepatic glucose release, which was complete by approximately 100-120 min. In contrast, the traditional fixed-pV method of Steele (R. Steele, J. Wall, R. DeBodo, and N. Altszuler. Am. J. Physiol. 187:15-24 1956) underestimated turnover (P < 0.01) resulting in apparent complete suppression of glucose release within approximately 40 min (P < 0.01 vs. other methods). The hot-GINF and variable-pV methods also yielded similar estimates of turnover after discontinuation of insulin. Both indicated that resumption of hepatic glucose release was slower (P < 0.01) and fall of glucose uptake faster (P < 0.01) than suggested by the fixed-pV method. Thus both the hot-GINF and variable-pV methods avoid non-steady-state error introduced by the fixed-pV method and provide concordant assessments of the rate of onset and offset of insulin action.

Adult↗

Islet amyloid polypeptide: a review of its biology and potential roles in the pathogenesis of diabetes mellitus.

Islet amyloidosis (IA) is the principal lesion in the endocrine pancreas of human beings with non-insulin-dependent diabetes mellitus (NIDDM) and in the similar forms of diabetes mellitus in domestic cats and macaques. As such, the delineation of the pathogenesis of this form of amyloidosis may be crucial to the understanding of the development and progression of NIDDM. Islet amyloid polypeptide (IAPP) is a recently discovered polypeptide that is the principal constituent of IA in human beings, cats, and macaques. IAPP is produced by the pancreatic beta-cells and is co-packaged with insulin in the beta-cell secretory vesicles. Immunohistochemical and physiologic evidence supports the notion that the beta-cells are heterogenous with respect to their relative contents of insulin and IAPP. Therefore, although IAPP is co-secreted with insulin in response to a variety of well-known insulin secretagogues, the molar ratio of these two proteins that is released from the islets may vary, depending upon the glucose concentration and prevailing metabolic milieu. IAPP is highly conserved among mammalian species and has about 45% homology to another neuropeptide, calcitonin gene-related peptide. IAPP is encoded by a single-copy gene located, in the human being, on chromosome 12. IAPP is expressed as a 93 (murine)-89 (human)-amino acid prepropolypeptide that is processed enzymatically, resulting in the removal of amino- and carboxy-terminal propeptide segments. The 20-29 region of the IAPP molecule is most important in the ability of IAPP to form amyloid fibrils. The role of IAPP and IA in the pathogenesis of human NIDDM and similar forms of diabetes mellitus in cats and macaques may involve several possible mechanisms, including 1) direct physical/chemical damage to beta-cells, resulting in necrosis and loss of functional islet tissue, 2) biologic activities of IAPP that oppose those of insulin or abnormally suppress insulin secretion, and 3) interference by IA deposits of passage of insulin out of beta-cells and/or entrance of glucose and other secretogogues into the islet. The roles of each of these possible mechanisms have yet to be demonstrated. In addition, the physiological significance of the apparent IAPP deficiency in both insulin-dependent diabetes mellitus and NIDDM is currently unknown.

Amino Acid Sequence↗

Effects of a physiological growth hormone pulse on substrate metabolism in insulin-dependent (type 1) diabetic subjects.

When present in inappropriate amounts GH induces substantial insulin resistance and it has furthermore been suggested that modest nocturnal surges of GH may precipitate the emergence of the dawn phenomenon. To characterize the metabolic effects of physiologically relevant, small-scale GH exposure, six type 1 diabetic subjects were studied for 5 h in the postabsorptive state after an iv pulse of either 210 micrograms GH or saline. Identical amounts of insulin were infused on both occasions to maintain a prevailing blood glucose concentration of 125 +/- 12 mg/100 ml. The GH bolus caused an increase in serum GH levels to a peak value of 22 +/- 2 micrograms/L after 10 min, a 70% increase in serum FFA (from 570 +/- 80 to 980 +/- 60 mumol/L) and a 400% increase in blood 3-hydroxybutyrate (3-OHB) (from 100 +/- 15 to 420 +/- 35 mumol/l) concentrations after 180 and 240 min respectively (P less than 0.05). Blood glycerol and forearm uptake of 3-OHB rose in parallel (P less than 0.01). Plasma glucose, isotopically measured glucose turnover and forearm glucose uptake was not affected by GH. Blood lactate concentrations increased (P less than 0.05) and nonoxidative glucose use and lipid oxidation tended to increase with GH. Energy expenditure remained unaffected. These results suggest that under everyday conditions GH acts as an important regulator of fuel fluxes in type 1 diabetic subjects, the main effect being a transient stimulation of lipolysis. Since no significant effect on glucose metabolism was recorded, we do not presently find evidence to support a primary role for small surges of GH in the pathogenesis of the dawn phenomenon.

Adult↗

The effects of human proinsulin on glucose turnover and intermediary metabolism.

We compared the effects of human proinsulin and human insulin on glucose disposal, suppression of hepatic glucose production (HGP), and intermediary carbohydrate and lipid metabolism. Six young, lean, subjects underwent eight separate euglycemic clamps with low-dose intravenous (IV) infusions of insulin and proinsulin (four each). The insulin infusions gave steady-state levels of 0.08 +/- 0.004 (I1), 0.12 +/- 0.003 (I2), 0.18 +/- 0.07 (I3), and 0.25 +/- 0.06 nmol/L (I4). The proinsulin infusions were chosen to give steady-state levels approximately 20-fold higher on a molar basis than insulin, based on previous findings that proinsulin has only 5% to 10% the biological potency of insulin. Steady-state proinsulin levels were 1.2 +/- 0.04 (P1), 2.8 +/- 0.07 (P2), 4.5 +/- 0.3 (P3), and 6.9 +/- 0.3 nmol/L (P4). HGP was suppressed equally by proinsulin and insulin at the four dose levels. Percentage elevation of glucose disposal was significantly increased during each of the insulin infusions compared with proinsulin: I1 107% +/- 4%, P1 87% +/- 4% (P = .03); I2 143% +/- 7%, P2 125% +/- 12% (P = .01); I3 238% +/- 38%, P3 173% +/- 22% (P = .03); I4 283% +/- 17%, P4 178% +/- 11% (P = .002). Dose-response curve analysis demonstrated that proinsulin stimulated glucose disposal approximately 3.3% compared with insulin. The effectiveness of proinsulin in suppressing HGP was approximately 5% compared with insulin. Plasma nonesterified fatty acids, blood glycerol, and 3-hydroxybutyrate were suppressed by similar amounts during each of the four insulin and proinsulin doses.(ABSTRACT TRUNCATED AT 250 WORDS)

Adult↗

The nocturnal increase in growth hormone is not the cause of the nocturnal increase in serum osteocalcin.

Osteoblast activity, as measured by the serum osteocalcin (OC) concentration, increases at night in both normal women and women with postmenopausal osteoporosis. Because there is also a physiological increase in GH during deep sleep and the nocturnal increases in serum OC and GH concentrations both become less pronounced with advancing age, we used somatostatin (SMS) infusion to evaluate the effect of suppression of the nocturnal GH increase on the expected increase in serum OC. Serum OC levels were measured during an 8-h iv infusion of SMS and during a similar infusion of isotonic saline (control night) in five young women (mean age +/- SE, 21 +/- 2 yr). SMS significantly (P less than 0.05) decreased secretion of endogenous GH. The mean increases in serum OC concentration were similar during SMS infusion and control nights. Furthermore, the nocturnal pattern of increase in serum OC levels during GH or saline infusions did not differ. From these data, we conclude that the nocturnal increases in serum OC and GH levels are not related.

Adult↗

Contribution to postprandial hyperglycemia and effect on initial splanchnic glucose clearance of hepatic glucose cycling in glucose-intolerant or NIDDM patients.

Excessive amounts of glucose enter the systemic circulation when patients with non-insulin-dependent diabetes mellitus (NIDDM) eat a carbohydrate-containing meal. To determine the contribution of hepatic glucose cycling (defined as the net effect of glucose/glucose-6-phosphate cycling and uptake and release of glucose from hepatic glycogen) to postprandial hyperglycemia, diabetic, glucose-intolerant, and nondiabetic subjects were fed mixed meals. The meal contained both [2-3H]glucose (an isotope that is extensively detritiated during hepatic glucose cycling) and [6-3H]glucose (an isotope that is not detritiated during hepatic glucose cycling). Of the 50 g of carbohydrate contained in the meal, approximately 4-8 g underwent hepatic glucose cycling. Although total cycling of ingested glucose did not differ between diabetic, glucose-intolerant, and nondiabetic subjects (361 +/- 67 vs. 494 +/- 106 vs. 322 +/- 44 mumol.kg-1.5 h-1, respectively), the data suggested that hepatic cycling was increased in the diabetic and glucose-intolerant individuals but not in the nondiabetic subjects during the first 2 h after eating. Hepatic cycling during the first 2 h after eating was correlated with the prevailing glucagon concentration (r = 0.6, P less than 0.01) and increased (P less than 0.05) as hepatic glucose release increased. Hepatic glucose cycling had a marked effect on the measurement of so-called initial splanchnic glucose uptake. Nevertheless, however measured, initial splanchnic glucose uptake was not decreased and, if anything, was increased in diabetic and glucose-intolerant patients. Integrated postprandial hepatic glucose release increased (r less than 0.01) with the severity of fasting hyperglycemia.(ABSTRACT TRUNCATED AT 250 WORDS)

Blood Glucose↗

Total-body potassium in insulin-dependent diabetes mellitus.

1. Total-body potassium and fat-free mass have been measured in 31 insulin-dependent diabetic patients and 31 age- and sex-matched normal volunteers. 2. Body mass index was significantly higher in the insulin-dependent diabetic patients (24.7 +/- 0.5 vs 23.3 +/- 0.4 kg/m2; P = 0.05). 3. Total-body potassium, uncorrected and corrected for weight and for fat-free mass, was not significantly different in the two groups (3281 +/- 141 mmol, 47.3 +/- 1.3 mmol/kg body weight, 60.9 +/- 1.0 mmol/kg fat-free mass, and 3315 +/- 143 mmol, 48.6 +/- 1.0 mmol/kg body weight, 60.4 +/- 0.8 mmol/kg fat-free mass, respectively, in diabetic patients and non-diabetic subjects). There was no relationship between blood glucose control, as assessed by glycated haemoglobin concentrations, and total-body potassium. 4. These results suggest, by contrast with previous reports, that in insulin-dependent diabetic patients, showing varying degrees of glycaemic control (glycated haemoglobin range 6.1-15.3%, mean 9.0%) that: (a) there is no significant abnormality of body potassium homoeostasis, and (b) there is no relation between total-body potassium and glycaemic control.

Adolescent↗

Underestimation of glucose turnover corrected with high-performance liquid chromatography purification of [6-3H]glucose.

We have recently reported that during infusion of commercially available [6-3H]glucose, a radioactive nonglucose contaminant may accumulate in plasma causing errors in the measurement of glucose turnover. To determine whether purification of this tracer by HPLC (high-performance liquid chromatography) before infusion would eliminate the contaminant in plasma and remove the underestimation of glucose turnover reported during hyperinsulinemia, four normal subjects each underwent two 5-h euglycemic clamps during infusion of insulin (1 mU.kg-1.min-1). Glucose turnover was measured with either commercially available [6-3H]glucose or with HPLC-purified [6-3H]glucose. HPLC analysis of samples from the clamps done with commercially available [6-3H]glucose showed that 9.7% of the infused tracer and 26% of the "plasma glucose 3H radioactivity" were contaminants. In contrast, no contaminant was observed in the plasma during infusion of HPLC-purified [6-3H]glucose. During the last hour of the clamp, mean glucose turnover using commercially available [6-3H]glucose was less (P less than 0.01) than the mean glucose infusion rate (7.6 +/- 0.3 vs. 10.5 +/- 0.3 mg.kg-1.min-1) yielding apparent "negative" (P less than 0.001) hepatic glucose release. In contrast, when HPLC-purified [6-3H]glucose was employed, glucose turnover equaled the glucose infusion rate (10.4 +/- 0.9 vs. 10.2 +/- 0.9 mg.kg-1.min-1) and hepatic glucose release was no longer negative. We conclude that removal of a tritiated nonglucose contaminant in [6-3H]glucose by HPLC yields correct estimations of glucose turnover at steady state.

Adult↗

Lack of growth hormone effect on insulin-associated suppression of insulinlike growth factor binding protein 1 in humans.

Insulinlike growth factor binding protein 1 (IGFBP-1) has been shown to modulate the metabolic and mitogenic actions of the growth hormone (GH)-dependent peptide insulinlike growth factor I. Previous studies showed that levels of IGFBP-1 are regulated by insulin. The relative role of GH in the regulation of IGFBP-1 levels is less well defined and was examined in our study with a contiguous two-part protocol. Overnight (part A) and pre- and post-morning meal (part B) blood samples were obtained from eight healthy adults during a constant infusion of saline (SAL) or 4 micrograms.kg-1.min-1 GH. Five of eight subjects were restudied with glucose (GLUC) infused during part B (SAL + GLUC) to match glucose and insulin to levels observed during GH infusion. During SAL infusion, IGFBP-1 levels measured by specific radioimmunoassay showed a marked immediate decline after the evening meal in part A, with a subsequent nocturnal rise of 2.4- to 17.3-fold. GH infusion resulted in a similar meal-induced fall in IGFBP-1 levels but led to a delayed nocturnal rise in IGFBP-1, which was associated with elevated postprandial insulin concentrations. During part B, changes in plasma IGFBP-1 levels showed a similar pattern, with a delayed postprandial increase observed during both GH and SAL + GLUC infusions. The half-life of IGFBP-1 disappearance was calculated at approximately 2 h for all three infusion groups. Comparison of venous and arterialized blood samples showed no consistent pattern of difference, arguing against peripheral tissue clearance or compartmentalization as the mechanism for the rapid rise and fall in IGFBP-1 levels.(ABSTRACT TRUNCATED AT 250 WORDS)

Adult↗

Effect of insulin on oxidation of intracellularly and extracellularly derived glucose in patients with NIDDM. Evidence for primary defect in glucose transport and/or phosphorylation but not oxidation.

Insulin-stimulated glucose oxidation is decreased in patients with non-insulin-dependent diabetes mellitus (NIDDM). It is not known whether this decrease is due to a primary defect in the oxidative pathway or is secondary to impaired glucose transport and/or phosphorylation. To address this issue, glucose oxidation was measured under steady-state conditions at low (approximately 270 pmol) and high (approximately 17 mumol) insulin concentrations in seven patients with NIDDM and seven healthy nondiabetic subjects matched for sex, age, and obesity. Glucose oxidation was measured simultaneously by indirect calorimetry and the isotopedilution technique. Although glucose oxidation and nonoxidative storage were lower (P less than 0.05) in diabetic than nondiabetic subjects during the low- and high-dose insulin infusions, oxidation of intracellularly derived glucose, estimated by subtracting the rate of oxidation measured isotopically (i.e., glucose oxidation derived from the extracellular space) from that measured by indirect calorimetry (i.e., total glucose oxidation), did not differ in diabetic and nondiabetic subjects during the low-dose insulin infusion (3.3 +/- 0.1 vs. 3.0 +/- 0.1 mumol.kg-1.min-1). Both techniques provided identical estimates of glucose oxidation during the high-dose insulin infusion. Impaired oxidation of extracellularly but not intracellularly derived glucose strongly suggests that the cause of decreased glucose oxidation in patients with NIDDM is secondary to impaired glucose transport and/or phosphorylation rather than a primary abnormality in the oxidative pathway.

Adult↗

Pattern of postprandial carbohydrate metabolism and effects of portal and peripheral insulin delivery.

The importance of portal insulin delivery in the regulation of postprandial carbohydrate metabolism is uncertain. To address this question, three groups of dogs were studied: one group in which pancreatic venous drainage was transected and reanastomosed (portal insulin delivery), one in which the pancreatic drainage was transected and anastomosed to the inferior vena cava (peripheral insulin delivery), and one that received only a sham operation. Plasma insulin was greater (P less than 0.05) during peripheral insulin delivery than in either the portal or sham groups, respectively, before and after meal ingestion. On the other hand, C-peptide concentrations did not differ between groups, resulting in a higher (P less than 0.001) insulin to C-peptide ratio in the peripheral group. This indicated that the hyperinsulinemia in the peripheral group was due to decreased insulin clearance rather than increased insulin secretion. Isotopically determined splanchnic uptake of ingested glucose, postprandial suppression of hepatic glucose release, incorporation of CO2 into glucose (a qualitative measure of gluconeogenesis), and total-body glucose uptake were virtually identical in all groups. Similarly, plasma lipid, beta-hydroxybutyrate, and lactate concentrations did not differ between groups. Our data indicate that, despite differences in systemic insulin concentration, portal and peripheral insulin delivery comparably regulate hepatic and extrahepatic carbohydrate metabolism after meal ingestion.

Animals↗

Hepatic and extrahepatic responses to insulin in NIDDM and nondiabetic humans. Assessment in absence of artifact introduced by tritiated nonglucose contaminants.

It is well established that patients with non-insulin-dependent diabetes mellitus (NIDDM) are resistant to insulin. However, the contribution of hepatic and extrahepatic tissues to insulin resistance remains controversial. The uncertainty may be at least in part due to errors introduced by the unknowing use in previous studies of impure isotopes to measure glucose turnover. To determine hepatic and extrahepatic responses to insulin in the absence of these errors, steady-state glucose turnover was measured simultaneously with [6-3H]- and [6-14C]glucose during sequential 5- and 4-h infusions of insulin at rates of 0.4 and 10 mU.kg-1.min-1 in diabetic and nondiabetic subjects. At low insulin concentrations, [6-3H]- and [6-14C]glucose gave similar estimates of glucose turnover. Hepatic glucose release was equal to but not below zero in the nondiabetic subjects, but persistent glucose release (P less than 0.001) and decreased glucose uptake (P less than 0.001) was observed in the diabetic patients. At high insulin concentrations, both isotopes underestimated glucose turnover during the 1st h after initiation of the high-dose insulin infusion. More time (P less than 0.05) was required to reachieve steady state in NIDDM than nondiabetic subjects. At steady state, [6-3H]- but not [6-14C]glucose systematically underestimated (P less than 0.05) glucose turnover in both groups due to the presence of a tritiated nonglucose contaminant. The percentage of radioactivity in plasma due to tritiated contaminants was linearly related to turnover.(ABSTRACT TRUNCATED AT 250 WORDS)

Adult↗

Effects of meal ingestion on plasma amylin concentration in NIDDM and nondiabetic humans.

Recent interest has focused on the potential role of amylin in the pathogenesis of non-insulin-dependent diabetes mellitus (NIDDM). This 37-amino acid peptide is found in extracellular amyloid deposits in approximately 50% of pancreatic islets of patients with NIDDM and has been shown to inhibit skeletal muscle glycogen synthesis in vitro. Immunocytochemical studies have colocalized amylin and insulin within beta-cell secretory granules in nondiabetic humans, provoking the following questions. Is amylin cosecreted with insulin? Are circulating amylin concentrations higher in patients with NIDDM either before or after food ingestion? To answer these questions, we developed a sensitive and specific immunoassay to measure plasma concentrations of amylin in humans. Use of this assay indicated that, in lean nondiabetic subjects, glucose ingestion resulted in an increase (P less than 0.001) in the plasma concentration of amylin (from 2.03 +/- 0.22 to 3.78 +/- 0.39 pM) and insulin (from 48.3 +/- 3.1 to 265 +/- 44 pM). There was a significant correlation between the concentrations of insulin and amylin (r = 0.74, P less than 0.001) and the increase in insulin and amylin concentration (r = 0.65, P less than 0.005). Fasting concentrations of amylin did not differ in diabetic and weight-matched nondiabetic subjects and showed a similar pattern of change after ingestion of a mixed meal. We conclude that amylin is secreted in response to ingestion of either glucose or a mixed meal and circulates at concentrations that do not differ in patients with NIDDM and nondiabetic subjects. It remains to be determined whether amylin at physiological concentrations influences carbohydrate metabolism and if so whether its effects differ in diabetic and nondiabetic humans.

Adult↗

Diversion of the gastroduodenal vein: an in situ model of systemic insulin drainage.

A technique of diversion of the gastroduodenal vein in a canine model is described to compare long-term metabolic effects of systemic versus portal pancreatic endocrine drainage. The vein was transected at its entrance into the portal vein and either diverted to the inferior vena cava (systemic group) or reanastomosed to the portal vein (portal group). All remaining venous drainage of the pancreas was interrupted. An additional group of animals underwent laparotomy without manipulation of pancreatic vasculature (sham group). Fasting peripheral insulin and glucose values were determined 3 months postoperatively. Fasting insulin values were significantly higher in the systemic group (mean 10.7 +/- 1.06 U/ml) than in the portal (5.8 +/- 0.70, P = 0.002) and sham (6.4 +/- 0.68, P = 0.01) groups. Fasting glucose values were not significantly different in the three groups. At sacrifice, venous thrombosis was noted in one systemically diverted dog (6.7%). All other anastomoses were patent. No significant collateralization was apparent in any group. No significant complications were noted. This procedure simulates the hormonal milieu created by heterotopic pancreatic transplantation while preserving pancreatic innervation and exocrine function, and serves as an excellent model for investigating the effects of systemic hyperinsulinemia on protein, carbohydrate, and lipid metabolism.

Animals↗

Effects of growth hormone on insulin sensitivity and forearm metabolism in normal man.

To elucidate the short-term actions of growth hormone on insulin sensitivity and forearm metabolism, we have studied six normal male subjects receiving a 6-h hyperinsulinaemic euglycemic clamp with and without a concomitant 4-h growth hormone infusion. When infused, serum growth hormone rose to 25 +/- 4 mU/l and during administration of insulin serum insulin increased by 11 +/- 1 mU/l. During euglycemic clamp, administration of growth hormone decreased forearm glucose uptake after 180 min and onward (240 min 0.216 +/- 0.031 vs 0.530 +/- 0.090 mg/100 ml/min, p less than 0.05). Glucose infusion rate (240 min 2.83 +/- 0.24 vs 4.35 +/- 0.28 mg.kg-1.min-1, p less than 0.05) and glucose disposal rate (240 min 3.57 +/- 0.17 vs 4.00 +/- 0.15 mg.kg-1.min-1, p less than 0.05) also decreased. Growth hormone persistently increased hepatic glucose production after 120 min. After 210 min, all circulating lipid intermediates increased slightly. The decrease in forearm glucose uptake and glucose infusion rate and the increase in hepatic glucose production was observed before there was any detectable increase in circulating levels and forearm uptake of lipid intermediates. These data suggest that growth hormone induces insensitivity to insulin in liver, muscle and fat after 120, 180 and 210 min respectively. The early effects of growth hormone on glucose metabolism seems independent of changes in the rate of lipolysis.

Adult↗

Human forearm arteriovenous differences of carnitine, short-chain acylcarnitine and long-chain acylcarnitine.

1. Forearm arterial and venous concentrations of free carnitine, short-chain acylcarnitine, long-chain acylcarnitine, glucose, lactate, pyruvate, alanine, non-esterified fatty acids, glycerol, 3-hydroxybutyrate and acetoacetate were measured in fasted adult subjects. 2. In all subjects there was net uptake of short-chain acylcarnitine, 3-hydroxybutyrate and acetoacetate and net release of free carnitine and non-esterified fatty acids. The arteriovenous differences of the other metabolites were not consistent. 3. These observations support the concept that short-chain acylcarnitine (largely acetylcarnitine) contributes to the flux of metabolic fuels from the liver to muscle in the fasted state, although to a limited extent in comparison with 3-hydroxybutyrate (less than 5% on a molar basis).

3-Hydroxybutyric Acid↗