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P C Mathias

Publications and source records attributed to P C Mathias.

At least 19 recordsLinked to original sources

Acute effects of fatty acids on insulin secretion from rat and human islets of Langerhans.

Fatty acids have both stimulatory and inhibitory effects on insulin secretion. Long-term exposure to fatty acids results in impaired insulin secretion whilst acute exposure has generally been found to enhance insulin release. However, there are conflicting data in the literature as to the relative efficacy of various fatty acids and on the glucose dependency of the stimulatory effect. Moreover, there is little information on the responses of human islets in vitro to fatty acids. We have therefore studied the acute effects of a range of fatty acids on insulin secretion from rat and human islets of Langerhans at different glucose concentrations. Fatty acids (0.5 mM) acutely stimulated insulin release from rat islets of Langerhans in static incubations in a glucose-dependent manner. The greatest effect was seen at high glucose concentration (16.7 mM) and little or no response was elicited at 3.3 or 8.7 mM glucose. Long-chain fatty acids (palmitate and stearate) were more effective than medium-chain (octanoate). Saturated fatty acids (palmitate, stearate) were more effective than unsaturated (palmitoleate, linoleate, elaidate). Stimulation of insulin secretion by fatty acids was also studied in perifused rat islets. No effects were observed at 3.3 mM glucose but fatty acids markedly potentiated the effect of 16.7 mM glucose. The combination of fatty acid plus glucose was less effective when islets had been first challenged with glucose alone. The insulin secretory responses to fatty acids of human islets in static incubations were similar to those of rat islets. In order to examine whether the responses to glucose and to fatty acids could be varied independently we used an animal model in which lactating rats are fed a low-protein diet during early lactation. Islets from rats whose mothers had been malnourished during lactation were still able to respond effectively to fatty acids despite a lowered secretory response to glucose. These data emphasise the complex interrelationships between nutrients in the control of insulin release and support the view that fatty acids play an important role in glucose homeostasis during undernutrition.

Animals↗

Off-resonance effects in two-dimensional NQR spectroscopy using a single crystal.

Two-dimensional nutation pure NQR experiments on 35Cl have been carried out on a single crystal of NaClO3. The 2D nutation experiment separates out different orientations of each chemically equivalent site in a unit cell as a separate frequency in the omega1 domain. The squares of the observed frequencies lie on a straight line with respect to the squares of the offsets, confirming the expected offset dependence quantitatively. The intercepts at zero offset yield the relative orientations of the efg tensors with respect to the axis of the radiofrequency coil.

Crystallization↗

Effect of L-thyroxine administration on antithyroid antibody levels, lipid profile, and thyroid volume in patients with Hashimoto's thyroiditis.

The changes in the serum thyroid autoantibodies, antithyroglobulin (TgAb) and antithyroid-peroxidase (TPOAb), lipid profile, and thyroid volume following L-thyroxine (L-T4) therapy is still a controversial matter. We studied 23 patients with goiter due to Hashimoto's thyroiditis; 10 had clinical hypothyroidism (CH) and 13 had subclinical hypothyroidism (SH). Both groups received L-T4 (2.0 to 2.5 micrograms/kg/day) for a median period of 6 months. Serum concentration of TgAb (normal value: < 200 mUI/mL) and TPOAb (normal value: < 150 mUI/mL) were measured by a sensitive IRMA using 125I protein-A. Thyroid volume was determined by ultrasound (normal value: 8-14 mL). At the end of the observation period the median serum TSH concentration decreased significantly in both groups (42.9 to 0.55 in CH and 2.4 to 0.74 mU/L in SH patients) and serum FT4I levels increased only in the CH group (0.87 to 2.1; p < 0.05). Serum TgAb concentration did not change in SH patients (72 to 218 mUI/mL) but declined in CH patients (364.5 to 75 mU/mL; p < 0.05). TPOAb levels also fell in the CH group (871 to 194 mUI/mL; p < 0.05) and no significant change was noted in SH patients (260 to 116 mUI/mL). Further, a significant correlation was obtained between TSH and either TPOAb concentration (rs = 0.569, p < 0.01) or thyroid volume (rs = 0.488, p < 0.05) in the CH group but not in SH patients (rs = 0.232, NS). LDL-cholesterol was higher in the CH (159.4 mg/dL) compared with the SH group (116 mg/dL). Moreover, only in the CH patients was there a significant fall in total cholesterol (224.5 to 165.5 mg/dL, p < 0.05) and in LDL-cholesterol (159.4 to 104.3 mg/dL, p < 0.05) values. The thyroid volume decreased in all patients with CH and in 77% (10/13) of SH patients and a significant median in the thyroid volume decrease was found (39.7% of initial volume in the CH group and 80.9% in SH patients; p < 0.01). The influence of L-T4 on both thyroid autoantibody levels and thyroid volume might be explained by reduction of antigenic substance through a decreased stimulation of thyroid tissue by circulating TSH as was seen in CH but not in SH patients. The benefits of the administration of L-T4 replacement therapy in SH patients due to Hashimoto's thyroiditis remain to be clarified.

Adolescent↗

Undernutrition during early lactation as an alternative model to study the onset of diabetes mellitus type II.

In order to characterize an alternative animal model for the study of diabetes mellitus type II onset, we compared the effects of a diet containing 8% of protein (LPD) and a normal diet containing 25% of protein supplied to the dams during the first 12 days of lactation. We studied in the pups the growth evolution and, when they develop into adults (60 days), the glucose tolerance test (GTT) and the insulin secretion, in response to stimulatory concentrations of glucose. The weight of the two groups were significantly different at 60 days of age (LPD = 179 +/- 19 g; NPD = 186 +/- 18 g). The GTT ten minutes after iv glucose administration showed a significant increase of blood glucose concentration of the LPD group (LPD = 550 +/- 17 mg/dl; NPD = 425 +/- 13 mg/dl, p < 0.001). The insulin secretion, four minutes after stimulation was found reduced in the LPD group (LPD = 1.1 +/- 0.08 muU/islet/min; NPD = 1.85 +/- 0.2 muU/islet/min.). The present study indicates insulin secretory and/or resistance impairment due to early undernutrition. Also, the data taken together suggest that undernutrition during early lactation can be used as an alternative model to study particular characteristics of the onset of diabetes mellitus type II.

Animals↗

Effect of epinephrine on 86Rb efflux, 45Ca outflow and insulin release from pancreatic islets perifused in the presence of propranolol.

Pancreatic islets prelabelled with either 86Rb or 45Ca were perifused in the presence of propranolol (0.1 microM) and, when required, exposed to epinephrine (0.1 microM). In the absence of D-glucose, epinephrine failed to cause any obvious change in either 86Rb or 45Ca outflow. In the presence of 16.7 mM D-glucose, however, epinephrine lowered both 86Rb and 45Ca outflow, this coinciding with suppression of insulin release. Epinephrine also suppressed the increment in 86Rb outflow evoked by a rise in glucose-concentration from 8.3 to 16.7 mM. Epinephrine did not abolish the early fall in 45Ca efflux evoked by the administration of D-glucose (16.7 mM) to islets previously deprived of the hexose but, within the same experiments, impaired the secondary rise in effluent radioactivity. Likewise, epinephrine prevented the increase in 45Ca outflow provoked by a rise in hexose concentration from 8.3 to 16.7 mM. These findings are compatible with the recent proposal that epinephrine interferes with the entry of Ca2+ into the B-cell, as mediated by voltage-sensitive Ca2+ channels, but do not rule out a multifactorial coupling between the occupancy of alpha 2-adrenergic receptors and the eventual inhibition of insulin release.

Animals↗

Stimulus-secretion coupling of arginine-induced insulin release. Functional response of islets to L-arginine and L-ornithine.

L-Arginine and L-ornithine stimulate insulin release from pancreatic islets exposed to D-glucose. This coincides with an increased outflow of 86Rb and 45Ca from prelabelled islets and an increased net uptake of 45Ca by the islets. In the presence of D-glucose, L-lysine stimulates insulin secretion to the same extent as L-arginine or L-ornithine, but the hormonal release is not further enhanced by combinations of these cationic amino acids. L-Arginine or L-ornithine failed to enhance insulin release evoked by either L-leucine or 2-ketoisocaproate. The inhibitor of ornithine decarboxylase D,L-alpha-difluoromethyl ornithine failed to affect the metabolism and insulinotropic action of D-glucose in pancreatic islets, and only caused a partial inhibition of the secretory response to either L-arginine or L-ornithine. The latter amino acids inhibited modestly but significantly D-glucose utilization and oxidation by pancreatic islets. These and complementary findings suggest that the secretory response to L-arginine and L-ornithine is not attributable to any major change in the overall oxidative catabolism of nutrients, but involves mainly a biophysical component, such as the depolarization of the plasma membrane by these cationic amino acids.

Animals↗

The coupling of metabolic to secretory events in pancreatic islets: inhibition by 2-cyclohexene-1-one of the secretory response to cyclic AMP and cytochalasin B.

In rat pancreatic islets perifused in the presence of 2-cyclohexene-1-one (CHX; 1.0 mM), the secretory response to either D-glucose or 2-ketoisocaproate, but not that evoked by the association of L-leucine and L-glutamine, was severely decreased. This coincided with a decreased stimulation of [45Ca] efflux from prelabelled islets, whereas the inhibitory action of D-glucose or 2-ketoisocaproate upon both [86Rb] and [45Ca] efflux appeared little or not affected. In the presence of D-glucose, the islets exposed to CHX were virtually unresponsive to either forskolin, theophylline or cytochalasin B. A severe decrease in the secretory response to forskolin was also observed in CHX-treated islets exposed to L-leucine and L-glutamine. Except for a somewhat lower sensitivity to NaF, no major change in adenylate cyclase activity or cyclic AMP production was observed in CHX-treated islets. The activity of protein kinase A was decreased in such islets but its responsiveness to cyclic AMP appeared unaltered. Transglutaminase activity was severely decreased in homogenates derived from CHX-treated islets. These findings suggest that CHX, possibly by lowering the GSH content of islet cells, impairs the functional capacity of the effector system for insulin release, in addition to and independently of any effect that it may exert upon nutrient catabolism and cationic fluxes in the islet cells.

Adenylyl Cyclases↗

Fasting-induced dissociation of cationic and secretory events in pancreatic islets.

In pancreatic islets removed from 48 h-fasted rats, as distinct from fed animals, the release of insulin evoked by D-glucose is more severely impaired than that evoked by 2-ketoisocaproate. This decreased secretory response to D-glucose contrasts with an unimpaired cationic response to the sugar in terms of the glucose-induced decrease in both 86Rb and 45Ca outflow from pre-labelled islets. Likewise, fasting only causes a modest decrease of the secondary rise in 45Ca outflow evoked by D-glucose in islets perifused at normal Ca2+ concentration. The latter decrease appears more marked, however, if the cationic response to glucose is expressed relative to that evoked by 2-ketoisocaproate in islets removed from rats in the same nutritional state. It is concluded that, in the process of nutrient-stimulated insulin release, neither the decrease in K+ conductance (inhibition of 86Rb outflow) nor the sequestration of Ca2+ by intracellular organelles and/or direct inhibition of Ca2+ outward transport (decrease in 45Ca outflow) represent the sole determinant(s) of the subsequent gating of Ca2+ channels (secondary rise in 45Ca efflux).

Animals↗

Cholinergic stimulation of ion fluxes in pancreatic islets.

Cholinergic agents are known to stimulate the hydrolysis of polyphosphoinositides in pancreatic islets. The effect of carbamylcholine upon ion fluxes in the islet cells was investigated. Carbamylcholine provoked a rapid but poorly sustained increase in 45Ca and 86Rb outflow from perifused islets. Such a cationic response was observed at different glucose concentrations (zero to 16.7 mM), at three concentrations of carbamylcholine (10 microM, 100 microM and 1.0 mM), and in the absence or presence of extracellular Ca2+. It coincided with a biphasic stimulation of insulin release, both the cationic and secretory responses being abolished in the presence of atropine (10 microM). At variance with nutrient secretagogues, carbamylcholine failed to affect the net production of cyclic AMP and caused a transient decrease in 32P outflow from islets prelabelled with [32P]phosphate. It is proposed that cholinergic agents mobilize Ca2+ from intracellular sites, possibly through generation of inositol, 1,4,5-triphosphate from phosphatidylinositol 4,5-bisphosphate. The intracellular redistribution of Ca2+ does not appear sufficient, however, to account fully for the secretory response, which may also involve activation of protein kinase C by diacylglycerol.

Animals↗

Stimulation of protein kinase C and insulin release by 1-oleoyl-2-acetyl-glycerol.

The membrane-accessible diacylglycerol 1-oleoyl-2-acetyl-sn-glycerol (OAG, 5-500 microM) caused a dose-related activation of protein kinase C in rat islet homogenates. In islet cell membranes exposed to [gamma-32P]ATP, OAG (100 microM) stimulated the net production of labelled phosphatidate and inhibited that of labelled phosphatidylinositol 4-phosphate. In intact islets exposed to 5.6 mM D-glucose, OAG (100 microM) decreased the outflow of 86Rb, increased that of 45Ca and caused a rapid stimulation of insulin release. The secretory response to OAG was dose-related in the 50-500 microM range, being most marked, in relative terms, at a glucose concentration close to the threshold value for stimulation of insulin release by this hexose. It was decreased but not abolished in the absence of CaCl2 and presence of EGTA. At variance with tumor-promoting phorbol esters, OAG failed to potentiate insulin release stimulated by a hypoglycaemic sulphonylurea. Although these findings support the view that activation of protein kinase C by diacylglycerol represents an efficient modality for stimulation of insulin release, they suggest that the effect of OAG upon islet function may not be solely attributable to such an activation.

Animals↗

The coupling of metabolic to secretory events in pancreatic islets. The possible role of glutathione reductase.

The participation of glutathione reductase in the process of nutrient-stimulated insulin release was investigated in rat pancreatic islets exposed to 1,3-bis(2-chloroethyl)-1-nitrosourea (BCNU). BCNU caused a time-and dose-related, irreversible inhibition of glutathione reductase activity. This coincided with a fall in both GSH/GSSG ratio and the thiol content of the islets. Pretreatment of the islets with BCNU inhibited the oxidation of glucose and its stimulant action upon both 45Ca net uptake and insulin release. Although BCNU (up to 0.5 mM) failed to affect the oxidation of L-leucine and L-glutamine, it also caused a dose-related inhibition of insulin release evoked by the combination of these two amino acids. The latter inhibition was apparently not fully accounted for by the modest to negligible effects of BCNU upon 45Ca uptake, 45Ca efflux, 86Rb efflux and cyclic AMP production. Since BCNU failed to inhibit insulin release evoked by the association of Ba2+ and theophylline, these results support the view that glutathione reductase participates in the coupling of metabolic to secretory events in the process of nutrient-stimulated insulin release. However, the precise modality of such a participation, for example the control of intracellular Ca2+ distribution, remains to be elucidated.

Animals↗

Stimulation by glucose and carbamylcholine of phospholipase C in pancreatic islets.

Phosphoinositide hydrolysis in intact pancreatic islet cells was investigated in an indirect but dynamic manner by monitoring the efflux of radioactivity from islets prelabelled with [3H]inositol. A rise in glucose concentration provoked a rapid, modest but sustained increase in effluent radioactivity, this phenomenon being abolished in the absence of extracellular Ca2+ or presence of verapamil. The release of [3H]inositol was also stimulated at high extracellular K+ concentration, but not by gliclazide. Whether in the presence or absence of glucose, carbamylcholine provoked a marked increase in effluent radioactivity. The response to the cholinergic agent was decreased in the presence of verapamil or absence of extracellular Ca2+ and abolished in the presence of atropine or LiCl. These results suggest that an increase in cytosolic Ca activity, as caused by glucose or membrane depolarization, may cause activation of phospholipase C. In response to cholinergic agents, however, the enzymic activation, although modulated by Ca2+ availability, may result directly from the occupation of muscarinic receptors.

Animals↗

Stimulation of insulin release by an organic calcium agonist.

The calcium-agonist 4-[2-(difluoromethoxy)phenyl]-1,4,5,7-tetrahydro-2-methyl-5-oxo-fu ro[ 3,4-b]pyridine-3-carboxylic acid ethylester provoked, in the 1.0-100 mumol/l range, a dose-related increase of glucose-stimulated insulin release by rat pancreatic islets. A fixed concentration of the drug (50 mumol/l) caused a shift to the left of the sigmoidal curve relating insulin output to glucose concentration. The drug failed to affect insulin release evoked, in the absence of Ca2+, by the combination of Ba2+ and theophylline. The enhancing action of the calcium-agonist upon insulin release was rapid and sustained, and coincided with stimulation of both 45Ca net uptake and 45Ca efflux, the latter phenomenon being abolished in the absence of extracellular Ca2+. It is concluded that the gating of Ca-channels, as presumably provoked by the calcium-agonist, simulates the stimulant action of glucose upon both Ca influx into and insulin release from the pancreatic islets.

Animals↗

Role of transglutaminase in insulin release. Study with glycine and sarcosine methylesters.

The Ca2+-responsive enzyme transglutaminase, which catalyzes the cross-bridging of proteins, is present in pancreatic islet cells, but its participation in the process of insulin release remains to be documented. Glycine methylester (1.0-10.0 mM) inhibited, in a dose-related manner, transglutaminase activity in rat pancreatic islet homogenates, decreased [14C]methylamine incorporation into endogenous proteins of intact islets, and caused a rapid and reversible inhibition of insulin release evoked by D-glucose, while failing to affect D-[U-14C]glucose oxidation. Glycine methylester also inhibited insulin release induced by other nutrient or nonnutrient secretagogues. Sarcosine methylester failed to affect transglutaminase activity, [14C]methylamine incorporation, and insulin release. Both methylesters mobilized 45Ca from prelabeled intact islets, from membranes of islet cells, liver or brain, and from artificial lipid multilayers, this Ca mobilization being apparently unrelated to changes in transglutaminase activity. It is proposed that, in the pancreatic B cell, transglutaminase participates in the machinery controlling the access of secretory granules to the exocytotic sites.

Acyltransferases↗

Suppression by 2-ketoisocaproate of the insulinotropic action of hypoglycemic sulfonylureas.

Tolbutamide (370 microM), gliclazide (62 microM) and glibenclamide (1 microM) failed to enhance insulin release evoked by 2-ketoisocaproate (10 mM) in rat pancreatic islets. Gliclazide also little affected insulin release evoked by 2-ketoisocaproate, whereas the hypoglycemic sulfonylurea stimulated insulin release from islets incubated in the absence of exogenous nutrient or presence of either L-glutamine, D-glucose, D-mannose, D-glyceraldehyde, L-leucine or the combination of D-glucose and pyruvate. In the presence of 2-ketoisocaproate, a modest secretory response to gliclazide was observed when the concentration of the 2-keto acid was decreased to 5 mM, or in perifused islets in which case gliclazide caused a transient increase in both 45Ca outflow and insulin output from prelabelled islets exposed to 10 mM 2-ketoisocaproate. Gliclazide and other hypoglycemic sulfonylureas failed to affect the oxidation of 2-[U-14 c]-ketoisocaproate and the latter 2-keto acid failed to affect the ionophoretic action of gliclazide in an artificial membrane model. Gliclazide increased 45Ca net uptake by islets exposed to 2-ketoisocaproate, but this effect of the sulfonylurea was much less marked than that seen in the presence of D-glucose used at a concentration of equal insulinotropic efficiency. These findings indicate that 2-ketoisocaproate impairs the cationic and secretory responses of islets to hypoglycemic sulfonylureas. It is proposed that such an impairment is compatible with the view that a remodelling of ionic fluxes in the islet cells represents a primary event in the process of sulfonylurea-stimulated insulin release.

Animals↗

Stimulation by glucose and carbamylcholine of phospholipase A2 in pancreatic islets.

Glucose, in high concentrations (16.7-27.8 mM), caused a modest increase in effluent radioactivity from rat pancreatic islets prelabelled with [U-14C] arachidonate. The response to glucose was abolished in the absence of extracellular Ca2+. At a low glucose concentration (5.6 mM), carbamylcholine (1.0 mM) provoked a more marked and sustained increase in effluent radioactivity. The response to the cholinergic agent was abolished in the presence of atropine or absence of extracellular Ca2+. These results suggest that carbamylcholine and, to a lesser extent, glucose cause a Ca2+-dependent activation of phospholipase A2 in intact islet cells.

Animals↗

Gating and blocking of calcium channels by dihydropyridines in the pancreatic B-cell.

The organic calcium-antagonist nifedipine inhibits glucose-stimulated 45Ca net uptake and insulin release by rat pancreatic islets. However, the chemically related dihydropyridine derivative BAY K 8644 (methyl 1,4-dihydro-2,6-dimethyl-3-nitro-4-(2-trifluoromethylphenyl)-pyridine-5- carboxylate) enhances 45Ca net uptake and insulin release and protects the B-cell against the inhibitory action of nifedipine. It is proposed that a regulatory site exists in or near the calcium channels, in the B-cell plasma membrane, and that occupation of this site by selected dihydropyridines may either facilitate or inhibit Ca2+ influx into the B-cell.

3-Pyridinecarboxylic acid, 1,4-dihydro-2,6-dimethy↗

Inhibition by mepacrine and p-bromophenacylbromide of phosphoinositide hydrolysis, glucose oxidation, calcium uptake and insulin release in rat pancreatic islets.

Mepacrine and p-bromophenacylbromide were both found to impair 3H-inositol phosphate production in response to both nutrient and hormone-neurotransmitter stimuli in islets prelabelled with 3H-inositol. Both drugs also inhibited net 45Ca uptake in response to glucose or glibenclamide and considerably modified the patterns of 45Ca and 86Rb efflux from perifused islets under both basal and glucose-stimulated conditions. In addition, the oxidation of [U-14C] glucose in islets was impaired by either mepacrine or p-bromophenacylbromide. These inhibitory effects were found to be concentration-related for both mepacrine (0.01-1.0 mM) and p-bromophenacylbromide (0.03-0.3 mM) and were accompanied, in general, by a similar degree of inhibition of insulin secretion. These results suggest that both mepacrine and p-bromophenacylbromide can inhibit phospholipase C activity in intact islets, but also impair 45Ca and 86Rb fluxes and oxidation of nutrients. The diversity of these drugs' inhibitory actions makes them unsuitable tools for examining the role of specific cellular processes in the regulation of islet function.

Acetophenones↗