Search PubMed⌕ Search

Biomedical subjects

J Sehlin

Publications and source records attributed to J Sehlin.

At least 127 records · Page 7Linked to original sources

Further studies on the metabolism of D-glucose anomers in pancreatic islets.

The alpha and beta anomers of commercially available D-(5-3H) glucose were separated by miniaturized Hudson-Dale procedures based on precipitation with acetic acid. Reflectometric measurements of the reactivity with matrix-bound glucose oxidase showed that the preparations were about 90 per cent pure with respect to anomeric composition. Nonradioactive anomers separated by the same procedures were analyzed by optic polarimetry and gas chromatography. The preparations were about 90 per cent pure with respect to anomeric composition and produced no peaks but D-glucose on trimethylsilylation and chromatography. Microdissected pancreatic islets of noninbred ob/ob-mice exhibited a linear production of 3H2O for three to nine minutes when incubated with 6 mM alpha-D-(5-3H) glucose, beta-D-(5-3H) glucose, or D-(5-3H) glucose in anomeric equilibrium; the three glucose preparations did not differ in their rate of conversion to 3H2O. The rate of 3H2O production increased with glucose concentration (3-21 mM) during incubations for three minutes and, again, there was no evidence for the metabolic activity's being dependent on the anomeric composition of the labeled sugar. When microdissected islets were perifused without glucose and suddenly exposed to 5-6 mM alpha-D-glucose or beta-D-glucose, the concentration of glucose-6-phosphate rose within five minutes and did not differ significantly between experiments with alpha-D-glucose and beta-D-glucose. In the same perifusion experiments, only alpha-D-glucose caused a pronounced stimulation of insulin secretion, the difference from beta-D-glucose being significant. The results indicate that the recognition of glucose as an insulin secretagogue does not only involve metabolism by glucose-6-phosphate. The possible roles of the sorbitol pathway and of hypothetical regulatory sites for the glucose molecule ("receptors") are briefly discussed.

Animals↗

Uptake, localization and secretagogic action of some biogenic amines in the submandibular and pancreatic glands of the guinea pig.

The effects of noradrenaline, 5-hydroxytryptamine (5-HT) 5-hydroxyptophan (5-HTP), dopamine, L-DOPA and carbamylcholine on the secretion of amylase from guinea pig submandibular gland and pancreas were studied. Carbamylcholine stimulated both pancreatic and salivary gland amylase release, whereas the biogenic amines elicted amylase secretion only from the submandibular gland. L-DOPA and 5-HTP, the precursor amino acids of dopamine and 5-HT, were without effects. In both glands 5-HT and dopamine were accumlated to a greater extent than their precursor amino acids. The uptake of biogenic amines into acinar cells and their effects on amylase secretion are compared and dicussed in terms of receptor specificity.

5-Hydroxytryptophan↗

Studies on the function of pancreatic islet cell membranes.

Pancreatic islets rich in beta-cells were isolated from non-inbred ob/ob-mice and used for studying various aspects of the function of the plasma membrane. A review is given of the authors' work along the following lines: the role of transmembrane transport or membrane binding in the recognition of insulin-releasing sugars, amino acids, sulfonylureas, and sulphydryl-blocking agents; the role of cyclic 3',5'-AMP and cations in the coupling of stimulus recognition to insulin discharge; alloxan beta-cytotoxicity in vitro and its prevention by sugars; the isolation of a subcellular fraction enriched by plasma membranes. 1. It is suggested that D-glucose is recognized as an insulin secretagogue by being metabolized in the beta-cells; the teleological purpose of the transmembrane transport system being to allow fluctuations of the extracellular glucose concentration to be rapidly transmitted to the cell interior. Insulin-releasing sulfonyluraes and sulphydryl reagents are thought to act directly on the beta-cell plasma membrane, however. 2. Although cyclic 3',5'-AMP may amplify the expression of a secretory signal induced by D-glucose, studies with cholera toxin suggest that activation of the adenylate cyclase does not per se elicit secretion. The increase of islet cyclic 3',5'-AMP observed in response to several secretagogues, including D-glucose, may be secondary to membrane depolarization. 3. The possible role of an electrodiffusional mechanism in controlling the electrical potential is emphasized; a decrease of K+ permeability, rather than an increase of Na+ permeability, is suggested to be involved in the depolarizing action of D-glucose. Studies with the lanthanum-wash technique indicated that D-glucose causes a net flux of Ca2+ from the outside to the inside of the beta-cells. Although this uptake may relate to the enhancement of insulin secretion, the detailed mechanisms are unclear. 4. Inhibition of the Na+/K+ pump may be one of the earliest events in damage to the beta-cell by alloxan, on the basis of Rb+ studies. Protective effects of glucose against alloxan toxicity appear to be close related. 5. Studies of enzyme markers, the binding of wheat germ agglutinin, and electron microscopy indicate the presence of plasma membranes in a smooth-membrane fraction obtained by fractionating islet homogenates at consecutive sucrose gradients.

Alloxan↗

Stimulation of insulin release by thiols.

The effects of thiol compounds on insulin release were studied in microdissected pancreatic islets of non-inbred ob/ob micemin control experiments the reactivity of thiols against 6,6'-dithiodinicotinic acid and the degradation of mouse insulin were measured. At a concentration of 0.1 mM, 1-thio-D-glucose or reduced glutathione potentiated the insulin-releasing action of 10 mM D-glucose without affecting glucose oxidation. When tested at a concentration equivalent to about 0.1 mM reactive thiol, dextran-linked L-cysteine also potentiated the glucose-induced insulin secretion. In microperifusion experiments the insulin-releasing action of 1-thio-D-glucose was found to exhibit a rapid onset followed by a decline of the secretory rate to values lower than those observed with 10 mMD-glucose alone. No thiol stimulated insulin release in the absence of glucose. It is suggested that thiol compounds stimulate insulin release by splitting membrane disulphides in the beta-cells.

Animals↗

Influence of anoxia on glucose metabolism in pancreatic islets: lack of correlation between fructose-1,6-diphosphate and apparent glycolytic flux.

When equilibrated with O2-CO2 (95:5), pancreatic islets of non-inbred ob/ob-mice exhibited a sigmoidal dependence of 3H2O production on D-(5-3H)-glucose concentration; the rate was most sensitive to changes of glucose concentration around 5mM and tended to be maximum above about 15mM glucose. 3H2O production from more than 5 mM D-(5-3H)-glucose was about twice as fast as the production of 14CO2 from equimolar D-(U-14C)-glucose. Islets equilibrated with N2-CO2 (95:5) did not exhibit a sigmoidal dose-response curve for 3h2o production, the process being inhibited by anoxia at glucose concentrations above 5mM. Pieces of exocrine pancreas had a slower aerobic 3H2O production than the islets and showed a clear enhancement of the process during anoxia. In comparison with oxygenated islets, anoxic islets exhibited decreased concentrations of glucose-6-phosphate and increased concentrations of furctose-1,6-diphosphate. The concomitant inhibition of glycolytic flux may be due to a low lactate dehydrogenase activity in islets yielding a slow reoxidation of NADH and a slow phosphoglyceraldehyde oxidation under anaerobic conditions.

Aerobiosis↗

The mechanisms of action of chloromercuribenzene-p-sulphonic acid as insulin secretagogue: fluxes of calcium, sodium and rubidium in islets exposed to mercurial and a membrane-active antagonist.

Chloromercuribenzene-p-sulphonic acid (CMBS) is known to markedly stimulate insulin release and to enhance formation of adenosine 3':5'-cyclic monophosphate (cyclic AMP) and monovalent cation permeability in the pancreatic islet cells. The effects on insulin release and cyclic AMP can be inhibited with 4-acetamido-4'-isothiocyanostilbene-2,2'-disulphonic acid (SITS). To elucidate the role of cationic fluxes in CMBS- induced insulin release, uptake of 22Na+ and 45Ca2+ as well as efflux of 86Rb+ were studied in islets exposed to 0-1 mM CMBS or 1-0 mM SITS or both. 2. The enhancing effect of CMBS on Na+ permeability, and probably also that on Rb+ permeability, was inhibited by SITS. 3. CMBS stimulated the rate of 45Ca2+ uptakes when the islets were incubated in a poly-anionic bicarbonate buffer but not when they were incubated in Tris buffer containing only Cl- as anion. In bicarbonate buffer, the enhancement of 45Ca2+ flux was observed both with the lanthanum method for measuring intracellular 45Ca2+ uptake and with a method estimating the total islet uptake. SITS had no significant effect on the CMBS-induced 45Ca2+ uptake. 4. Chromatography on Sephadex G-15 did not reveal any significant chemical interaction between 0-1 mM CMBS and 1 mM SITS. 5. The following hypothesis for the recognition of CMBS as insulin secretagogue is suggested: by increasing Na+ permeability more than K+ permeability, CMBS depolarizes the beta-cell, leading to initiation of insulin release by an ionic mechanism which may or may not involve a change in transmembrane Ca2+ fluxes. The marked intensity of the secretory response is due to the fact that CMBS also enhances cyclic AMP formation, potentiating the effect of the ionic mechanisms on the insulin discharge apparatus.

4-Chloromercuribenzenesulfonate↗

The pancreatic beta-cell recognition of insulin secretagogues. Effects of calcium and sodium on glucose metabolism and insulin release.

The transport and oxidation of glucose, the content of fructose 1,6-diphosphate, and the release of insulin were studied in microdissected pancreatic islets of ob/ob mice incubated in Krebs-Ringer bicarbonate medium. Under control conditions glucose oxidation and insulin release showed a similar dependence on glucose concentration with the steepest slope in the range 5-12mm. The omission of Ca(2+), or the substitution of choline ions for Na(+), or the addition of diazoxide had little if any effect on glucose transport. However, Ca(2+) or Na(+) deficiency as well as diazoxide (7-chloro-3-methyl-1,2,4-benzothiadiazine 1,1-dioxide) or ouabain partially inhibited glucose oxidation. These alterations of medium composition also increased the islet content of fructose 1,6-diphosphate, as did the addition of adrenaline. Phentolamine [2-N-(3-hydroxyphenyl)-p-toluidinomethyl-2-imidazoline] counteracted the effects of adrenaline and Ca(2+) deficiency on islet fructose 1,6-diphosphate. After equilibration in Na(+)-deficient medium, the islets exhibited an increase in basal insulin release whereas the secretory response to glucose was inhibited. The inhibitory effects of Na(+) deficiency on the secretory responses to different concentrations of glucose correlated with those on (14)CO(2) production. When islets were incubated with 17mm-glucose, the sudden replacement of Na(+) by choline ions resulted in a marked but transient stimulation of insulin release that was not accompanied by a demonstrable increase of glucose oxidation. Galactose and 3-O-methylglucose had no effect on glucose oxidation or on insulin release. The results are consistent with a metabolic model of the beta-cell recognition of glucose as insulin secretagogue and with the assumption that Ca(2+) or Na(+) deficiency, or the addition of adrenaline or diazoxide, inhibit insulin release at some step distal to stimulus recognition. In addition the results suggest that these conditions create a partial metabolic block of glycolysis in the beta-cells. Hence the interrelationship between the processes of stimulus recognition and insulin discharge may involve a positive feedback of secretion on glucose metabolism.

Animals↗

Transport of rubidium and sodium in pancreatic islets.

1. Fluxes of (86)Rb(+) and (22)Na(+) were measured in pancreatic islets of ob/ob-mice. The islets, which contain more than 90% beta-cells, were incubated at 37 degrees C in Krebs-Ringer bicarbonate buffer with modifications known to influence insulin release.2. In the presence of Na(+), the islets vigorously accumulated Rb(+). The Rb(+) uptake was inhibited by depletion of islet Na(+) or by 1 mm ouabain or 0.1 mm chloromercuribenzene-p-sulphonic acid. Rb(+) uptake was stimulated by 1 mm-5,5'-dithiobis (2-nitrobenzoic acid) or by depletion of islet Ca(2+), while 20 mm glucose, 5 mm theophylline, 0.1 mm iodoacetamide, or 1 mm-6,6'-dithionicotinic acid had no significant effects.3. The efflux of Rb(+) from preloaded islets followed exponential kinetics with a half-life of about 16 min. The rate of efflux was enhanced by 0.1 mm chloromercuribenzene-p-sulphonic acid and inhibited by 20 mm glucose. Omission of Na(+), K(+) or Ca(2+) from the incubation medium had no significant effects.4. The efflux of (22)Na(+) from islets preloaded with this isotope was enhanced by 0.1 mm chloromercuribenzene-p-sulphonic acid or by Ca(2+) deficiency. It was inhibited by 1 mm ouabain, 0.1 mm-2,4-dinitrophenol, or by omission of Na(+) from the incubation medium. Omission of K(+) or the addition of 20 mm glucose had no significant effects.5. It is concluded that the beta-cells are permeable to Na(+) and Rb(+) and expel Na(+) by an active mechanism similar to, or identical with, the Na(+)/K(+)-pump in other cells. The mechanisms of active and passive cation movements are discussed in relation to current hypotheses of stimulus-secretion coupling in the beta-cells depending on interactions between Na(+) and Ca(2+). In particular, the results support the hypotheses of insulin release being stimulated by ouabain through inhibition of the Na(+)/K(+)-pump and by organic mercurials through enhancement of membrane permeability to cations.

Acetamides↗