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B Hulin

Publications and source records attributed to B Hulin.

7 recordsLinked to original sources

Effects of skyrin, a receptor-selective glucagon antagonist, in rat and human hepatocytes.

Peptidic glucagon antagonists have been shown to lower blood glucose levels in diabetic models (1-3), but attempts to identify small molecular weight glucagon receptor-binding antagonists have met with little success. Skyrin, a fungal bisanthroquinone, exhibits functional glucagon antagonism by uncoupling the glucagon receptor from adenylate cyclase activation in rat liver membranes (1). We have examined the effects of skyrin on cells transfected with the human glucagon receptor and on isolated rat and human hepatocytes. The skyrin used was isolated from Talaromyces wortmanni American Type Culture Collection 10517. In rat hepatocytes, skyrin (30 micromol/l) inhibited glucagon-stimulated cAMP production (53%) and glucose output (IC50 56 micromol/l). There was no detectable effect on epinephrine or glucagon-like peptide 1 (GLP-1) stimulation of these parameters, which demonstrates skyrin's selective activity. Skyrin was also evaluated in primary cultures of human hepatocytes. Unlike cell lines, which are largely unresponsive to glucagon, primary human hepatocytes exhibited glucagon-dependent cAMP production for 14 days in culture (EC50 10 nmol/l). Skyrin (10 micromol/l) markedly reduced glucagon-stimulated cAMP production (55%) and glycogenolysis (27%) in human hepatocytes. The inhibition of glucagon stimulation was a specific property displayed by skyrin and oxyskyrin but not shared by other bisanthroquinones. Skyrin is the first small molecular weight nonpeptidic agent demonstrated to interfere with the coupling of glucagon to adenylate cyclase independent of binding to the glucagon receptor. The data presented in this study indicate that functional uncoupling of the human glucagon receptor from cAMP production results in metabolic effects that could reduce hepatocyte glucose production and hence alleviate diabetic hyperglycemia.

Animals↗

Hypoglycemic activity of a series of alpha-alkylthio and alpha-alkoxy carboxylic acids related to ciglitazone.

The thiazolidinedione moiety of ciglitazone and its analogues can be replaced by an alpha-alkoxy or alpha-thioether carboxylic acid group. The influence of the nature of the R group, the length of the connector to the aromatic backbone of the molecule, and the stereochemistry have been studied. The most potent compounds have glucose-lowering activity at doses as low as 0.01 mg/kg.

3T3 Cells↗

Novel thiazolidine-2,4-diones as potent euglycemic agents.

A new series of thiazolidine-2,4-diones was obtained by replacing the ether function of englitazone with various functional groups, i.e., a ketone, alcohol, or olefin moiety. These compounds lower blood glucose levels in the genetically obese and insulin-resistant ob/ob mouse. Appending an oxazole-based group at the terminus of the chain provided highly potent compounds.

Alcohols↗

Substituted dihydrobenzopyran and dihydrobenzofuran thiazolidine-2,4-diones as hypoglycemic agents.

A series of dihydrobenzofuran and dihydrobenzopyran thiazolidine-2,4-diones (compounds 3-26) was synthesized from the corresponding aryl aldehydes 1 in two steps. These compounds represent conformationally restricted analogues of the novel hypoglycemic ciglitazone. The series was evaluated by hypoglycemic effects in vitro by measuring stimulation of 2-deoxyglucose uptake in L6 myocytes and stimulation of expression of the glucose transporter protein in 3T3-L1 adipocytes. In vivo hypoglycemic effects were evaluated in the genetically obese ob/ob mouse, and structure-activity relationships are discussed. On the basis of this in vivo potency, we have selected the 2(R)-benzylbenzopyran derivative to be further studied in a clinical setting.

Adipose Tissue↗

Benzyloxazolidine-2,4-diones as potent hypoglycemic agents.

A series of benzyloxazolidine-2,4-diones, containing oxazole-based side chains, were found to lower blood glucose levels in the genetically obese ob/ob mouse. Incorporation of a benzofuran structural element in these compounds provides greatly enhanced in vivo potency. The syntheses and structure-activity relationships for this series are detailed.

Animals↗

Metabolism of a new thiazolidinedione hypoglycemic agent CP-68,722 in rat: metabolite identification by gas chromatography mass spectrometry.

1. After i.v. administration to rat of CP-68,722, a new thiazolidinedione antidiabetic drug, four metabolites were excreted in bile, as glucuronide conjugates. 2. Incubation of the drug with a rat liver microsomal preparation yielded the four in vivo metabolite aglycones and several additional in vitro metabolites. 3. Seven in vivo-generated metabolites were isolated by h.p.l.c. Each metabolite was converted to stable isotope labelled or non-labelled derivatives. Capillary g.l.c.-mass spectrometric analysis of the derivatives indicated that five metabolites result from hydroxylation and one from oxidation to the chromanone. The sites of metabolism were deduced from the electron ionization spectra. 4. Authentic standards for five metabolites were synthesized. Agreements of mass spectra and chromatographic retention times confirmed the five proposed structures. Two metabolites, detected only in vivo, await structure confirmation.

Animals↗