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R Anjaneyulu

Publications and source records attributed to R Anjaneyulu.

14 recordsLinked to original sources

The stimulus-secretion coupling of glucose-induced insulin release. Thiol: disulfide balance in pancreatic islets.

An increase in the production rate of reduced pyridine nucleotides is currently considered as a coupling factor between metabolic and distal events in the process of glucose-stimulated insulin release. The possible participation in such a coupling of thiol: disulfide interchanges was investigated in rat pancreatic islets. NADPH-dependent glutathione reductase and glutathione-cystine transhydrogenase activities were present in islet homogenates, whereas no glutathione peroxidase activity could be detected. In intact islets, glucose (16.7 mM) augmented both the GSH/GSSG ratio (from a basal value of 6.7 +/- 0.6 to 8.4 +/- 0.4) and the tissue content of sulphydryl groups (from a basal value of 119 +/- 7 to 170 +/- 9 pmol/microgram protein). The latter effect was mimicked by D-glyceraldehyde, 2-ketoisocaproate, anoxia and KCN; it failed to be reproduced by L-glucose or D-fructose, was unaffected by theophylline, and was inhibited by D-mannoheptulose, iodoacetate, menadione, cytochalasin B and the absence of extracellular Ca2+. These findings support the view that a glucose-induced reduction of disulphide bridges to sulphydryl groups participates in the stimulus-secretion coupling of nutrient-induced insulin release.

Animals↗

Ionophore-mediated Ca2+ countertransport: role of Na+, Li+ or H+ gradient.

In an artificial system, the ionophore A23187, which transports Ca2+ but not Na+, is able to mediate the uphill translocation of Ca2+ from one aqueous medium to another across an organic immiscible phase, provided that a Na+, Li+ or H+ gradient is imposed on the system. Therefore, in the process known as Na-Ca countertransport, the downhill influx of Na+ may not be necessary for causing Ca2+ extrusion against its electrochemical gradient.

Anti-Bacterial Agents↗

The stimulus-secretion coupling of glucose-induced insulin release. XLIII. Na-Ca countertransport mediated by pancreatic islet native ionophores.

Native ionophores extracted from isolated pancreatic islets were able to transport Ca2+ from one aqueous medium into another across an organic immiscible phase. In the presence of a K+, Na+, Li+, or H+ gradient, Ca2+ was transported against its own concentration gradient from the medium of low monovalent-cation concentration to the opposite medium. The transport of Ca2+ was abolished by the organic calcium-antagonist suloctidil. These findings provide a model for the process of Na-Ca countertransport in islet cells and its inhibition in response to the conversion of nutrient secretagogues to their acidic metabolites.

Animals↗

Calmodulin activation of adenylate cyclase in pancreatic islets.

Pancreatic islets contain calmodulin. The protein binds to a particulate fraction derived from the islets and stimulates adenylate cyclase activity in this subcellular fraction, both phenomena being activated by ionized calcium. A calcium-dependent stimulation of adenylate cyclase by endogenous calmodulin may contribute to the accumulation of adenosine 3',5'-monophosphate evoked by insulin releasing agents in the islet cells.

Adenylyl Cyclases↗

Locked twins.

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Adult↗