ArticleThe Biochemical journal1988
Glucose-, calcium- and concentration-dependence of acetylcholine stimulation of insulin release and ionic fluxes in mouse islets.
Article in The Biochemical journal, 1988. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 17 papers.
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Who cites it
17 citing papers in PubMed, 70 citations in OpenAlex.
- Mice Condition Cephalic Insulin Responses to the Flavor of Different Laboratory Chows.Nutrients · 2025Article
- Mice Condition Cephalic-Phase Insulin Release to Flavors Associated with Postoral Actions of Concentrated Glucose.Nutrients · 2024Article
- The elusive cephalic phase insulin response: triggers, mechanisms, and functions.Physiological reviews · 2023Review
- Pancreatic Beta Cell G-Protein Coupled Receptors and Second Messenger Interactions: A Systems Biology Computational Analysis.PloS one · 2016Article
- The type 2 diabetes-associated gene ide is required for insulin secretion and suppression of α-synuclein levels in β-cells.Diabetes · 2013Article
- Muscarinic agonists activate Ca2+ store-operated and -independent ionic currents in insulin-secreting HIT-T15 cells and mouse pancreatic beta-cells.The Journal of membrane biology · 2004Article
- Type VIII adenylyl cyclase in rat beta cells: coincidence signal detector/generator for glucose and GLP-1.Diabetologia · 2003Article
- G protein-dependent inhibition of L-type Ca2+ currents by acetylcholine in mouse pancreatic B-cells.The Journal of physiology · 1997Article
- Muscarinic activation of Ca2+/calmodulin-dependent protein kinase II in pancreatic islets. Temporal dissociation of kinase activation and insulin secretion.The Biochemical journal · 1996Article
- Two distinct modes of Ca2+ signalling by ACh in rat pancreatic beta-cells: concentration, glucose dependence and Ca2+ origin.The Journal of physiology · 1995Article
- Muscarinic stimulation exerts both stimulatory and inhibitory effects on the concentration of cytoplasmic Ca2+ in the electrically excitable pancreatic B-cell.The Biochemical journal · 1995Article
- Carbachol stimulation of phospholipase A2 and insulin secretion in pancreatic islets.The Biochemical journal · 1992Article
- Mechanisms of the stimulation of insulin release by oxytocin in normal mouse islets.The Biochemical journal · 1991Article
- Potentiation of stimulus-induced insulin secretion in protein kinase C-deficient RINm5F cells.The Biochemical journal · 1990Article
- The role of cytosolic free Ca2+ and protein kinase C in acetylcholine-induced insulin release in the clonal beta-cell line, HIT-T15.The Biochemical journal · 1990Article
- The role of protein kinase C in cholinergic stimulation of insulin secretion from rat islets of Langerhans.The Biochemical journal · 1989Article
- Effects of extracellular adenine nucleotides on the electrical, ionic and secretory events in mouse pancreatic beta-cells.British journal of pharmacology · 1989Article
Corrections and comments
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Authors and funding
3 authors.
Funding
No grant is acknowledged in the PubMed record.
Abstract
Mouse islets were used to define the glucose-dependence and extracellular Ca2+ requirement of muscarinic stimulation of pancreatic beta-cells. In the presence of a stimulatory concentration of glucose (10 mM) and of Ca2+, acetylcholine (0.1-100 microM) accelerated 3H efflux from islets preloaded with myo-[3H]inositol. It also stimulated 45Ca2+ influx and efflux, 86Rb+ efflux and insulin release. In the absence of Ca2+, only 10-100 microM-acetylcholine mobilized enough intracellular Ca2+ to trigger an early but brief peak of insulin release. At a non-stimulatory concentration of glucose (3 mM), 1 microM- and 100 microM-acetylcholine increased 45Ca2+ and 86Rb+ efflux in the presence and absence of extracellular Ca2+. However, only 100 microM-acetylcholine marginally increased 45Ca2+ influx and caused a small, delayed, stimulation of insulin release, which was abolished by omission of Ca2+. At a maximally effective concentration of glucose (30 mM), 1 microM- and 100 microM-acetylcholine increased 45Ca2+ influx and efflux only slightly, but markedly amplified insulin release. Again, only 100 microM-acetylcholine mobilized enough Ca2+ to trigger a peak of insulin release in the absence of Ca2+. The results thus show that only high concentrations of acetylcholine (greater than or equal to 10 microM) can induce release at low glucose or in a Ca2+-free medium. beta-Cells exhibit their highest sensitivity to acetylcholine in the presence of Ca2+ and stimulatory glucose. Under these physiological conditions, the large amplification of insulin release appears to be the result of combined effects of the neurotransmitter on Ca2+ influx, on intracellular Ca2+ stores and on the efficiency with which Ca2+ activates the releasing machinery.
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