Triggering and Augmentation Mechanisms, Granule Pools, and Biphasic Insulin Secretion
- 1 February 2002
- journal article
- review article
- Published by American Diabetes Association in Diabetes
- Vol. 51 (suppl_1) , S83-S90
- https://doi.org/10.2337/diabetes.51.2007.s83
Abstract
The insulin secretory response by pancreatic β-cells to an acute “square wave” stimulation by glucose is characterized by a first phase that occurs promptly after exposure to glucose, followed by a decrease to a nadir, and a prolonged second phase. The first phase of release is due to the ATP-sensitive K+ (KATP) channel-dependent (triggering) pathway that increases [Ca2+]i and has been thought to discharge the granules from a “readily releasable pool.” It follows that the second phase entails the preparation of granules for release, perhaps including translocation and priming for fusion competency before exocytosis. The pathways responsible for the second phase include the KATP channel-dependent pathway because of the need for elevated [Ca2+]i and additional signals from KATP channel-independent pathways. The mechanisms underlying these additional signals are unknown. Current hypotheses include increased cytosolic long-chain acyl-CoA, the pyruvate-malate shuttle, glutamate export from mitochondria, and an increased ATP/ADP ratio. In mouse islets, the β-cell contains some 13,000 granules, of which ∼100 are in a “readily releasable” pool. Rates of granule release are slow, e.g., one every 3 s, even at the peak of the first phase of glucose-stimulated release. As both phases of glucose-stimulated insulin secretion can be enhanced by agents such as glucagon-like peptide 1, which increases cyclic AMP levels and protein kinase A activity, or acetylcholine, which increases diacylglycerol levels and protein kinase C activity, a single “readily releasable pool” hypothesis is an inadequate explanation for insulin secretion. Multiple pools available for rapid release or rapid conversion of granules to a rapidly releasable state are required.Keywords
This publication has 83 references indexed in Scilit:
- The Mammalian Target of Rapamycin Regulates C2C12 Myogenesis via a Kinase-independent MechanismJournal of Biological Chemistry, 2001
- Synaptotagmin III/VII Isoforms Mediate Ca2+-induced Insulin Secretion in Pancreatic Islet β-CellsJournal of Biological Chemistry, 2000
- Glucose- and GTP-dependent stimulation of the carboxyl methylation of CDC42 in rodent and human pancreatic islets and pure beta cells. Evidence for an essential role of GTP-binding proteins in nutrient-induced insulin secretion.Journal of Clinical Investigation, 1996
- Glucose-Dependent Insulinotropic Polypeptide Stimulates Insulin Secretion via Increased Cyclic AMP and [Ca2+]iand a Wortmannin-Sensitive Signalling PathwayBiochemical and Biophysical Research Communications, 1996
- Expression and Functional Role of Syntaxin 1/HPC-1 in Pancreatic β Cells: SYNTAXIN 1A, BUT NOT 1B, PLAYS A NEGATIVE ROLE IN REGULATORY INSULIN RELEASE PATHWAYPublished by Elsevier ,1996
- Mechanisms of intracellular protein transportNature, 1994
- Neurotransmission: harnessing fusion machinery at the synapseTrends in Neurosciences, 1994
- Mastoparan stimulates insulin secretion from pancreatic β-cells by effects at a late stage in the secretory pathwayMolecular and Cellular Endocrinology, 1993
- The Adenylate cyclase-cyclic AMP system in islets of langerhans and its role in the control of insulin releaseDiabetologia, 1979
- Ultrastructural morphometry of the pancreatic ?-cellDiabetologia, 1973