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Published on: June 25, 2012
Ryanodine receptors in human pancreatic beta cells: localization and effects on insulin secretion
James D Johnson1, Shihuan Kuang, Stanley Misler
1Division of Metabolism, Department of Internal Medicine, Washington University School of Medicine, Box 8126, 8831 Wohl Clinic, 660 S. Euclid, St. Louis, MO 63110, USA. jim@jimjohnson.ca
Abstract:
It is clear that pancreatic beta-cell dysfunction, including basal hyperinsulinemia and reduced insulin release in response to glucose, is a key determinant of disease progression in type 2 diabetes, but the underlying molecular defects are not known. In diabetes, the expression and function of ryanodine receptor (RyR) Ca2+ release channels are reduced. The present studies were undertaken to define the subcellular location and role of RyR in the control of stimulated and basal insulin release from human pancreatic beta cells. Using confocal microscopy, we observed RyR immunoreactivity in a vesicular pattern. RyRs did not colocalize with insulin secretory granules but partially colocalized with endosomes. Direct activation with nanomolar concentrations of ryanodine evoked increases in cytosolic Ca2+ that were coupled to transient insulin release. Insulin release stimulated by 1 nM ryanodine was sensitive to BAPTA-AM preincubation but independent of thapsigargin-sensitive endoplasmic reticulum (ER) Ca2+ pools. Blocking RyRs with micromolar concentrations of ryanodine led to BAPTA-resistant insulin release that was not associated with an increase in cytosolic Ca2+, which implicated alterations in luminal Ca2+. However, neither Ca2+ signals nor insulin release stimulated by glucose was blocked by 10-50 microM ryanodine, which suggests that the CD38/cyclic ADP-ribose/RyR pathway is not a primary mechanism of glucose action in nontransformed beta cells. We provide the first evidence that RyRs directly control insulin secretion in primary beta cells. Unexpectedly, stimulation of insulin secretion by ryanodine occurs independently of glucose and by two mechanisms, including a novel cytosolic Ca2+-independent mechanism likely involving changes in Ca2+ within the lumens of non-ER organelles, such as endosomes.
Insights
Ryanodine receptors (RyRs) directly control insulin secretion in human pancreatic beta cells. These channels regulate both glucose-dependent and independent insulin release, revealing new therapeutic targets for type 2 diabetes.
Area of Science:
- Endocrinology
- Cell Biology
- Molecular Medicine
Background:
- Pancreatic beta-cell dysfunction is central to type 2 diabetes progression.
- Reduced ryanodine receptor (RyR) Ca2+ channel expression and function are observed in diabetes.
- The precise role of RyRs in human beta-cell insulin secretion remains unclear.
Purpose of the Study:
- To determine the subcellular localization of RyRs in human pancreatic beta cells.
- To investigate the role of RyRs in basal and stimulated insulin release.
- To elucidate the mechanisms by which RyRs influence insulin secretion.
Main Methods:
- Confocal microscopy to visualize RyR localization.
- Treatment with ryanodine (activator and blocker) to assess insulin release.
- Use of Ca2+ indicators (BAPTA-AM) and ER Ca2+ store modulators (thapsigargin).
Main Results:
- RyRs are found in vesicular structures, partially colocalizing with endosomes, not insulin granules.
- Low-dose ryanodine stimulates insulin release via cytosolic Ca2+ increases, independent of ER Ca2+ pools.
- High-dose ryanodine causes Ca2+-independent insulin release, suggesting luminal Ca2+ alterations in non-ER organelles.
Conclusions:
- RyRs directly regulate insulin secretion in primary human beta cells.
- Insulin release can be stimulated by RyRs independently of glucose, through both Ca2+-dependent and novel Ca2+-independent pathways.
- These findings offer new insights into beta-cell function and potential therapeutic strategies for diabetes.
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