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

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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