Glucagonotropic and Glucagonostatic Effects of KATP Channel Closure and Potassium Depolarization

Eike Früh1, Christin Elgert1, Frank Eggert2

  • 1Institute of Pharmacology, Toxicology and Clinical Pharmacy, Technische Universität Braunschweig, Braunschweig, Germany.

Endocrinology
|August 14, 2020
PubMed

Insights

Depolarization

Area of Science:

  • Endocrinology
  • Cellular Physiology
  • Molecular Biology

Background:

  • Glucagon secretion exhibits inverse glucose-dependence, increasing as glucose levels fall.
  • Understanding the role of cell depolarization in regulating glucagon secretion is crucial for metabolic research.

Purpose of the Study:

  • To investigate the role of depolarization in the inverse glucose-dependence of glucagon secretion.
  • To compare the effects of KATP channel block and high potassium on glucagon and insulin secretion.

Main Methods:

  • Simultaneous measurement of glucagon and insulin secretion from perifused mouse islets.
  • Utilizing depolarizing agents like tolbutamide, gliclazide, and high potassium (KCl).
  • Electrophysiological recordings on single alpha cells and patch-clamp experiments.

Main Results:

  • Lowering glucose increased glucagon secretion before decreasing insulin secretion, suggesting alpha cell-intrinsic signaling.
  • Depolarization via tolbutamide, gliclazide, or KCl initially increased insulin secretion before glucagon secretion decreased.
  • Tolbutamide showed variable depolarization efficacy on alpha cells, unlike arginine and KCl.
  • SUR1 knockout islets failed to show increased glucagon secretion with tolbutamide, but responded to KCl.

Conclusions:

  • Strong and sustained depolarization can support marked and lasting glucagon secretion.
  • KATP channel closure in alpha cells is less efficient than in beta cells, explaining transient glucagonotropic effects.

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