A biophysical model of electrical activity in human β-cells

Biophys J. 2010 Nov 17;99(10):3200-7. doi: 10.1016/j.bpj.2010.09.004.

Abstract

Electrical activity in pancreatic β-cells plays a pivotal role in glucose-stimulated insulin secretion by coupling metabolism to calcium-triggered exocytosis. Mathematical models based on rodent data have helped in understanding the mechanisms underlying the electrophysiological patterns observed in laboratory animals. However, human β-cells differ in several aspects, and in particular in their electrophysiological characteristics, from rodent β-cells. Hence, from a clinical perspective and to obtain insight into the defects in insulin secretion relevant for diabetes mellitus, it is important to study human β-cells. This work presents the first mathematical model of electrical activity based entirely on published ion channel characteristics of human β-cells. The model reproduces satisfactorily a series of experimentally observed patterns in human β-cells, such as spiking and rapid bursting electrical activity, and their response to a range of ion channel antagonists. The possibility of Human Ether-a-Go-Go-related- and leak channels as drug targets for diabetes treatment is discussed based on model results.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Biophysical Phenomena* / drug effects
  • Calcium Channels, L-Type / metabolism
  • Computer Simulation
  • Electricity*
  • Electrophysiological Phenomena* / drug effects
  • Humans
  • Insulin-Secreting Cells / drug effects
  • Insulin-Secreting Cells / physiology*
  • Ion Channel Gating / drug effects
  • Membrane Potentials / drug effects
  • Membrane Transport Modulators / pharmacology
  • Models, Biological*
  • Potassium Channels / metabolism
  • Sodium Channels / metabolism

Substances

  • Calcium Channels, L-Type
  • Membrane Transport Modulators
  • Potassium Channels
  • Sodium Channels