NMDA receptor inhibition increases, synchronizes, and stabilizes the collective pancreatic beta cell activity:

Marko Šterk1,2, Lidija Križančić Bombek1, Maša Skelin Klemen1

  • 1Faculty of Medicine, University of Maribor, Maribor, Slovenia.

Insights

NMDA receptor inhibition enhances pancreatic beta cell synchronization and stability, offering a potential therapeutic strategy for type 2 diabetes by improving insulin secretion patterns.

Area of Science:

  • Neuroendocrinology
  • Computational Biology
  • Diabetes Research

Background:

  • NMDA receptors influence pancreatic beta cell repolarization, impacting glucose-stimulated insulin secretion.
  • Disrupted beta cell collective activity contributes to impaired insulin secretion and glucose intolerance.

Purpose of the Study:

  • To investigate the effects of NMDA receptor inhibition on the collective activity and functional connectivity of pancreatic beta cells.
  • To explore how NMDA receptor modulation impacts intercellular communication and calcium wave propagation in pancreatic islets.

Main Methods:

  • Confocal functional multicellular calcium imaging in mouse tissue slices.
  • Application of multilayer network formalism to analyze intercellular calcium wave propagation.
  • Validation using NMDA receptor antagonists (MK-801, dextrorphan) and knockout mice.

Main Results:

  • NMDA receptor inhibition increased, synchronized, and stabilized beta cell activity.
  • Intercellular connectivity and calcium wave dynamics were modulated, stabilizing wave initiators and propagation.
  • Drug effects were consistent across different NMDA receptor modulators and genetic models.

Conclusions:

  • NMDA receptor inhibition represents a promising therapeutic avenue for type 2 diabetes by enhancing beta cell function.
  • The multilayer network approach is a valuable tool for assessing drug effects on multicellular system connectivity.