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Updated: Nov 6, 2025

Computational Reconstruction of Pancreatic Islets as a Tool for Structural and Functional Analysis
Published on: March 9, 2022
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.
Abstract:
NMDA receptors promote repolarization in pancreatic beta cells and thereby reduce glucose-stimulated insulin secretion. Therefore, NMDA receptors are a potential therapeutic target for diabetes. While the mechanism of NMDA receptor inhibition in beta cells is rather well understood at the molecular level, its possible effects on the collective cellular activity have not been addressed to date, even though proper insulin secretion patterns result from well-synchronized beta cell behavior. The latter is enabled by strong intercellular connectivity, which governs propagating calcium waves across the islets and makes the heterogeneous beta cell population work in synchrony. Since a disrupted collective activity is an important and possibly early contributor to impaired insulin secretion and glucose intolerance, it is of utmost importance to understand possible effects of NMDA receptor inhibition on beta cell functional connectivity. To address this issue, we combined confocal functional multicellular calcium imaging in mouse tissue slices with network science approaches. Our results revealed that NMDA receptor inhibition increases, synchronizes, and stabilizes beta cell activity without affecting the velocity or size of calcium waves. To explore intercellular interactions more precisely, we made use of the multilayer network formalism by regarding each calcium wave as an individual network layer, with weighted directed connections portraying the intercellular propagation. NMDA receptor inhibition stabilized both the role of wave initiators and the course of waves. The findings obtained with the experimental antagonist of NMDA receptors, MK-801, were additionally validated with dextrorphan, the active metabolite of the approved drug dextromethorphan, as well as with experiments on NMDA receptor KO mice. In sum, our results provide additional and new evidence for a possible role of NMDA receptor inhibition in treatment of type 2 diabetes and introduce the multilayer network paradigm as a general strategy to examine effects of drugs on connectivity in multicellular systems.
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.
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