» Articles » PMID: 15347584

Calcium and Glycolysis Mediate Multiple Bursting Modes in Pancreatic Islets

Overview
Journal Biophys J
Publisher Cell Press
Specialty Biophysics
Date 2004 Sep 7
PMID 15347584
Citations 70
Authors
Affiliations
Soon will be listed here.
Abstract

Pancreatic islets of Langerhans produce bursts of electrical activity when exposed to stimulatory glucose levels. These bursts often have a regular repeating pattern, with a period of 10-60 s. In some cases, however, the bursts are episodic, clustered into bursts of bursts, which we call compound bursting. Consistent with this are recordings of free Ca2+ concentration, oxygen consumption, mitochondrial membrane potential, and intraislet glucose levels that exhibit very slow oscillations, with faster oscillations superimposed. We describe a new mathematical model of the pancreatic beta-cell that can account for these multimodal patterns. The model includes the feedback of cytosolic Ca2+ onto ion channels that can account for bursting, and a metabolic subsystem that is capable of producing slow oscillations driven by oscillations in glycolysis. This slow rhythm is responsible for the slow mode of compound bursting in the model. We also show that it is possible for glycolytic oscillations alone to drive a very slow form of bursting, which we call "glycolytic bursting." Finally, the model predicts that there is bistability between stationary and oscillatory glycolysis for a range of parameter values. We provide experimental support for this model prediction. Overall, the model can account for a diversity of islet behaviors described in the literature over the past 20 years.

Citing Articles

Subcellular Compartmentalization of Glucose Mediated Insulin Secretion.

Wang Z, Gurlo T, Satin L, Fraser S, Butler P Cells. 2025; 14(3).

PMID: 39936989 PMC: 11817236. DOI: 10.3390/cells14030198.


A mechanism for slow rhythms in coordinated pancreatic islet activity.

Bruce N, Thornham J, Wei I, Roper M, Bertram R Biophys J. 2024; 123(18):3257-3266.

PMID: 39066476 PMC: 11427777. DOI: 10.1016/j.bpj.2024.07.028.


Glycolytic oscillations under periodic drivings.

Kim P, Hyeon C J R Soc Interface. 2024; 21(211):20230588.

PMID: 38350614 PMC: 10864097. DOI: 10.1098/rsif.2023.0588.


Kinetic modelling of the cellular metabolic responses underpinning in vitro glycolysis assays.

Patil N, Mirveis Z, Byrne H FEBS Open Bio. 2024; 14(3):466-486.

PMID: 38217078 PMC: 10909989. DOI: 10.1002/2211-5463.13765.


Deconstructing the integrated oscillator model for pancreatic β-cells.

Bertram R, Marinelli I, Fletcher P, Satin L, Sherman A Math Biosci. 2023; 365:109085.

PMID: 37802364 PMC: 10991200. DOI: 10.1016/j.mbs.2023.109085.


References
1.
Tornheim K . Are metabolic oscillations responsible for normal oscillatory insulin secretion?. Diabetes. 1997; 46(9):1375-80. DOI: 10.2337/diab.46.9.1375. View

2.
Cook D, Porte Jr D, CRILL W . Voltage dependence of rhythmic plateau potentials of pancreatic islet cells. Am J Physiol. 1981; 240(3):E290-6. DOI: 10.1152/ajpendo.1981.240.3.E290. View

3.
Valdeolmillos M, Gomis A, Sanchez-Andres J . In vivo synchronous membrane potential oscillations in mouse pancreatic beta-cells: lack of co-ordination between islets. J Physiol. 1996; 493 ( Pt 1):9-18. PMC: 1158947. DOI: 10.1113/jphysiol.1996.sp021361. View

4.
Simon C, Brandenberger G, Follenius M . Ultradian oscillations of plasma glucose, insulin, and C-peptide in man during continuous enteral nutrition. J Clin Endocrinol Metab. 1987; 64(4):669-74. DOI: 10.1210/jcem-64-4-669. View

5.
Westerlund J, Hellman B, Bergsten P . Pulsatile insulin release from mouse islets occurs in the absence of stimulated entry of Ca2+. J Clin Invest. 1996; 97(8):1860-3. PMC: 507254. DOI: 10.1172/JCI118616. View