ArticleThe Journal of general physiology2011
Ionic mechanisms and Ca2+ dynamics underlying the glucose response of pancreatic β cells: a simulation study.
Article in The Journal of general physiology, 2011. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 34 papers.
What it found
Each row is one number read from the abstract, on the scale the paper reported it, with its interval. Left of the dashed line favours the treatment, right favours the comparator. Under each row is the sentence it came from. New to these charts? A ten-minute tutorial.
The abstract states no effect estimate the extractor could read, or names no intervention and outcome on the map, so this paper lights no cell and moves no belief. It is still indexed, cited and linked below.
The trial behind it
Trials whose registry record cites this paper, or whose number appears in the abstract. A trial that started after this paper was published is citing it as background, not reporting it.
Neither the registry nor the abstract names a trial number. If this is a trial report, that itself is worth knowing.
Who cites it
34 citing papers in PubMed.
- Sometimes extracellular recordings fail for good reasons.NPJ systems biology and applications · 2026Article
- Article
- Deconstructing the integrated oscillator model for pancreatic β-cells.Mathematical biosciences · 2023Article
- CaAmerican journal of physiology. Endocrinology and metabolism · 2023Review
- Functional architecture of pancreatic islets identifies a population of first responder cells that drive the first-phase calcium response.PLoS biology · 2022Article
- Pulsatile Basal Insulin Secretion Is Driven by Glycolytic Oscillations.Physiology (Bethesda, Md.) · 2022Review
- Oscillations in K(ATP) conductance drive slow calcium oscillations in pancreatic β-cells.Biophysical journal · 2022Article
- Role of insulin/glucagon ratio and cell redox state in the hyperglycaemia induced by exposure to a 60-Hz magnetic field in rats.Scientific reports · 2021Article
- Small subpopulations of β-cells do not drive islet oscillatory [Ca2+] dynamics via gap junction communication.PLoS computational biology · 2021Article
- Symbiosis of Electrical and Metabolic Oscillations in Pancreatic β-Cells.Frontiers in physiology · 2021Review
- Neural Network Differential Equations For Ion Channel Modelling.Frontiers in physiology · 2021Article
- Four Ways to Fit an Ion Channel Model.Biophysical journal · 2019Article
- How Heterogeneity in Glucokinase and Gap-Junction Coupling Determines the Islet [CaBiophysical journal · 2019Article
- Closing in on the Mechanisms of Pulsatile Insulin Secretion.Diabetes · 2018Article
- Pancreatic β-Cell Electrical Activity and Insulin Secretion: Of Mice and Men.Physiological reviews · 2018Review
- Beta-cell hubs maintain CaIslets · 2018Article
- Spatially Organized β-Cell Subpopulations Control Electrical Dynamics across Islets of Langerhans.Biophysical journal · 2017Article
- Upregulation of an inward rectifying K+ channel can rescue slow Ca2+ oscillations in K(ATP) channel deficient pancreatic islets.PLoS computational biology · 2017Article
- Effect of different glucose supply conditions on neuronal energy metabolism.Cognitive neurodynamics · 2016Article
- Decreases in Gap Junction Coupling Recovers Ca2+ and Insulin Secretion in Neonatal Diabetes Mellitus, Dependent on Beta Cell Heterogeneity and Noise.PLoS computational biology · 2016Article
Corrections and comments
- Commented on by
Authors and funding
8 authors.
Funding
No grant is acknowledged in the PubMed record.
Abstract
To clarify the mechanisms underlying the pancreatic β-cell response to varying glucose concentrations ([G]), electrophysiological findings were integrated into a mathematical cell model. The Ca(2+) dynamics of the endoplasmic reticulum (ER) were also improved. The model was validated by demonstrating quiescent potential, burst-interburst electrical events accompanied by Ca(2+) transients, and continuous firing of action potentials over [G] ranges of 0-6, 7-18, and >19 mM, respectively. These responses to glucose were completely reversible. The action potential, input impedance, and Ca(2+) transients were in good agreement with experimental measurements. The ionic mechanisms underlying the burst-interburst rhythm were investigated by lead potential analysis, which quantified the contributions of individual current components. This analysis demonstrated that slow potential changes during the interburst period were attributable to modifications of ion channels or transporters by intracellular ions and/or metabolites to different degrees depending on [G]. The predominant role of adenosine triphosphate-sensitive K(+) current in switching on and off the repetitive firing of action potentials at 8 mM [G] was taken over at a higher [G] by Ca(2+)- or Na(+)-dependent currents, which were generated by the plasma membrane Ca(2+) pump, Na(+)/K(+) pump, Na(+)/Ca(2+) exchanger, and TRPM channel. Accumulation and release of Ca(2+) by the ER also had a strong influence on the slow electrical rhythm. We conclude that the present mathematical model is useful for quantifying the role of individual functional components in the whole cell responses based on experimental findings.
Indexed as
Identifiers
What Socratic holds
Registered trials
Read under generation 80e0d062 · epoch 390. Bibliography from PubMed, PubMed Central and OpenAlex; grants from NIH RePORTER; trial links from ClinicalTrials.gov; estimates, votes and beliefs from the Socratic graph.