Calcium oscillations

Changes in cellular calcium concentration control a wide range of physiological processes, from the subsecond release of synaptic neurotransmitters, to the regulation of gene expression over months or years. Calcium can also trigger cell death through both apoptosis and necrosis, and so the regulat...

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Main Authors: Thul, Ruediger, Bellamy, Tom, Roderick, Llewelyn, Bootman, Martin, Coombes, Stephen
Other Authors: Maroto, Miguel
Format: Book Section
Published: Springer 2007
Subjects:
Online Access:https://eprints.nottingham.ac.uk/566/
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author Thul, Ruediger
Bellamy, Tom
Roderick, Llewelyn
Bootman, Martin
Coombes, Stephen
author2 Maroto, Miguel
author_facet Maroto, Miguel
Thul, Ruediger
Bellamy, Tom
Roderick, Llewelyn
Bootman, Martin
Coombes, Stephen
author_sort Thul, Ruediger
building Nottingham Research Data Repository
collection Online Access
description Changes in cellular calcium concentration control a wide range of physiological processes, from the subsecond release of synaptic neurotransmitters, to the regulation of gene expression over months or years. Calcium can also trigger cell death through both apoptosis and necrosis, and so the regulation of cellular calcium concentration must be tightly controlled through the concerted action of pumps, channels and buffers that transport calcium into and out of the cell cytoplasm. A hallmark of cellular calcium signalling is its spatiotemporal complexity: stimulation of cells by a hormone or neurotransmitter leads to oscillations in cytoplasmic calcium concentration that can vary markedly in time course, amplitude, frequency, and spatial range. In this chapter we review some of the biological roles of calcium, the experimental characterisation of complex dynamic changes in calcium concentration, and attempts to explain this complexity using computational models. We consider the "toolkit" of cellular proteins which influence calcium concentration, describe mechanistic models of key elements of the toolkit, and fit these into the framework of whole cell models of calcium oscillations and waves. Finally, we will touch on recent efforts to use stochastic modelling to elucidate elementary calcium signal events, and how these may evolve into global signals.
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spelling nottingham-5662020-05-04T20:29:14Z https://eprints.nottingham.ac.uk/566/ Calcium oscillations Thul, Ruediger Bellamy, Tom Roderick, Llewelyn Bootman, Martin Coombes, Stephen Changes in cellular calcium concentration control a wide range of physiological processes, from the subsecond release of synaptic neurotransmitters, to the regulation of gene expression over months or years. Calcium can also trigger cell death through both apoptosis and necrosis, and so the regulation of cellular calcium concentration must be tightly controlled through the concerted action of pumps, channels and buffers that transport calcium into and out of the cell cytoplasm. A hallmark of cellular calcium signalling is its spatiotemporal complexity: stimulation of cells by a hormone or neurotransmitter leads to oscillations in cytoplasmic calcium concentration that can vary markedly in time course, amplitude, frequency, and spatial range. In this chapter we review some of the biological roles of calcium, the experimental characterisation of complex dynamic changes in calcium concentration, and attempts to explain this complexity using computational models. We consider the "toolkit" of cellular proteins which influence calcium concentration, describe mechanistic models of key elements of the toolkit, and fit these into the framework of whole cell models of calcium oscillations and waves. Finally, we will touch on recent efforts to use stochastic modelling to elucidate elementary calcium signal events, and how these may evolve into global signals. Springer Maroto, Miguel Monk, Nick 2007 Book Section NonPeerReviewed Thul, Ruediger, Bellamy, Tom, Roderick, Llewelyn, Bootman, Martin and Coombes, Stephen (2007) Calcium oscillations. In: Cellular Oscillatory Mechanisms. Advances in experimental medicine and biology (641). Springer, New York, pp. 1-27. ISBN 9780387097930 Calcium IP3 receptor ryanodine receptor mitochondria SERCA pumps De Young-Keizer model Li-Rinzel model Tang-Othmer model excitable system Hopf bifurcation threshold model fire-diffuse-fire model stochastic modelling
spellingShingle Calcium
IP3 receptor
ryanodine receptor
mitochondria
SERCA pumps
De Young-Keizer model
Li-Rinzel model
Tang-Othmer model
excitable system
Hopf bifurcation
threshold model
fire-diffuse-fire model
stochastic modelling
Thul, Ruediger
Bellamy, Tom
Roderick, Llewelyn
Bootman, Martin
Coombes, Stephen
Calcium oscillations
title Calcium oscillations
title_full Calcium oscillations
title_fullStr Calcium oscillations
title_full_unstemmed Calcium oscillations
title_short Calcium oscillations
title_sort calcium oscillations
topic Calcium
IP3 receptor
ryanodine receptor
mitochondria
SERCA pumps
De Young-Keizer model
Li-Rinzel model
Tang-Othmer model
excitable system
Hopf bifurcation
threshold model
fire-diffuse-fire model
stochastic modelling
url https://eprints.nottingham.ac.uk/566/