Literature DB >> 2847949

Cytosolic calcium oscillators.

M J Berridge1, A Galione.   

Abstract

Many cells display oscillations in intracellular calcium resulting from the periodic release of calcium from intracellular reservoirs. Frequencies are varied, but most oscillations have periods ranging from 5 to 60 s. For any given cell, frequency can vary depending on external conditions, particularly the concentration of natural stimuli or calcium. This cytosolic calcium oscillator is particularly sensitive to those stimuli (neurotransmitters, hormones, growth factors) that hydrolyze phosphoinositides to give diacylglycerol and inositol 1,4,5-trisphosphate (Ins1,4,5P3). The ability of Ins1,4,5P3 to mobilize intracellular calcium is a significant feature of many of the proposed models that are used to explain oscillatory activity. Receptor-controlled oscillator models propose that there are complex feedback mechanisms that generate oscillations in the level of Ins1,4,5P3. Second messenger-controlled oscillator models demonstrate that the oscillator is a component of the calcium reservoir, which is induced to release calcium by a constant input of either Ins1,4,5P3 or calcium itself. In the latter case, the process of calcium-induced calcium release might be the basis of oscillatory activity in many cell types. The function of calcium oscillations is still unknown. Because oscillator frequency can vary with agonist concentration, calcium transients might be part of a frequency-encoded signaling system. When an external stimulus arrives at the cell surface the information is translated into a train of calcium spikes, i.e., the signal is digitized. Certain cells may then convey information by varying the frequency of this digital signal.

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Year:  1988        PMID: 2847949     DOI: 10.1096/fasebj.2.15.2847949

Source DB:  PubMed          Journal:  FASEB J        ISSN: 0892-6638            Impact factor:   5.191


  156 in total

Review 1.  [Modeling in biology. Structured analysis of intracellular calcium oscillations in electrically non-excitable cells].

Authors:  M Kraus; B Wolf
Journal:  Naturwissenschaften       Date:  1992-07

2.  Effects of inhibitors and ion substitutions on oscillations of cell membrane potential in cells expressing the RAS oncogene.

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3.  Paired turbulence and light do not produce a supralinear calcium increase in Hermissenda.

Authors:  Kim T Blackwell
Journal:  J Comput Neurosci       Date:  2004 Jul-Aug       Impact factor: 1.621

4.  Spontaneous membrane potential oscillations in Madin-Darby canine kidney cells transformed by alkaline stress.

Authors:  H J Westphale; L Wojnowski; A Schwab; H Oberleithner
Journal:  Pflugers Arch       Date:  1992-06       Impact factor: 3.657

5.  Luminal Ca2+ promoting spontaneous Ca2+ release from inositol trisphosphate-sensitive stores in rat hepatocytes.

Authors:  L Missiaen; C W Taylor; M J Berridge
Journal:  J Physiol       Date:  1992-09       Impact factor: 5.182

Review 6.  Orai3--the 'exceptional' Orai?

Authors:  Trevor J Shuttleworth
Journal:  J Physiol       Date:  2011-10-31       Impact factor: 5.182

7.  Computer simulation of a cytosolic calcium oscillator.

Authors:  S Swillens; D Mercan
Journal:  Biochem J       Date:  1990-11-01       Impact factor: 3.857

8.  Latency correlates with period in a model for signal-induced Ca2+ oscillations based on Ca2(+)-induced Ca2+ release.

Authors:  G Dupont; M J Berridge; A Goldbeter
Journal:  Cell Regul       Date:  1990-10

Review 9.  Ion channels and signaling in the pituitary gland.

Authors:  Stanko S Stojilkovic; Joël Tabak; Richard Bertram
Journal:  Endocr Rev       Date:  2010-07-21       Impact factor: 19.871

10.  H-ras(val12) induces cytoplasmic but not nuclear events of the cell cycle in small Xenopus oocytes.

Authors:  A D Johnson; R J Cork; M A Williams; K R Robinson; L D Smith
Journal:  Cell Regul       Date:  1990-06
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