Ion condensation and signal transduction
- 21 April 2004
- Vol. 26 (5), 549-557
- https://doi.org/10.1002/bies.20019
Abstract
Many abiotic and other signals are transduced in eukaryotic cells by changes in the level of free calcium via pumps, channels and stores. We suggest here that ion condensation should also be taken into account. Calcium, like other counterions, is condensed onto linear polymers at a critical value of the charge density. Such condensation resembles a phase transition and has a topological basis in that it is promoted by linear as opposed to spherical assemblies of charges. Condensed counterions are delocalised and can diffuse in the so-called near region along the polymers. It is generally admitted that cytoskeletal filaments, proteins colocalised with these filaments, protein filaments distinct from cytoskeletal filaments, and filamentous assemblies of other macromolecules, constitute an intracellular macromolecular network. Here we draw attention to the fact that this network has physicochemical characteristics that enable counterion condensation. We then propose a model in which the feedback relationships between the condensation/decondensation of calcium and the activation of calcium-dependent kinases and phosphatases control the charge density of the filaments of the intracellular macromolecular network. We show how condensation might help mediate free levels of calcium both locally and globally. In this model, calcium condensation/decondensation on the macromolecular network creates coherent patterns of protein phosphorylation that integrate signals. This leads us to hypothesize that the process of ion condensation operates in signal transduction, that it can have an integrative role and that the macromolecular network serves as an integrative receptor. BioEssays 26:549–557, 2004.Keywords
This publication has 59 references indexed in Scilit:
- Microvillar Ion Channels: Cytoskeletal Modulation of Ion FluxesJournal of Theoretical Biology, 2000
- SIGNALING TO THE ACTIN CYTOSKELETON IN PLANTSAnnual Review of Plant Physiology and Plant Molecular Biology, 2000
- Actin cytoskeleton in plants: From transport networks to signaling networksMicroscopy Research and Technique, 1999
- Cytoplasmic magnesium regulates the fast activating vacuolar cation channelJournal of Experimental Botany, 1999
- Cytoplasmic magnesium regulates the fast activating vacuolar cation channelJournal of Experimental Botany, 1999
- Microvillar Ca++ signaling: A new view of an old problemJournal of Cellular Physiology, 1999
- Transgenic plant aequorin reports the effects of touch and cold-shock and elicitors on cytoplasmic calciumNature, 1991
- Approach to the limit of counterion condensationBiopolymers, 1990
- THE STRUCTURE AND REGULATION OF PROTEIN PHOSPHATASESAnnual Review of Biochemistry, 1989
- Mean activity coefficients for the simple electrolyte in aqueous mixtures of polyelectrolyte and simple electrolyte. The mixed counterion system sodium(1+), calcium(2+), chloride(1-), polystyrenesulfonateThe Journal of Physical Chemistry, 1976