Modeling stability in neuron and network function: the role of activity in homeostasis
- 22 November 2002
- Vol. 24 (12) , 1145-1154
- https://doi.org/10.1002/bies.10185
Abstract
Individual neurons display characteristic firing patterns determined by the number and kind of ion channels in their membranes. We describe experimental and computational studies that suggest that neurons use activity sensors to regulate the number and kind of ion channels and receptors in their membrane to maintain a stable pattern of activity and to compensate for ongoing processes of degradation, synthesis and insertion of ion channels and receptors. We show that similar neuronal and network outputs can be produced by a number of different combinations of ion channels and synapse strengths. This suggests that individual neurons of the same class may each have found an acceptable solution to a genetically determined pattern of activity, and that networks of neurons in different animals may produce similar output patterns by somewhat variable underlying mechanisms. BioEssays 24:1145–1154, 2002.Keywords
This publication has 48 references indexed in Scilit:
- Maintaining the Stability of Neural Function: A Homeostatic HypothesisAnnual Review of Physiology, 2001
- Thinking Globally, Acting LocallyNeuron, 1998
- Spontaneous activity regulates calcium‐dependent K+ current expression in developing ascidian muscleThe Journal of Physiology, 1998
- FROM BIOPHYSICS TO MODELS OF NETWORK FUNCTIONAnnual Review of Neuroscience, 1998
- Distinct aspects of neuronal differentiation encoded by frequency of spontaneous Ca2+ transientsNature, 1995
- Analysis of Neuron Models with Dynamically Regulated ConductancesNeural Computation, 1993
- The dynamic clamp: artificial conductances in biological neuronsTrends in Neurosciences, 1993
- Mapping the dynamics of a bursting neuronPhilosophical Transactions Of The Royal Society B-Biological Sciences, 1993
- Activity-Dependent Regulation of Conductances in Model NeuronsScience, 1993
- Changes in Intracellular Calcium During Neuron ActivityAnnual Review of Physiology, 1989