Maintaining the Stability of Neural Function: A Homeostatic Hypothesis
- 1 March 2001
- journal article
- review article
- Published by Annual Reviews in Annual Review of Physiology
- Vol. 63 (1) , 847-869
- https://doi.org/10.1146/annurev.physiol.63.1.847
Abstract
▪ Abstract The precise regulation of neural excitability is essential for proper nerve cell, neural circuit, and nervous system function. During postembryonic development and throughout life, neurons are challenged with perturbations that can alter excitability, including changes in cell size, innervation, and synaptic input. Numerous experiments demonstrate that neurons are able to compensate for these types of perturbation and maintain appropriate levels of excitation. The mechanisms of compensation are diverse, including regulated changes to synaptic size, synaptic strength, and ion channel function in the plasma membrane. These data are evidence for homeostatic regulatory systems that control neural excitability. A model of neural homeostasis suggests that information about cell activity, cell size, and innervation is fed into a system of cellular monitors. Intracellular- and intercellular-signaling systems transduce this information into regulated changes in synaptic and ion channel function. This review discusses evidence for such a model of homeostatic regulation in the nervous system.Keywords
This publication has 95 references indexed in Scilit:
- highwire, rpm-1, and futsch: Balancing Synaptic Growth and StabilityNeuron, 2000
- AMPA Receptors Unbound: Membrane Cycling and Synaptic PlasticityNeuron, 2000
- Driving AMPA Receptors into Synapses by LTP and CaMKII: Requirement for GluR1 and PDZ Domain InteractionScience, 2000
- DEVELOPMENT OF THE VERTEBRATE NEUROMUSCULAR JUNCTIONAnnual Review of Neuroscience, 1999
- Generic Signals and Specific OutcomesCell, 1999
- Postsynaptic PKA Controls Quantal Size and Reveals a Retrograde Signal that Regulates Presynaptic Transmitter Release in DrosophilaNeuron, 1998
- Osmotic Balance Regulates Cell Fusion during Mating in Saccharomyces cerevisiae The Journal of cell biology, 1997
- Amplification of EPSPs by axosomatic sodium channels in neocortical pyramidal neuronsNeuron, 1995
- Properties of synaptic transmission at single hippocampal synaptic boutonsNature, 1995
- Decoding calcium signals by multifunctional CaM kinaseCell Calcium, 1992