Publication | Open Access
Arc-dependent synapse-specific homeostatic plasticity
183
Citations
35
References
2010
Year
Synapse-specific Homeostatic PlasticitySynaptic Homeostatic PlasticityNeurotransmissionStructural PlasticityOptogeneticsSynaptic SignalingCellular NeurobiologySocial SciencesNeurodynamicsNeuromodulationCognitive ScienceMolecular NeuroscienceGlobal Synaptic PlasticityBrain CircuitrySynaptic PlasticityDevelopmental BiologyNeurophysiologyComputational NeuroscienceNeuroscienceSystems BiologyMedicine
Both theoretical and experimental research has indicated that the synaptic strength between neurons in a network needs to be properly fine-tuned and controlled by homeostatic mechanisms to ensure proper network function. One such mechanism that has been extensively characterized is synaptic homeostatic plasticity or global synaptic scaling. This mechanism refers to the bidirectional ability of all synapses impinging on a neuron to actively compensate for changes in the neuron's overall excitability. Here, using a combination of electrophysiological, two-photon glutamate uncaging and imaging methods, we show that mature individual synapses, independent of neighboring synapses, have the ability to autonomously sense their level of activity and actively compensate for it in a homeostatic-like fashion. This synapse-specific homeostatic plasticity, similar to global synaptic plasticity, requires the immediate early gene Arc. Together, our results document an extra level of regulation of synaptic function that bears important computational consequences on information storage in the brain.
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