Background\ud During development both Hebbian and homeostatic mechanisms regulate synaptic efficacy, usually working in opposite directions in response to neuronal activity. Homeostatic plasticity has often been investigated by assaying changes in spontaneous synaptic transmission resulting from chronic circuit inactivation. However, effects of inactivation on evoked transmission have been less frequently reported. Importantly, contributions from the effects of circuit inactivation and reactivation on synaptic efficacy have not been individuated.\ud \ud Results\ud Here we show for developing hippocampal neurons in primary culture that chronic inactivation with TTX results in increased mean amplitude of miniature synaptic currents (mEPSCs), ...
During the first few weeks in vitro, cultured neuronal networks exhibit spontaneous bursts of action...
Homeostatic processes that regulate electrical activity in neurones are now an established aspect of...
A neuron’s identity and function are dictated by its electrophysiological signature. The firing patt...
Background: During development both Hebbian and homeostatic mechanisms regulate synaptic efficacy, u...
SummarySynaptic homeostasis, induced by chronic changes in neuronal activity, is well studied in cul...
Homeostatic synaptic plasticity is a negative feedback mechanism that neurons use to offset excessiv...
Summary: Hebbian and homeostatic forms of plasticity operate on different timescales to regulate syn...
Sustained alterations in neuron activity elicit compensatory changes in synaptic function, a form of...
The proper functioning of nervous systems requires electrical activity to be tightly regulated. Pert...
Homeostasis is indispensable to counteract the destabilizing effects of Hebbian plasticity. Although...
Global changes in network activity have been reported to induce homeostatic plasticity at multiple s...
The concept of homeostatic plasticity postulates that neurons maintain relatively stable rates of fi...
In the healthy brain, neuronal excitability and synaptic strength are homeostatically regulated to k...
International audienceHomeostatic plasticity of intrinsic excitability goes hand in hand with homeos...
AbstractSlutsky et al. (this issue of Neuron) report that by selectively filtering out low-level unc...
During the first few weeks in vitro, cultured neuronal networks exhibit spontaneous bursts of action...
Homeostatic processes that regulate electrical activity in neurones are now an established aspect of...
A neuron’s identity and function are dictated by its electrophysiological signature. The firing patt...
Background: During development both Hebbian and homeostatic mechanisms regulate synaptic efficacy, u...
SummarySynaptic homeostasis, induced by chronic changes in neuronal activity, is well studied in cul...
Homeostatic synaptic plasticity is a negative feedback mechanism that neurons use to offset excessiv...
Summary: Hebbian and homeostatic forms of plasticity operate on different timescales to regulate syn...
Sustained alterations in neuron activity elicit compensatory changes in synaptic function, a form of...
The proper functioning of nervous systems requires electrical activity to be tightly regulated. Pert...
Homeostasis is indispensable to counteract the destabilizing effects of Hebbian plasticity. Although...
Global changes in network activity have been reported to induce homeostatic plasticity at multiple s...
The concept of homeostatic plasticity postulates that neurons maintain relatively stable rates of fi...
In the healthy brain, neuronal excitability and synaptic strength are homeostatically regulated to k...
International audienceHomeostatic plasticity of intrinsic excitability goes hand in hand with homeos...
AbstractSlutsky et al. (this issue of Neuron) report that by selectively filtering out low-level unc...
During the first few weeks in vitro, cultured neuronal networks exhibit spontaneous bursts of action...
Homeostatic processes that regulate electrical activity in neurones are now an established aspect of...
A neuron’s identity and function are dictated by its electrophysiological signature. The firing patt...