Homeostatic synaptic plasticity (HSP) regulates synaptic strength in response to changing neuronal firing patterns. This form of plasticity is defined by neurons’ ability to sense and over time integrate their level of firing activity, and to actively maintain it within a defined range. For instance, a compensatory increase in synaptic strength occurs when neuronal activity is chronically attenuated. However, the underpinning cellular mechanisms of this fundamental neural process remain poorly understood. We previously found that during activity deprivation, HSP leads to an increase in α-amino-3-hydroxy-5-methyl-4-isoxazolepropionic (AMPA) receptor function as well as a shift in subunit composition from Ca2+-impermeable GluA2-containing AMP...
<div><p>Homeostatic synaptic plasticity is a negative-feedback mechanism for compensating excessive ...
Evoked transmitter release depends upon calcium influx into synaptic boutons, but mechanisms regulat...
AbstractEvoked transmitter release depends upon calcium influx into synaptic boutons, but mechanisms...
SummaryThe regulation of intracellular calcium by the endoplasmic reticulum (ER) plays a critical ro...
SummaryIn response to activity deprivation, CNS neurons undergo slow adaptive modification of unitar...
The hyperpolarization-activated cation current (Ih) plays an important role in determining membrane ...
International audienceHomeostatic plasticity of intrinsic excitability goes hand in hand with homeos...
How do neurons reconcile the maintenance of calcium homeostasis with perpetual switches in patterns ...
Accumulation of amyloid beta (Aβ) in the brain is a pathological hallmark of Alzheimer's disease (AD...
International audienceKey points r We determined the contribution of the hyperpolarization-activated...
Homeostatic synaptic plasticity is a negative-feedback mechanism for compensating excessive excitati...
The nervous system is faced with perturbations in activity levels throughout development and in dise...
SummaryHomeostatic processes have been proposed to explain the discrepancy between the dynamics of s...
Homeostatic synaptic plasticity is a negative-feedback mechanism for compensating excessive excitati...
SummaryNetwork activity homeostatically alters synaptic efficacy to constrain neuronal output. Howev...
<div><p>Homeostatic synaptic plasticity is a negative-feedback mechanism for compensating excessive ...
Evoked transmitter release depends upon calcium influx into synaptic boutons, but mechanisms regulat...
AbstractEvoked transmitter release depends upon calcium influx into synaptic boutons, but mechanisms...
SummaryThe regulation of intracellular calcium by the endoplasmic reticulum (ER) plays a critical ro...
SummaryIn response to activity deprivation, CNS neurons undergo slow adaptive modification of unitar...
The hyperpolarization-activated cation current (Ih) plays an important role in determining membrane ...
International audienceHomeostatic plasticity of intrinsic excitability goes hand in hand with homeos...
How do neurons reconcile the maintenance of calcium homeostasis with perpetual switches in patterns ...
Accumulation of amyloid beta (Aβ) in the brain is a pathological hallmark of Alzheimer's disease (AD...
International audienceKey points r We determined the contribution of the hyperpolarization-activated...
Homeostatic synaptic plasticity is a negative-feedback mechanism for compensating excessive excitati...
The nervous system is faced with perturbations in activity levels throughout development and in dise...
SummaryHomeostatic processes have been proposed to explain the discrepancy between the dynamics of s...
Homeostatic synaptic plasticity is a negative-feedback mechanism for compensating excessive excitati...
SummaryNetwork activity homeostatically alters synaptic efficacy to constrain neuronal output. Howev...
<div><p>Homeostatic synaptic plasticity is a negative-feedback mechanism for compensating excessive ...
Evoked transmitter release depends upon calcium influx into synaptic boutons, but mechanisms regulat...
AbstractEvoked transmitter release depends upon calcium influx into synaptic boutons, but mechanisms...