AMPARs mediate the briefest synaptic currents in the brain by virtue of their rapid gating kinetics. However, at the mossy fiber-to-unipolar brush cell synapse in the cerebellum, AMPAR-mediated EPSCs last for hundreds of milliseconds, and it has been proposed that this time course reflects slow diffusion from a complex synaptic space. We show that upon release of glutamate, synaptic AMPARs were desensitized by transmitter by >90%. As glutamate levels subsequently fell, recovery of transmission occurred due to the presence of the AMPAR accessory protein stargazin that enhances the AMPAR response to low levels of transmitter. This gradual increase in receptor activity following desensitization accounted for the majority of synaptic transmissi...
AbstractGlutamate transporters are believed to remove glutamate from the synaptic cleft only slowly ...
Glutamate is a major excitatory neurotransmitter in the central nervous system. Purkinje cells in th...
Plasticity models invoke the synaptic delivery of AMPARs, yet we know little about how receptors mov...
AbstractDiffusion of glutamate from the synaptic cleft can activate high-affinity receptors, but is ...
Short-term plasticity of AMPAR currents during high-frequency stimulation depends not only on presyn...
SummaryShort-term plasticity of AMPAR currents during high-frequency stimulation depends not only on...
AbstractFast- and slow-rising AMPA receptor-mediated EPSCs occur at central synapses. Fast-rising EP...
AMPA glutamate receptors (AMPARs) mediate fast excitatory synaptic transmission. Upon fast consecuti...
International audiencehave been proposed to prolong the EPSC by preventing London, WC1E 6BT glutamat...
Abstract The speed and reliability of computation in neural circuits depends on fast chemical transm...
AbstractGlutamatergic transmission at mossy fiber (MF) synapses on CA3 pyramidal neurons in the hipp...
Although neurons often fire in bursts, most of what is known about glutamate signaling and postsynap...
AbstractThe contribution of intersynaptic transmitter diffusion to the AMPA receptor EPSC time cours...
SummaryAccumulation of AMPA receptors at synapses is a fundamental feature of glutamatergic synaptic...
Calcium dynamics in presynaptic terminals regulate the response dynamics of most central excitatory ...
AbstractGlutamate transporters are believed to remove glutamate from the synaptic cleft only slowly ...
Glutamate is a major excitatory neurotransmitter in the central nervous system. Purkinje cells in th...
Plasticity models invoke the synaptic delivery of AMPARs, yet we know little about how receptors mov...
AbstractDiffusion of glutamate from the synaptic cleft can activate high-affinity receptors, but is ...
Short-term plasticity of AMPAR currents during high-frequency stimulation depends not only on presyn...
SummaryShort-term plasticity of AMPAR currents during high-frequency stimulation depends not only on...
AbstractFast- and slow-rising AMPA receptor-mediated EPSCs occur at central synapses. Fast-rising EP...
AMPA glutamate receptors (AMPARs) mediate fast excitatory synaptic transmission. Upon fast consecuti...
International audiencehave been proposed to prolong the EPSC by preventing London, WC1E 6BT glutamat...
Abstract The speed and reliability of computation in neural circuits depends on fast chemical transm...
AbstractGlutamatergic transmission at mossy fiber (MF) synapses on CA3 pyramidal neurons in the hipp...
Although neurons often fire in bursts, most of what is known about glutamate signaling and postsynap...
AbstractThe contribution of intersynaptic transmitter diffusion to the AMPA receptor EPSC time cours...
SummaryAccumulation of AMPA receptors at synapses is a fundamental feature of glutamatergic synaptic...
Calcium dynamics in presynaptic terminals regulate the response dynamics of most central excitatory ...
AbstractGlutamate transporters are believed to remove glutamate from the synaptic cleft only slowly ...
Glutamate is a major excitatory neurotransmitter in the central nervous system. Purkinje cells in th...
Plasticity models invoke the synaptic delivery of AMPARs, yet we know little about how receptors mov...