Fast excitatory synaptic signaling in the mammalian brain is mediated by AMPA-type ionotropic glutamate receptors. In neurons, AMPA receptors co-assemble with auxiliary proteins, such as stargazin, which can markedly alter receptor trafficking and gating. Here, we used luminescence resonance energy transfer measurements to map distances between the full-length, functional AMPA receptor and stargazin expressed in HEK293 cells and to determine the ensemble structural changes in the receptor due to stargazin. In addition, we used single-molecule fluorescence resonance energy transfer to study the structural and conformational distribution of the receptor and how this distribution is affected by stargazin. Our nanopositioning data place stargaz...
Regulated trafficking of AMPA receptors to cell surface and to synapses is an important determinant ...
During development, neurons are constantly refining their connections in response to changes in acti...
SummaryDuring development, neurons are constantly refining their connections in response to changes ...
SummaryFast excitatory synaptic signaling in the mammalian brain is mediated by AMPA-type ionotropic...
The AMPA-type glutamate receptors mediate the majority of the fast excitatory synaptic transmission ...
SummaryShort-term plasticity of AMPAR currents during high-frequency stimulation depends not only on...
Short-term plasticity of AMPAR currents during high-frequency stimulation depends not only on presyn...
Abstract The speed and reliability of computation in neural circuits depends on fast chemical transm...
SummaryNeuronal AMPA receptors autoinactivate at high concentrations of glutamate, i.e., the current...
<div><p>Agonist responses and channel kinetics of native α-amino-3-hydroxy-5-methyl-4-isoxazole prop...
Agonist responses and channel kinetics of native α-amino-3-hydroxy-5-methyl-4-isoxazole propionic ac...
AbstractSynaptic plasticity involves protein phosphorylation cascades that alter the density of AMPA...
SummaryNeurons use neurotransmitters to communicate across synapses, constructing neural circuits in...
SummaryAccumulation of AMPA receptors at synapses is a fundamental feature of glutamatergic synaptic...
Understanding how the subcellular fate of newly synthesized AMPA receptors (AMPARs) is controlled is...
Regulated trafficking of AMPA receptors to cell surface and to synapses is an important determinant ...
During development, neurons are constantly refining their connections in response to changes in acti...
SummaryDuring development, neurons are constantly refining their connections in response to changes ...
SummaryFast excitatory synaptic signaling in the mammalian brain is mediated by AMPA-type ionotropic...
The AMPA-type glutamate receptors mediate the majority of the fast excitatory synaptic transmission ...
SummaryShort-term plasticity of AMPAR currents during high-frequency stimulation depends not only on...
Short-term plasticity of AMPAR currents during high-frequency stimulation depends not only on presyn...
Abstract The speed and reliability of computation in neural circuits depends on fast chemical transm...
SummaryNeuronal AMPA receptors autoinactivate at high concentrations of glutamate, i.e., the current...
<div><p>Agonist responses and channel kinetics of native α-amino-3-hydroxy-5-methyl-4-isoxazole prop...
Agonist responses and channel kinetics of native α-amino-3-hydroxy-5-methyl-4-isoxazole propionic ac...
AbstractSynaptic plasticity involves protein phosphorylation cascades that alter the density of AMPA...
SummaryNeurons use neurotransmitters to communicate across synapses, constructing neural circuits in...
SummaryAccumulation of AMPA receptors at synapses is a fundamental feature of glutamatergic synaptic...
Understanding how the subcellular fate of newly synthesized AMPA receptors (AMPARs) is controlled is...
Regulated trafficking of AMPA receptors to cell surface and to synapses is an important determinant ...
During development, neurons are constantly refining their connections in response to changes in acti...
SummaryDuring development, neurons are constantly refining their connections in response to changes ...