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Dive into the research topics where Daniel Choquet is active.

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Featured researches published by Daniel Choquet.


Nature | 2002

Regulation of AMPA receptor lateral movements.

Aren J. Borgdorff; Daniel Choquet

An essential feature in the modulation of the efficacy of synaptic transmission is rapid changes in the number of AMPA (α-amino-3-hydroxy-5-methyl-4-isoxazole propionic acid) receptors at post-synaptic sites on neurons. Regulation of receptor endo- and exocytosis has been shown to be involved in this process. Whether regulated lateral diffusion of receptors in the plasma membrane also participates in receptor exchange to and from post-synaptic sites remains unknown. We analysed the lateral mobility of native AMPA receptors containing the glutamate receptor subunit GluR2 in rat cultured hippocampal neurons, using single-particle tracking and video microscopy. Here we show that AMPA receptors alternate within seconds between rapid diffusive and stationary behaviour. During maturation of neurons, stationary periods increase in frequency and length, often in spatial correlation with synaptic sites. Raising intracellular calcium, a central element in synaptic plasticity, triggers rapid receptor immobilization and local accumulation on the neuronal surface. We suggest that calcium influx prevents AMPA receptors from diffusing, and that lateral receptor diffusion to and from synaptic sites acts in the rapid and controlled regulation of receptor numbers at synapses.


Neuron | 2007

The Interaction between Stargazin and PSD-95 Regulates AMPA Receptor Surface Trafficking

Cécile Bats; Laurent Groc; Daniel Choquet

Accumulation of AMPA receptors at synapses is a fundamental feature of glutamatergic synaptic transmission. Stargazin, a member of the TARP family, is an AMPAR auxiliary subunit allowing interaction of the receptor with scaffold proteins of the postsynaptic density, such as PSD-95. How PSD-95 and Stargazin regulate AMPAR number in synaptic membranes remains elusive. We show, using single quantum dot and FRAP imaging in live hippocampal neurons, that exchange of AMPAR by lateral diffusion between extrasynaptic and synaptic sites mostly depends on the interaction of Stargazin with PSD-95 and not upon the GluR2 AMPAR subunit C terminus. Disruption of interactions between Stargazin and PSD-95 strongly increases AMPAR surface diffusion, preventing AMPAR accumulation at postsynaptic sites. Furthermore, AMPARs and Stargazin diffuse as complexes in and out synapses. These results propose a model in which the Stargazin-PSD-95 interaction plays a key role to trap and transiently stabilize diffusing AMPARs in the postsynaptic density.


Science | 2008

Surface Mobility of Postsynaptic AMPARs Tunes Synaptic Transmission

Martin Heine; Laurent Groc; Renato Frischknecht; Jean Claude Béïque; Brahim Lounis; Gavin Rumbaugh; Richard L. Huganir; Laurent Cognet; Daniel Choquet

AMPA glutamate receptors (AMPARs) mediate fast excitatory synaptic transmission. Upon fast consecutive synaptic stimulation, transmission can be depressed. Recuperation from fast synaptic depression has been attributed solely to recovery of transmitter release and/or AMPAR desensitization. We show that AMPAR lateral diffusion, observed in both intact hippocampi and cultured neurons, allows fast exchange of desensitized receptors with naïve functional ones within or near the postsynaptic density. Recovery from depression in the tens of millisecond time range can be explained in part by this fast receptor exchange. Preventing AMPAR surface movements through cross-linking, endogenous clustering, or calcium rise all slow recovery from depression. Physiological regulation of postsynaptic receptor mobility affects the fidelity of synaptic transmission by shaping the frequency dependence of synaptic responses.


Nature Neuroscience | 2004

Differential activity-dependent regulation of the lateral mobilities of AMPA and NMDA receptors

Laurent Groc; Martin Heine; Laurent Cognet; Brickley K; Stephenson Fa; Brahim Lounis; Daniel Choquet

The basis for differences in activity-dependent trafficking of AMPA receptors (AMPARs) and NMDA receptors (NMDARs) remains unclear. Using single-molecule tracking, we found different lateral mobilities for AMPARs and NMDARs: changes in neuronal activity modified AMPAR but not NMDAR mobility, whereas protein kinase C activation modified both. Differences in mobility were mainly detected for extrasynaptic AMPARs, suggesting that receptor diffusion between synaptic and extrasynaptic domains is involved in plasticity processes.


Nature Reviews Neuroscience | 2003

The role of receptor diffusion in the organization of the postsynaptic membrane

Daniel Choquet; Antoine Triller

Neurotransmitter receptor movement into and out of synapses is one of the core mechanisms for rapidly changing the number of functional receptors during synaptic plasticity. Recent data have shown that rapid gain and loss of receptors from synaptic sites are accounted for by endocytosis and exocytosis, as well as by lateral diffusion of receptors in the plane of the membrane. These events are interdependent and are regulated by neuronal activity and interactions with scaffolding proteins. Here we focus on the physical laws that govern receptor diffusion and stabilization, and how this might reshape how we think about the specific regulation of receptor accumulation at synapses.


The EMBO Journal | 2003

Direct imaging of lateral movements of AMPA receptors inside synapses

Catherine Tardin; Laurent Cognet; Cécile Bats; Brahim Lounis; Daniel Choquet

Trafficking of AMPA receptors in and out of synapses is crucial for synaptic plasticity. Previous studies have focused on the role of endo/exocytosis processes or that of lateral diffusion of extra‐synaptic receptors. We have now directly imaged AMPAR movements inside and outside synapses of live neurons using single‐ molecule fluorescence microscopy. Inside individual synapses, we found immobile and mobile receptors, which display restricted diffusion. Extra‐synaptic receptors display free diffusion. Receptors could also exchange between these membrane compartments through lateral diffusion. Glutamate application increased both receptor mobility inside synapses and the fraction of mobile receptors present in a juxtasynaptic region. Block of inhibitory transmission to favor excitatory synaptic activity induced a transient increase in the fraction of mobile receptors and a decrease in the proportion of juxtasynaptic receptors. Altogether, our data show that rapid exchange of receptors between a synaptic and extra‐synaptic localization occurs through regulation of receptor diffusion inside synapses.


Nature Neuroscience | 2009

Brain extracellular matrix affects AMPA receptor lateral mobility and short-term synaptic plasticity

Renato Frischknecht; Martin Heine; David Perrais; Constanze I. Seidenbecher; Daniel Choquet; Eckart D. Gundelfinger

Many synapses in the mature CNS are wrapped by a dense extracellular matrix (ECM). Using single-particle tracking and fluorescence recovery after photobleaching, we found that this net-like ECM formed surface compartments on rat primary neurons that acted as lateral diffusion barriers for AMPA-type glutamate receptors. Enzymatic removal of the ECM increased extrasynaptic receptor diffusion and the exchange of synaptic AMPA receptors. Whole-cell patch-clamp recording revealed an increased paired-pulse ratio as a functional consequence of ECM removal. These results suggest that the surface compartments formed by the ECM hinder lateral diffusion of AMPA receptors and may therefore modulate short-term synaptic plasticity.


Neuron | 2007

Extracellular Interactions between GluR2 and N-Cadherin in Spine Regulation

Laura Saglietti; Caroline Dequidt; Kinga Kamieniarz; Marie-Claude Rousset; Pamela Valnegri; Olivier Thoumine; Francesca Beretta; Laurent Fagni; Daniel Choquet; Carlo Sala; Morgan Sheng; Maria Passafaro

Via its extracellular N-terminal domain (NTD), the AMPA receptor subunit GluR2 promotes the formation and growth of dendritic spines in cultured hippocampal neurons. Here we show that the first N-terminal 92 amino acids of the extracellular domain are necessary and sufficient for GluR2s spine-promoting activity. Moreover, overexpression of this extracellular domain increases the frequency of miniature excitatory postsynaptic currents (mEPSCs). Biochemically, the NTD of GluR2 can interact directly with the cell adhesion molecule N-cadherin, in cis or in trans. N-cadherin-coated beads recruit GluR2 on the surface of hippocampal neurons, and N-cadherin immobilization decreases GluR2 lateral diffusion on the neuronal surface. RNAi knockdown of N-cadherin prevents the enhancing effect of GluR2 on spine morphogenesis and mEPSC frequency. Our data indicate that in hippocampal neurons N-cadherin and GluR2 form a synaptic complex that stimulates presynaptic development and function as well as promoting dendritic spine formation.


Neuron | 2007

Diffusional Trapping of GluR1 AMPA Receptors by Input-Specific Synaptic Activity

Michael D. Ehlers; Martin Heine; Laurent Groc; Ming-Chia Lee; Daniel Choquet

Synaptic activity regulates the postsynaptic accumulation of AMPA receptors over timescales ranging from minutes to days. Indeed, the regulated trafficking and mobility of GluR1 AMPA receptors underlies many forms of synaptic potentiation at glutamatergic synapses throughout the brain. However, the basis for synapse-specific accumulation of GluR1 is unknown. Here we report that synaptic activity locally immobilizes GluR1 AMPA receptors at individual synapses. Using single-molecule tracking together with the silencing of individual presynaptic boutons, we demonstrate that local synaptic activity reduces diffusional exchange of GluR1 between synaptic and extraynaptic domains, resulting in postsynaptic accumulation of GluR1. At neighboring inactive synapses, GluR1 is highly mobile with individual receptors frequently escaping the synapse. Within the synapse, spontaneous activity confines the diffusional movement of GluR1 to restricted subregions of the postsynaptic membrane. Thus, local activity restricts GluR1 mobility on a submicron scale, defining an input-specific mechanism for regulating AMPA receptor composition and abundance.


Neuron | 2010

CaMKII Triggers the Diffusional Trapping of Surface AMPARs through Phosphorylation of Stargazin

Patricio Opazo; Simon Labrecque; Cezar Tigaret; Arnaud Frouin; Paul W. Wiseman; Paul De Koninck; Daniel Choquet

The Ca(2+)/calmodulin-dependent protein kinase II (CaMKII) is critically required for the synaptic recruitment of AMPA-type glutamate receptors (AMPARs) during both development and plasticity. However, the underlying mechanism is unknown. Using single-particle tracking of AMPARs, we show that CaMKII activation and postsynaptic translocation induce the synaptic trapping of AMPARs diffusing in the membrane. AMPAR immobilization requires both phosphorylation of the auxiliary subunit Stargazin and its binding to PDZ domain scaffolds. It does not depend on the PDZ binding domain of GluA1 AMPAR subunit nor its phosphorylation at Ser831. Finally, CaMKII-dependent AMPAR immobilization regulates short-term plasticity. Thus, NMDA-dependent Ca(2+) influx in the post-synapse triggers a CaMKII- and Stargazin-dependent decrease in AMPAR diffusional exchange at synapses that controls synaptic function.

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Dive into the Daniel Choquet's collaboration.

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Olivier Thoumine

Centre national de la recherche scientifique

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Eric Hosy

University of Bordeaux

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Laurent Cognet

Centre national de la recherche scientifique

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Martin Heine

Leibniz Institute for Neurobiology

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Brahim Lounis

Centre national de la recherche scientifique

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Antoine Triller

École Normale Supérieure

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Deepak Nair

University of Bordeaux

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