Literature DB >> 16172604

Changes in synaptic structure underlie the developmental speeding of AMPA receptor-mediated EPSCs.

Laurence Cathala1, Noemi B Holderith, Zoltan Nusser, David A DiGregorio, Stuart G Cull-Candy.   

Abstract

At many excitatory and inhibitory synapses throughout the nervous system, postsynaptic currents become faster as the synapse matures, primarily owing to changes in receptor subunit composition. The origin of the developmental acceleration of AMPA receptor (AMPAR)-mediated excitatory postsynaptic currents (EPSCs) remains elusive. We used patch-clamp recordings, electron microscopic immunogold localization of AMPARs, partial three-dimensional reconstruction of the neuropil and numerical simulations of glutamate diffusion and AMPAR activation to examine the factors underlying the developmental speeding of miniature EPSCs in mouse cerebellar granule cells. We found that the main developmental change that permits submillisecond transmission at mature synapses is an alteration in the glutamate concentration waveform as experienced by AMPARs. This can be accounted for by changes in the synaptic structure and surrounding neuropil, rather than by a change in AMPAR properties. Our findings raise the possibility that structural alterations could be a general mechanism underlying the change in the time course of AMPAR-mediated synaptic transmission.

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Year:  2005        PMID: 16172604     DOI: 10.1038/nn1534

Source DB:  PubMed          Journal:  Nat Neurosci        ISSN: 1097-6256            Impact factor:   24.884


  58 in total

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7.  TARP subtypes differentially and dose-dependently control synaptic AMPA receptor gating.

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Review 9.  Synapses on NG2-expressing progenitors in the brain: multiple functions?

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10.  Drivers of the primate thalamus.

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