Long-term synaptic plasticity in hippocampal interneurons

被引:0
作者
Dimitri M. Kullmann
Karri P. Lamsa
机构
[1] Institute of Neurology,Department of Pharmacology
[2] University College London,undefined
[3] Queen Square,undefined
[4] Oxford University,undefined
来源
Nature Reviews Neuroscience | 2007年 / 8卷
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摘要
Hippocampal interneurons express at least two forms of activity-dependent long-term potentiation (LTP) at glutamatergic synapses.One form ('Hebbian' LTP) depends on N-methyl-D-aspartate (NMDA) receptors and has similar induction and expression mechanisms to the LTP that takes place in pyramidal cells.However, different Ca2+–calmodulin-dependent kinases (acting downstream from NMDA receptors) from those that mediate LTP induction in pryamidal cells mediate LTP induction in interneurons.The other form of LTP ('anti-Hebbian' LTP) depends on Ca2+-permeable AMPA receptors, but not NMDA receptors. The voltage-dependent conductance of these receptors allows Ca2+ flow during negative membrane potentials but not during depolarisation. Metabotropic glutamate receptors also contribute to the induction of NMDA receptor-independent LTP.Neither form of LTP spreads to afferent pathways that were inactive during induction. Because interneurons do not have profuse dendritic spines, this observation argues against an obligatory role for spines in preventing the spread of LTP.Both forms of LTP have their counterparts in two complementary forms of long-term depression (LTD).NMDA receptor-dependent LTP and LTD appear to be expressed postsynaptically. NMDA receptor-independent LTP and LTD appear to be expressed presynaptically.Different forms of plasticity occur at distinct synapses in the hippocampus and greatly expand the computational capacity of hippocampal networks.
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页码:687 / 699
页数:12
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共 241 条
[31]  
Lambolez B(2000)Large variability in synaptic J. Neurosci. 20 3544-3551
[32]  
Ropert N(2004)-methyl- Hippocampus 14 193-215
[33]  
Perrais D(1997)-aspartate receptor density on interneurons and a comparison with pyramidal-cell spines in the rat hippocampus Neuron 18 295-305
[34]  
Rossier J(2001)Control of feedforward dendritic inhibition by NMDA receptor-dependent spike timing in hippocampal interneurons Proc. Natl Acad. Sci. USA 98 14708-14713
[35]  
Hestrin S(1982)Differential expression of AMPA receptor subunits in NOS-positive neurons of cortex, striatum, and hippocampus J. Neurophysiol. 48 597-607
[36]  
Angulo MC(1973)AMPA receptor subunits are differentially expressed in parvalbumin- and calretinin-positive neurons of the rat hippocampus J. Physiol. 232 331-356
[37]  
Lambolez B(1995)Afferent-specific innervation of two distinct AMPA receptor subtypes on single hippocampal interneurons J. Neurophysiol. 73 810-819
[38]  
Audinat E(2000)Differential expression of group I metabotropic glutamate receptors in functionally distinct hippocampal interneurons Hippocampus 10 673-683
[39]  
Hestrin S(1998)Immunolocalization of metabotropic glutamate receptor 1α (mGluR1α) in distinct classes of interneuron in the CA1 region of the rat hippocampus Eur. J. Neurosci. 10 3813-3822
[40]  
Rossier J(1995)Hippocampal interneurons express a novel form of synaptic plasticity Neuron 15 137-145