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Synaptic metaplasticity through NMDA receptor lateral diffusion
Authors:Zhao  J  Peng  Y  Xu  Z  Chen  R Q  Gu  Q H  Chen  Z  Lu  W Nanjing Med Univ  Dept Neurobiol  Key Lab Neurodegenerat Dis Jiangsu Prov  Nanjing  Jiangsu Prov  Peoples R China Nanjing Med Univ  Key Lab Human Funct Gen Jiangsu Prov  Nanjing  Jiangsu Prov  Peoples R China
Institution:Zhao,J.,Peng,Y.,Xu,Z.,Chen,R. Q.,Gu,Q. H.,Chen,Z.,Lu,W. Nanjing Med Univ,Dept Neurobiol,Key Lab Neurodegenerat Dis Jiangsu Prov,Nanjing 210029,Jiangsu Prov,Peoples R China. Nanjing Med Univ,Key Lab Human Funct Gen Jiangsu Prov,Nanjing 210029,Jiangsu Prov,Peoples R China
Abstract:Lateral diffusion of glutamate receptors was proposed as a mechanism for regulating receptor numbers at synapses and affecting synaptic functions, especially the efficiency of synaptic transmission. However, a direct link between receptor lateral diffusion and change in synaptic function has not yet been established. In the present study, we demonstratedNMDAreceptor(NMDAR) lateral diffusion in CA1 neurons in hippocampal slices by detecting considerable recovery of spontaneous or evoked EPSCs from the block of (+)-MK-801(+)-5-methyl-10,11-dihydro-5H-dibenzoa,d] cyclohepten-5,10-imine maleate], an irreversible NMDAR open-channel blocker. We observed changes on both the number and the composition of synaptic NMDAR on recovery. More importantly, after the recovery, long-term potentiation(LTP)-producing protocol induced only LTD(long-term depression) instead of LTP. In contrast, a complete recovery from competitive NMDAR blocker D,L-AP-5 was observed without subsequent changes on synaptic plasticity. Our data suggest a revised model of NMDAR trafficking wherein extrasynaptic NMDARs, mostly NR1/NR2B receptors, move laterally into synaptic sites, resulting in altered rule of synaptic modification. Thus, CA1 synapses exhibit a novel form of metaplasticity in which the direction of synaptic modification can be reverted through subtype-specific lateral diffusion of NMDA receptors.
Keywords:NMDA receptor  lateral diffusion  LTP  LTD  MK-801  AP-5 long-term potentiation  activity-dependent regulation  cultured hippocampal-neurons  mouse visual-cortex  ampa receptor  differential roles  dendritic spines  plasticity  activation  trafficking
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