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Novel expression mechanism for synaptic potentiation: Alignment of presynaptic release site and postsynaptic receptor

机译:突触增强的新型表达机制:突触前释放位点和突触后受体的对齐。

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摘要

A combination of experimental and modeling approaches was used to study cellular–molecular mechanisms underlying the expression of short-term potentiation (STP) and long-term potentiation (LTP) of glutamatergic synaptic transmission in the hippocampal slice. Electrophysiological recordings from dentate granule cells revealed that high-frequency stimulation of perforant path afferents induced a robust STP and LTP of both (±)-α-amino-3-hydroxy-5-methylisoxazole-4-propionic acid (AMPA) and N-methyl-d-aspartic acid (NMDA) receptor-mediated synaptic responses. However, the decay time constant for STP of the AMPA receptor-mediated excitatory postsynaptic potential was approximately 6 min, whereas the decay time constant for STP of the NMDA receptor-mediated excitatory postsynaptic potential was only 1 min. In addition, focal application of agonists during the expression of STP revealed that the magnitude of conductance change elicited by NMDA application was significantly enhanced, whereas the magnitude of conductance change elicited by application of AMPA remained constant. These findings are most consistent with a postsynaptic mechanism of STP and LTP. Different putative mechanisms were evaluated formally using a computational model that included diffusion of glutamate within the synaptic cleft, different kinetic properties of AMPA and NMDA receptor/channels, and geometric relations between presynaptic release sites and postsynaptic receptor/channels. Simulation results revealed that the only hypothesis consistent with experimental data is that STP and LTP reflect a relocation of AMPA receptor/channels in the postsynaptic membrane such that they become more closely “aligned” with presynaptic release sites. The same mechanism cannot account for STP or LTP of NMDA receptor-mediated responses; instead, potentiation of the NMDA receptor subtype is most consistent with an increase in receptor sensitivity or number.
机译:实验和建模方法的组合被用来研究海马切片中谷氨酸能突触传递的短期增强(STP)和长期增强(LTP)表达的细胞分子机制。齿状颗粒细胞的电生理记录表明,高频刺激穿孔通路的传入可诱导(±)-α-氨基-3-羟基-5-甲基异恶唑-4-丙酸(AMPA)和N-甲基-d-天冬氨酸(NMDA)受体介导的突触反应。但是,AMPA受体介导的兴奋性突触后电位的STP衰减时间常数约为6分钟,而NMDA受体介导的兴奋性突触后电位的STP衰减时间常数约为1分钟。此外,在STP表达过程中激动剂的局部应用表明,NMDA施加引起的电导变化幅度明显增强,而AMPA施加引起的电导变化幅度保持恒定。这些发现与STP和LTP的突触后机制最一致。使用计算模型正式评估了不同的推定机制,该模型包括谷氨酸在突触间隙内的扩散,AMPA和NMDA受体/通道的不同动力学特性以及突触前释放位点与突触后受体/通道之间的几何关系。模拟结果表明,唯一与实验数据一致的假设是STP和LTP反映了AMPA受体/通道在突触后膜中的重新定位,从而使它们与突触前释放位点更加“对齐”。相同的机制不能解释NMDA受体介导的反应的STP或LTP。相反,NMDA受体亚型的增强与受体敏感性或数量增加最一致。

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