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NMDA 受体增强突触整合的保真度。

NMDA Receptors Enhance the Fidelity of Synaptic Integration.

机构信息

Department of Molecular and Systems Biology, Geisel School of Medicine at Dartmouth College, Hanover, NH 03755.

Department of Molecular and Systems Biology, Geisel School of Medicine at Dartmouth College, Hanover, NH 03755

出版信息

eNeuro. 2021 Mar 3;8(2). doi: 10.1523/ENEURO.0396-20.2020. Print 2021 Mar-Apr.

Abstract

Excitatory synaptic transmission in many neurons is mediated by two coexpressed ionotropic glutamate receptor subtypes, AMPA and NMDA receptors, that differ in kinetics, ion selectivity, and voltage-sensitivity. AMPA receptors have fast kinetics and are voltage-insensitive, while NMDA receptors have slower kinetics and increased conductance at depolarized membrane potentials. Here, we report that the voltage dependency and kinetics of NMDA receptors act synergistically to stabilize synaptic integration of EPSPs across spatial and voltage domains. Simulations of synaptic integration in simplified and morphologically realistic dendritic trees revealed that the combined presence of AMPA and NMDA conductances reduce the variability of somatic responses to spatiotemporal patterns of excitatory synaptic input presented at different initial membrane potentials and/or in different dendritic domains. This moderating effect of the NMDA conductance on synaptic integration was robust across a wide range of AMPA-to-NMDA ratios, and results from synergistic interaction of NMDA kinetics (which reduces variability across membrane potential) and voltage dependence (which favors stabilization across dendritic location). When combined with AMPA conductance, the NMDA conductance compensates for voltage-dependent and impedance-dependent changes in synaptic driving force, and distance-dependent attenuation of synaptic potentials arriving at the axon, to increase the fidelity of synaptic integration and EPSP-spike coupling across both neuron state (i.e., initial membrane potential) and dendritic location of synaptic input. Thus, synaptic NMDA receptors convey advantages for synaptic integration that are independent of, but fully compatible with, their importance for coincidence detection and synaptic plasticity.

摘要

在许多神经元中,兴奋性突触传递由两种共表达的离子型谷氨酸受体亚型 AMPA 和 NMDA 受体介导,它们在动力学、离子选择性和电压敏感性方面存在差异。AMPA 受体具有快速动力学和电压不敏感性,而 NMDA 受体具有较慢的动力学和在去极化膜电位下增加的电导。在这里,我们报告 NMDA 受体的电压依赖性和动力学协同作用,稳定 EPSP 在空间和电压域中的突触整合。在简化和形态上逼真的树突中的突触整合模拟表明,AMPA 和 NMDA 电导的共同存在降低了对在不同初始膜电位和/或不同树突域呈现的兴奋性突触输入的时空模式的体细胞核反应的可变性。这种 NMDA 电导对突触整合的调节作用在广泛的 AMPA 与 NMDA 比值范围内都是稳健的,并且源自 NMDA 动力学的协同相互作用(降低跨膜电位的变异性)和电压依赖性(有利于跨树突位置的稳定性)。当与 AMPA 电导结合时,NMDA 电导补偿了突触驱动力的电压依赖性和阻抗依赖性变化,以及到达轴突的突触电位的距离依赖性衰减,从而提高了整个神经元状态(即初始膜电位)和突触输入的树突位置的突触整合和 EPSP-尖峰耦合的保真度。因此,突触 NMDA 受体对于突触整合具有优势,这种优势独立于其对巧合检测和突触可塑性的重要性,但完全与之兼容。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9d96/7932188/4eceee9bed45/SN-ENUJ210005F001.jpg

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