NMDA receptors regulate the firing rate set point of hippocampal circuits without altering single-cell dynamics.

IF 14.7 1区 医学 Q1 NEUROSCIENCES
Antonella Ruggiero, Leore R Heim, Lee Susman, Dema Hreaky, Ilana Shapira, Maxim Katsenelson, Kobi Rosenblum, Inna Slutsky
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引用次数: 0

Abstract

Understanding how neuronal circuits stabilize their activity is a fundamental yet poorly understood aspect of neuroscience. Here, we show that hippocampal network properties, such as firing rate distribution and dimensionality, are actively regulated, despite perturbations and single-cell drift. Continuous inhibition of N-methyl-D-aspartate receptors (NMDARs) ex vivo lowers the excitation/inhibition ratio and network firing rates while preserving resilience to perturbations. This establishes a new network firing rate set point via NMDAR-eEF2K signaling pathway. NMDARs' capacity to modulate and stabilize network firing is mediated by excitatory synapses and the intrinsic excitability of parvalbumin-positive neurons, respectively. In behaving mice, continuous NMDAR blockade in CA1 reduces network firing without altering single-neuron drift or triggering a compensatory response. These findings expand NMDAR function beyond their canonical role in synaptic plasticity and raise the possibility that some NMDAR-dependent behavioral effects are mediated by their unique regulation of population activity set points.

NMDA 受体在不改变单细胞动力学的情况下调节海马回路的点燃率设定点。
了解神经元回路如何稳定其活动是神经科学的一个基本方面,但却鲜为人知。在这里,我们发现尽管存在扰动和单细胞漂移,海马网络的特性(如发射率分布和维度)仍受到积极调控。体内持续抑制N-甲基-D-天冬氨酸受体(NMDARs)可降低兴奋/抑制比和网络发射率,同时保持对扰动的恢复力。这就通过 NMDAR-eEF2K 信号通路建立了一个新的网络发射率设定点。NMDAR 调节和稳定网络点燃的能力分别由兴奋性突触和副发光素阳性神经元的内在兴奋性介导。在行为小鼠中,持续阻断 CA1 中的 NMDAR 可降低网络发射,而不会改变单神经元漂移或引发补偿反应。这些发现扩展了 NMDAR 的功能,使其超越了其在突触可塑性中的典型作用,并提出了一种可能性,即某些依赖于 NMDAR 的行为效应是由其对群体活动设定点的独特调节介导的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Neuron
Neuron 医学-神经科学
CiteScore
24.50
自引率
3.10%
发文量
382
审稿时长
1 months
期刊介绍: Established as a highly influential journal in neuroscience, Neuron is widely relied upon in the field. The editors adopt interdisciplinary strategies, integrating biophysical, cellular, developmental, and molecular approaches alongside a systems approach to sensory, motor, and higher-order cognitive functions. Serving as a premier intellectual forum, Neuron holds a prominent position in the entire neuroscience community.
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