NMDA Receptors Control Activity Hierarchy in Neural Network: Loss of Control in Hierarchy Leads to Learning Impairments, Dissociation, and Psychosis.

Yuxin Zhou, Jenn Lingshu Wang, Liyan Qiu, Jordan Torpey, Jemma Glenn Wixson, Mark Lyon, Xuanmao Chen
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Abstract

While it is known that associative memory is preferentially encoded by memory-eligible "primed" neurons, in vivo neural activity hierarchy has not been quantified and little is known about how such a hierarchy is established. Leveraging in vivo calcium imaging of hippocampal neurons on freely behaving mice, we developed the first method to quantify real-time neural activity hierarchy in the CA1 region. Neurons at the top of activity hierarchy are identified as primed neurons. In cilia knockout mice that exhibit severe learning deficits, the percentage of primed neurons is drastically reduced. We developed a simplified neural network model that incorporates simulations of linear and non-linear weighted components, modeling the synaptic ionic conductance of AMPA and NMDA receptors, respectively. We found that moderate non-linear to linear conductance ratios naturally leads a small fraction of neurons to be primed in the simulated neural network. Removal of the non-linear component eliminates the existing activity hierarchy and reinstate it to the network stochastically primes a new pool of neurons. Blockade of NMDA receptors by ketamine not only decreases general neuronal activity causing learning impairments, but also disrupts neural activity hierarchy. Additionally, ketamine-induced super-synchronized slow oscillation during anesthesia can be simulated if the non-linear NMDAR component is removed to flatten activity hierarchy. Together, this study develops a unique method to measure neural activity hierarchy and identifies NMDA receptors as a key factor that controls the hierarchy. It presents the first evidence suggesting that hierarchy disruption by NMDAR blockade causes dissociation and psychosis.

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活动层次测量以建立符合追踪记忆条件的“启动”神经元。
情节记忆被认为优先由记忆相关区域中稀疏分布的符合记忆条件的“启动”神经元编码。基于自由行为小鼠的体内钙成像,我们开发了一种分析方法来确定神经元活动分级并建立海马启动的神经元。具有高活动性和记忆相关突发同步的神经元被鉴定为启动神经元。当形成或恢复微量恐惧记忆时,钙动力学的主要模式主要由启动的神经元介导,并与小鼠的冷冻行为高度相关。在表现出严重学习缺陷的纤毛敲除小鼠中,其启动神经元的百分比显著降低,任何突发同步都受到强烈抑制。一致的是,纤毛敲除神经元的第一个主要模式并没有完全区别于其他次要成分,也没有与小鼠的冷冻行为相关。为了揭示一部分神经元是如何启动的,我们开发了一个简化神经网络的数值模型,该模型结合了线性和非线性加权突触后电导的模拟,分别对AMPAR和NMDAR介导的电导进行建模。适度的非线性到线性电导比可以自然地导致启动神经元的出现。在这种情况下,神经元放电平均值显示出右偏对数分布,类似于通过钙成像测量的海马c-Fos表达和活性水平的分布。总之,这项研究揭示了一种确定神经元活动层次的新方法。我们的模拟表明,由非线性突触成分介导的偏向性突触传递的积累代表了神经元启动的重要机制。
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