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联合正反馈和负反馈可在感觉处理过程中调节神经元的振荡频率。

Combined Positive and Negative Feedback Allows Modulation of Neuronal Oscillation Frequency during Sensory Processing.

机构信息

Laboratory for Systems Biology and Bio-inspired Engineering, Department of Bio and Brain Engineering, Korea Advanced Institute of Science and Technology (KAIST), Daejeon 34141, Republic of Korea.

Department of Developmental and Cell Biology, UC Irvine, Irvine, CA 92697, USA.

出版信息

Cell Rep. 2018 Nov 6;25(6):1548-1560.e3. doi: 10.1016/j.celrep.2018.10.029.

Abstract

A key step in sensory information processing involves modulation and integration of neuronal oscillations in disparate frequency bands, a poorly understood process. Here, we investigate how top-down input causes frequency changes in slow oscillations during sensory processing and, in turn, how the slow oscillations are combined with fast oscillations (which encode sensory input). Using experimental connectivity patterns and strengths of interneurons, we develop a system-level model of a neuronal circuit controlling these oscillatory behaviors, allowing us to understand the mechanisms responsible for the observed oscillatory behaviors. Our analysis discovers a circuit capable of producing the observed oscillatory behaviors and finds that a detailed balance in the strength of synaptic connections is the critical determinant to produce such oscillatory behaviors. We not only uncover how disparate frequency bands are modulated and combined but also give insights into the causes of abnormal neuronal activities present in brain disorders.

摘要

感觉信息处理中的一个关键步骤涉及到不同频率带的神经元振荡的调制和整合,这是一个理解甚少的过程。在这里,我们研究了自上而下的输入如何在感觉处理过程中引起慢波振荡的频率变化,以及反过来,慢波振荡如何与快波振荡(编码感觉输入)结合。我们使用实验的连接模式和中间神经元的强度,开发了一个控制这些振荡行为的神经元回路的系统级模型,使我们能够理解负责观察到的振荡行为的机制。我们的分析发现了一个能够产生观察到的振荡行为的电路,并发现突触连接强度的精细平衡是产生这种振荡行为的关键决定因素。我们不仅揭示了不同频率带是如何被调制和组合的,还深入了解了大脑疾病中存在的异常神经元活动的原因。

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