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脑于回路中的抑制性中间神经元调节其抑制模式以处理多模态输入。

Inhibitory interneurons in a brainstem circuit adjust their inhibitory motifs to process multimodal input.

机构信息

Department of Otolaryngology, Kresge Hearing Research Institute, University of Michigan, Ann Arbor, USA.

Biomedical Engineering, University of Michigan, Ann Arbor, Michigan.

出版信息

J Physiol. 2021 Jan;599(2):631-645. doi: 10.1113/JP280741. Epub 2020 Nov 9.

Abstract

KEY POINTS

Inhibitory-interneuron networks, consisting of multiple forms of circuit motifs including reciprocal (inhibitory interneurons inhibiting other interneurons) and feedforward (inhibitory interneurons inhibiting principal neurons) connections, are crucial in processing sensory information. The present study applies a statistical method to in vivo multichannel spike trains of dorsal cochlear nucleus neurons to disentangle reciprocal and feedforward-inhibitory motifs. After inducing input-specific plasticity, reciprocal and feedforward inhibition are found to be differentially regulated, and the combined effect synergistically modulates circuit output. The findings highlight the interplay among different circuit motifs as a key element in neural computation.

ABSTRACT

Inhibitory interneurons play an essential role in neural computations by utilizing a combination of reciprocal (interneurons inhibiting each other) and feedforward (interneuron inhibiting the principal neuron) inhibition to process information. To disentangle the interplay between the two inhibitory-circuit motifs and understand their effects on the circuit output, in vivo recordings were made from the guinea pig dorsal cochlear nucleus, a cerebellar-like brainstem circuit. Spikes from inhibitory interneurons (cartwheel cell) and principal output neurons (fusiform cell) were compared before and after manipulating their common multimodal input. Using a statistical model based on the Cox method of modulated renewal process of spike train influence, reciprocal- and feedforward-inhibition motifs were quantified. In response to altered multimodal input, reciprocal inhibition was strengthened while feedforward inhibition was weakened, and the two motifs combined to modulate fusiform cell output and acoustic-driven responses. These findings reveal the cartwheel cell's role in auditory and multimodal processing, as well as illustrated the balance between different inhibitory-circuit motifs as a key element in neural computation.

摘要

要点

由包括互反馈(抑制性神经元抑制其他神经元)和前馈(抑制性神经元抑制主神经元)连接在内的多种回路基元组成的抑制性神经元网络,对于处理感觉信息至关重要。本研究应用一种统计方法,对背侧耳蜗核神经元的体内多通道尖峰序列进行分析,以区分互反馈和前馈抑制基元。在诱导输入特异性可塑性后,发现互反馈和前馈抑制受到差异调节,而组合效应协同调节回路输出。这些发现强调了不同回路基元之间的相互作用是神经计算的关键要素。

摘要

抑制性神经元通过利用互反馈(神经元相互抑制)和前馈(抑制性神经元抑制主神经元)抑制来处理信息,在神经计算中起着至关重要的作用。为了厘清这两种抑制性回路基元的相互作用,并了解它们对回路输出的影响,我们对具有小脑样脑干回路的豚鼠背侧耳蜗核进行了体内记录。在操纵其共同的多模态输入前后,比较了抑制性中间神经元(轮辐细胞)和主要输出神经元(梭形细胞)的尖峰。使用基于 Cox 方法调制尖峰序列影响的再生过程的统计模型,对互反馈和前馈抑制基元进行了量化。响应于改变的多模态输入,互反馈增强而前馈抑制减弱,两种基元共同调节梭形细胞输出和声驱动反应。这些发现揭示了轮辐细胞在听觉和多模态处理中的作用,并说明了不同抑制性回路基元之间的平衡作为神经计算的关键要素。

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Cortical inhibitory interneurons control sensory processing.皮质抑制性中间神经元控制感觉处理。
Curr Opin Neurobiol. 2017 Oct;46:200-207. doi: 10.1016/j.conb.2017.08.018. Epub 2017 Sep 20.

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