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猫初级听觉皮层的柱状连接和层状处理。

Columnar connectivity and laminar processing in cat primary auditory cortex.

机构信息

Berkeley Bioengineering Graduate Group, University of California, Berkeley, California, United States of America.

出版信息

PLoS One. 2010 Mar 3;5(3):e9521. doi: 10.1371/journal.pone.0009521.

Abstract

BACKGROUND

Radial intra- and interlaminar connections form a basic microcircuit in primary auditory cortex (AI) that extracts acoustic information and distributes it to cortical and subcortical networks. Though the structure of this microcircuit is known, we do not know how the functional connectivity between layers relates to laminar processing.

METHODOLOGY/PRINCIPAL FINDINGS: We studied the relationships between functional connectivity and receptive field properties in this columnar microcircuit by simultaneously recording from single neurons in cat AI in response to broadband dynamic moving ripple stimuli. We used spectrotemporal receptive fields (STRFs) to estimate the relationship between receptive field parameters and the functional connectivity between pairs of neurons. Interlaminar connectivity obtained through cross-covariance analysis reflected a consistent pattern of information flow from thalamic input layers to cortical output layers. Connection strength and STRF similarity were greatest for intralaminar neuron pairs and in supragranular layers and weaker for interlaminar projections. Interlaminar connection strength co-varied with several STRF parameters: feature selectivity, phase locking to the stimulus envelope, best temporal modulation frequency, and best spectral modulation frequency. Connectivity properties and receptive field relationships differed for vertical and horizontal connections.

CONCLUSIONS/SIGNIFICANCE: Thus, the mode of local processing in supragranular layers differs from that in infragranular layers. Therefore, specific connectivity patterns in the auditory cortex shape the flow of information and constrain how spectrotemporal processing transformations progress in the canonical columnar auditory microcircuit.

摘要

背景

初级听觉皮层(AI)中的放射状内、层间连接形成了一个基本的微电路,用于提取声音信息并将其分配到皮质和皮质下网络。尽管这个微电路的结构是已知的,但我们不知道层间的功能连接与层处理之间的关系。

方法/主要发现:我们通过同时记录猫 AI 中对宽带动态移动波纹刺激的单个神经元反应,研究了这个柱状微电路中功能连接与感受野特性之间的关系。我们使用频谱时间感受野(STRF)来估计感受野参数与神经元对之间功能连接之间的关系。通过互协方差分析获得的层间连接反映了从丘脑输入层到皮质输出层的信息流动的一致模式。连接强度和 STRF 相似性在层内神经元对和颗粒上层最强,在层间投射中较弱。层间连接强度与几个 STRF 参数共变:特征选择性、与刺激包络的相位锁定、最佳时间调制频率和最佳光谱调制频率。连接特性和感受野关系因垂直和水平连接而不同。

结论/意义:因此,颗粒上层中的局部处理模式与颗粒下层中的不同。因此,听觉皮层中的特定连接模式塑造了信息的流动,并限制了频谱时间处理转换在典型的柱状听觉微电路中如何进行。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c8d7/2831079/f3edf57c23bb/pone.0009521.g001.jpg

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