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通过皮质-皮质输入的突触整合来补偿听觉皮层中水平依赖的频率表征

Compensating Level-Dependent Frequency Representation in Auditory Cortex by Synaptic Integration of Corticocortical Input.

作者信息

Happel Max F K, Ohl Frank W

机构信息

Leibniz Institute for Neurobiology, D-39118, Magdeburg, Germany.

Institute of Biology, Otto-von-Guericke-University, D-39120 Magdeburg, Germany.

出版信息

PLoS One. 2017 Jan 3;12(1):e0169461. doi: 10.1371/journal.pone.0169461. eCollection 2017.

Abstract

Robust perception of auditory objects over a large range of sound intensities is a fundamental feature of the auditory system. However, firing characteristics of single neurons across the entire auditory system, like the frequency tuning, can change significantly with stimulus intensity. Physiological correlates of level-constancy of auditory representations hence should be manifested on the level of larger neuronal assemblies or population patterns. In this study we have investigated how information of frequency and sound level is integrated on the circuit-level in the primary auditory cortex (AI) of the Mongolian gerbil. We used a combination of pharmacological silencing of corticocortically relayed activity and laminar current source density (CSD) analysis. Our data demonstrate that with increasing stimulus intensities progressively lower frequencies lead to the maximal impulse response within cortical input layers at a given cortical site inherited from thalamocortical synaptic inputs. We further identified a temporally precise intercolumnar synaptic convergence of early thalamocortical and horizontal corticocortical inputs. Later tone-evoked activity in upper layers showed a preservation of broad tonotopic tuning across sound levels without shifts towards lower frequencies. Synaptic integration within corticocortical circuits may hence contribute to a level-robust representation of auditory information on a neuronal population level in the auditory cortex.

摘要

在大范围声音强度上对听觉对象的稳健感知是听觉系统的一个基本特征。然而,整个听觉系统中单个神经元的放电特性,如频率调谐,会随刺激强度发生显著变化。因此,听觉表征水平恒常性的生理相关因素应该在更大的神经元集合或群体模式水平上体现出来。在本研究中,我们调查了频率和声音水平信息在长爪沙鼠初级听觉皮层(AI)的电路水平上是如何整合的。我们结合了对皮质-皮质中继活动的药理学沉默和层流电流源密度(CSD)分析。我们的数据表明,随着刺激强度增加,在给定皮质部位从丘脑皮质突触输入继承而来的皮质输入层内,频率逐渐降低会导致最大冲动反应。我们进一步确定了早期丘脑皮质和水平皮质-皮质输入在时间上精确的柱间突触汇聚。上层随后的音调诱发活动显示,在不同声音水平上保持了广泛的音调拓扑调谐,没有向低频转移。因此,皮质-皮质回路内的突触整合可能有助于在听觉皮层的神经元群体水平上对听觉信息进行水平稳健的表征。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e626/5207691/2599fc8febd5/pone.0169461.g001.jpg

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