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蝙蝠听觉系统中频率处理的皮质离心调制

Corticofugal modulation of frequency processing in bat auditory system.

作者信息

Zhang Y, Suga N, Yan J

机构信息

Department of Biology, Washington University, St Louis, Missouri 63130, USA.

出版信息

Nature. 1997 Jun 26;387(6636):900-3. doi: 10.1038/43180.

Abstract

Auditory signals are transmitted from the inner ear through the brainstem to the higher auditory regions of the brain. Neurons throughout the auditory system are tuned to stimulus frequency, and in many auditory regions are arranged in topographical maps with respect to their preferred frequency. These properties are assumed to arise from the interactions of convergent and divergent projections ascending from lower to higher auditory areas; such a view, however, ignores the possible role of descending projections from cortical to subcortical regions. In the bat auditory system, such corticofugal connections modulate neuronal activity to improve the processing of echo-delay information, a specialized feature. Here we show that corticofugal projections are also involved in the most common type of auditory processing, frequency tuning. When cortical neurons tuned to a specific frequency are inactivated, the auditory responses of subcortical neurons tuned to the same frequency are reduced. Moreover, the responses of other subcortical neurons tuned to different frequencies are increased, and their preferred frequencies are shifted towards that of the inactivated cortical neurons. Thus the corticofugal system mediates a positive feedback which, in combination with widespread lateral inhibition, sharpens and adjusts the tuning of neurons at earlier stages in the auditory processing pathway.

摘要

听觉信号从内耳通过脑干传输到大脑的高级听觉区域。整个听觉系统中的神经元都被调谐到刺激频率,并且在许多听觉区域中,它们按照其偏好频率排列成拓扑图。这些特性被认为是由从较低听觉区域向较高听觉区域上升的汇聚和发散投射的相互作用产生的;然而,这种观点忽略了从皮层到皮层下区域的下行投射的可能作用。在蝙蝠听觉系统中,这种皮质传出连接调节神经元活动,以改善回声延迟信息的处理,这是一种特殊特征。在这里我们表明,皮质传出投射也参与了最常见的听觉处理类型,即频率调谐。当调谐到特定频率的皮层神经元失活时,调谐到相同频率的皮层下神经元的听觉反应会降低。此外,调谐到不同频率的其他皮层下神经元的反应会增加,并且它们的偏好频率会向失活的皮层神经元的频率偏移。因此,皮质传出系统介导了一种正反馈,该正反馈与广泛的侧向抑制相结合,在听觉处理通路的早期阶段锐化并调整神经元的调谐。

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