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猫初级听觉皮层中神经元的空间感受野结构。

The structure of spatial receptive fields of neurons in primary auditory cortex of the cat.

作者信息

Brugge J F, Reale R A, Hind J E

机构信息

Department of Neurophysiology, University of Wisconsin, Madison 53706, USA.

出版信息

J Neurosci. 1996 Jul 15;16(14):4420-37. doi: 10.1523/JNEUROSCI.16-14-04420.1996.

Abstract

Transient broad-band stimuli that mimic in their spectrum and time waveform sounds arriving from a speaker in free space were delivered to the tympanic membranes of barbiturized cats via sealed and calibrated earphones. The full array of such signals constitutes a virtual acoustic space (VAS). The extra-cellular response to a single stimulus at each VAS direction, consisting of one or a few precisely time-locked spikes, was recorded from neurons in primary auditory cortex. Effective sound directions form a virtual space receptive field (VSRF). Near threshold, most VSRFs were confined to one quadrant of acoustic space and were located on or near the acoustic axis. Generally, VSRFs expanded monotonically with increases in stimulus intensity, with some occupying essentially all of the acoustic space. The VSRF was not homogeneous with respect to spike timing or firing strength. Typically, onset latency varied by as much as 4-5 msec across the VSRF. A substantial proportion of recorded cells exhibited a gradient of first-spike latency within the VSRF. Shortest latencies occupied a core of the VSRF, on or near the acoustic axis, with longer latency being represented progressively at directions more distant from the core. Remaining cells had VSRFs that exhibited no such gradient. The distribution of firing probability was mapped in those experiments in which multiple trials were carried out at each direction. For some cells there was a positive correlation between latency and firing probability.

摘要

通过密封且经过校准的耳机,将在频谱和时间波形上模拟从自由空间中的扬声器传来声音的瞬态宽带刺激传递给巴比妥麻醉猫的鼓膜。这类信号的完整阵列构成了一个虚拟声学空间(VAS)。从初级听觉皮层的神经元记录对每个VAS方向上单个刺激的细胞外反应,该反应由一个或几个精确锁时的尖峰组成。有效的声音方向形成一个虚拟空间感受野(VSRF)。在接近阈值时,大多数VSRF局限于声学空间的一个象限,且位于声学轴上或其附近。一般来说,VSRF随着刺激强度的增加而单调扩展,有些VSRF基本上占据了整个声学空间。VSRF在尖峰时间或发放强度方面并非均匀分布。通常,起始潜伏期在整个VSRF中变化高达4 - 5毫秒。相当一部分记录的细胞在VSRF内表现出首次尖峰潜伏期的梯度。最短潜伏期占据VSRF的核心,位于声学轴上或其附近,随着离核心方向距离的增加,潜伏期逐渐变长。其余细胞的VSRF没有这种梯度。在每个方向进行多次试验的那些实验中,绘制了发放概率的分布图。对于一些细胞,潜伏期和发放概率之间存在正相关。

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