Chadderton Paul, Agapiou John P, McAlpine David, Margrie Troy W
Department of Neuroscience, Physiology, and Pharmacology, University College London, London WC1E 6BT, UK.
J Neurosci. 2009 Nov 11;29(45):14127-35. doi: 10.1523/JNEUROSCI.2061-09.2009.
A key function of the auditory system is to provide reliable information about the location of sound sources. Here, we describe how sound location is represented by synaptic input arriving onto pyramidal cells within auditory cortex by combining free-field acoustic stimulation in the frontal azimuthal plane with in vivo whole-cell recordings. We found that subthreshold activity was panoramic in that EPSPs could be evoked from all locations in all cells. Regardless of the sound location that evoked the largest EPSP, we observed a slowing in the EPSP slope along the contralateral-ipsilateral plane that was reflected in a temporal sequence of peak EPSP times. Contralateral sounds evoked EPSPs with earlier peak times and consequently generated action potential firing with shorter latencies than ipsilateral sounds. Thus, whereas spiking probability reflected the region of space evoking the largest EPSP, across the population, synaptic inputs enforced a gradient of spike latency and precision along the horizontal axis. Therefore, within auditory cortex and regardless of preferred location, the time window of synaptic integration reflects sound source location and ensures that spatial acoustic information is represented by relative timings of pyramidal cell output.
听觉系统的一个关键功能是提供有关声源位置的可靠信息。在此,我们通过结合额叶方位平面中的自由场声学刺激与体内全细胞记录,描述了到达听觉皮层内锥体细胞的突触输入如何表征声音位置。我们发现阈下活动是全景式的,因为在所有细胞中,来自所有位置的兴奋性突触后电位(EPSP)都可以被诱发。无论诱发最大EPSP的声音位置如何,我们观察到沿着对侧-同侧平面的EPSP斜率减慢,这反映在EPSP峰值时间的时间序列中。对侧声音诱发的EPSP峰值时间更早,因此产生动作电位发放的潜伏期比同侧声音短。因此,虽然发放概率反映了诱发最大EPSP的空间区域,但在整个群体中,突触输入沿水平轴强制形成了一个发放潜伏期和精度的梯度。因此,在听觉皮层内,无论偏好位置如何,突触整合的时间窗口都反映了声源位置,并确保空间声学信息由锥体细胞输出的相对时间来表征。