Dominick P. Purpura Department of Neuroscience, Albert Einstein College of Medicine, Bronx, New York 10461, USA.
J Neurosci. 2011 Mar 2;31(9):3234-42. doi: 10.1523/JNEUROSCI.5422-10.2011.
The brainstem auditory pathway is obligatory for all aural information. Brainstem auditory neurons must encode the level and timing of sounds, as well as their time-dependent spectral properties, the fine structure, and envelope, which are essential for sound discrimination. This study focused on envelope coding in the two cochlear nuclei of the barn owl, nucleus angularis (NA) and nucleus magnocellularis (NM). NA and NM receive input from bifurcating auditory nerve fibers and initiate processing pathways specialized in encoding interaural time (ITD) and level (ILD) differences, respectively. We found that NA neurons, although unable to accurately encode stimulus phase, lock more strongly to the stimulus envelope than NM units. The spectrotemporal receptive fields (STRFs) of NA neurons exhibit a pre-excitatory suppressive field. Using multilinear regression analysis and computational modeling, we show that this feature of STRFs can account for enhanced across-trial response reliability, by locking spikes to the stimulus envelope. Our findings indicate a dichotomy in envelope coding between the time and intensity processing pathways as early as at the level of the cochlear nuclei. This allows the ILD processing pathway to encode envelope information with greater fidelity than the ITD processing pathway. Furthermore, we demonstrate that the properties of the STRFs of the neurons can be quantitatively related to spike timing reliability.
脑干听觉通路是所有听觉信息的必经之路。脑干听觉神经元必须对声音的强度和时间进行编码,以及声音的时变频谱特性、精细结构和包络,这些都是声音辨别所必需的。本研究集中于仓鸮的两个耳蜗核——角状核(NA)和巨细胞核(NM)中的包络编码。NA 和 NM 接收分叉的听神经纤维的输入,并分别启动专门用于编码耳间时间(ITD)和强度(ILD)差异的处理途径。我们发现,尽管 NA 神经元不能准确地编码刺激相位,但它们比 NM 单位更强烈地锁定在刺激包络上。NA 神经元的频谱时间 receptive fields (STRFs) 表现出前兴奋抑制场。通过使用多线性回归分析和计算建模,我们表明,这种 STRFs 的特征可以通过将尖峰锁定到刺激包络上来提高跨试验响应的可靠性。我们的发现表明,早在耳蜗核水平,时间和强度处理途径之间就存在包络编码的二分法。这使得 ILD 处理途径能够比 ITD 处理途径更准确地编码包络信息。此外,我们证明了神经元 STRFs 的特性可以与尖峰定时可靠性定量相关。