Park Thomas J, Klug Achim, Holinstat Michael, Grothe Benedikt
University of Illinois at Chicago, Laboratory of Integrative Neuroscience, Department of Biological Sciences, 840 W. Taylor St., Chicago, IL 60607, USA.
J Neurophysiol. 2004 Jul;92(1):289-301. doi: 10.1152/jn.00961.2003. Epub 2004 Mar 31.
Interaural level differences (ILDs) provide salient cues for localizing high-frequency sounds in space, and populations of neurons that are sensitive to ILDs are found at almost every synaptic level from brain stem to cortex. These cells are predominantly excited by stimulation of one ear and predominantly inhibited by stimulation of the other ear, such that the magnitude of their response is determined in large part by the intensities at the 2 ears. However, in many cases ILD sensitivity is also influenced by overall intensity, which challenges the idea of unambiguous ILD coding. We investigated whether ambiguity is reduced from one synaptic level to another for 2 centers in the so-called ILD processing pathway. We recorded from single cells in the free-tailed bat lateral superior olive (LSO), the first station where ILDs are coded, and the central nucleus of the inferior colliculus (ICC), which receives a strong projection from the LSO, as well as convergent projections from many other auditory centers. We assessed effects of overall intensity by comparing ILD functions generated with different fixed intensities to the excitatory ear. LSO cells were characterized by functions that shifted in a systematic manner with increasing intensity to the excitatory ear. In contrast, significantly more ICC cells had functions that were stable across overall sound intensity, indicating that hierarchical transformations increase stability. Furthermore, a population analysis based on proportion of active cells indicated that stability in the ICC was greatly enhanced when overall population activity was considered.
双耳声级差(ILDs)为在空间中定位高频声音提供了显著线索,并且在从脑干到皮层的几乎每个突触水平都发现了对ILDs敏感的神经元群体。这些细胞主要通过刺激一只耳朵而兴奋,主要通过刺激另一只耳朵而抑制,因此它们的反应幅度在很大程度上由两只耳朵的强度决定。然而,在许多情况下,ILD敏感性也受到整体强度的影响,这对明确的ILD编码概念提出了挑战。我们研究了在所谓的ILD处理通路中的两个中枢,从一个突触水平到另一个突触水平,模糊性是否会降低。我们记录了游离尾蝠外侧上橄榄核(LSO)中的单细胞,LSO是编码ILDs的第一个位点,以及下丘中央核(ICC),它接受来自LSO的强烈投射以及来自许多其他听觉中枢的汇聚投射。我们通过将用不同固定强度刺激兴奋耳产生的ILD功能进行比较,来评估整体强度的影响。LSO细胞的特征是其功能随着兴奋耳强度的增加而以系统的方式发生变化。相比之下,明显更多的ICC细胞具有在整体声音强度范围内稳定的功能,这表明层级转换增加了稳定性。此外,基于活跃细胞比例的群体分析表明,当考虑整体群体活动时,ICC中的稳定性大大增强。