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Mechanisms Underlying Directional Selectivity for Frequency-Modulated Sweeps in the Inferior Colliculus Revealed by In Vivo Whole-Cell Recordings

机译:体内全细胞记录揭示了下腔囊中频率调制扫描的定向选择性的机制

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摘要

Auditory neurons in the inferior colliculus (IC) show remarkable selectively in that they can distinguish between complex sounds that have identical spectral energy but different temporal structure, such as frequency modulations (FMs) that sweep either upward or downward. Extracellular recordings show that blocking inhibition locally reduces or eliminates response selectivity, suggesting that selectivity is created de novo in the IC, with inhibition playing a prominent role. However, these studies can only infer underlying mechanisms based on spike counts. Using in vivo whole-cell recordings, we examine the mechanisms underlying FM directional selectivity in the IC. We first report that spike threshold can strongly amplify directional selectivity in that the spike directionality was on average more than twice as large as the directionality of the postsynaptic potentials (PSPs). We then show that, in our sample of IC cells, PSP directional selectivity is not created de novo. Rather, we found that the preferred and null FMs evoked synaptic conductances of different magnitudes, indicating that the presynaptic neurons were directionally selective. Combining conductance data with modeling, we show that directionally dependent magnitude differences, not temporal differences, underlie PSP directionality. Modeling also shows that our results are consistent with extracellular studies in which blocking inhibition reduces or eliminates directionality. Our findings suggest that some IC cells use a rate code in their inputs rather than a time code and that highly selective discharge properties can be created by only minor adjustments in the synaptic strengths evoked by different signals.
机译:下丘脑(IC)中的听觉神经元选择性显示出显着特征,因为它们可以区分具有相同频谱能量但时间结构不同的复杂声音,例如向上或向下扫描的频率调制(FM)。细胞外记录表明,阻断抑制作用会局部降低或消除反应的选择性,这表明选择性是在IC中从头产生的,而抑制作用起着主要作用。但是,这些研究只能根据尖峰计数推断出潜在的机制。使用体内全细胞记录,我们检查了IC中FM定向选择性的潜在机制。我们首先报道,尖峰阈值可以大大增强方向选择性,因为尖峰的方向性平均是突触后电位(PSPs)方向性的两倍以上。然后我们证明,在我们的IC电池样本中,从不产生PSP方向选择性。相反,我们发现优选的和无效的FM引起不同幅度的突触电导,表明突触前神经元具有方向选择性。将电导数据与建模相结合,我们表明PSP方向性是方向相关的幅度差异而不是时间差异。建模还表明,我们的结果与细胞外研究相符,后者的阻断抑制作用可降低或消除方向性。我们的发现表明,某些IC电池在其输入中使用速率代码,而不是时间代码,并且仅通过对不同信号引起的突触强度进行较小的调整就可以创建高度选择性的放电特性。

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