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Dual sensitivity of inferior colliculus neurons to ITD in the envelopes of high-frequency sounds: experimental and modeling study

机译:下丘神经元对高频声音包络中ITD的双重敏感性:实验和模型研究

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摘要

Human listeners are sensitive to interaural time differences (ITDs) in the envelopes of sounds, which can serve as a cue for sound localization. Many high-frequency neurons in the mammalian inferior colliculus (IC) are sensitive to envelope-ITDs of sinusoidally amplitude-modulated (SAM) sounds. Typically, envelope-ITD-sensitive IC neurons exhibit either peak-type sensitivity, discharging maximally at the same delay across frequencies, or trough-type sensitivity, discharging minimally at the same delay across frequencies, consistent with responses observed at the primary site of binaural interaction in the medial and lateral superior olives (MSO and LSO), respectively. However, some high-frequency IC neurons exhibit dual types of envelope-ITD sensitivity in their responses to SAM tones, that is, they exhibit peak-type sensitivity at some modulation frequencies and trough-type sensitivity at other frequencies. Here we show that high-frequency IC neurons in the unanesthetized rabbit can also exhibit dual types of envelope-ITD sensitivity in their responses to SAM noise. Such complex responses to SAM stimuli could be achieved by convergent inputs from MSO and LSO onto single IC neurons. We test this hypothesis by implementing a physiologically explicit, computational model of the binaural pathway. Specifically, we examined envelope-ITD sensitivity of a simple model IC neuron that receives convergent inputs from MSO and LSO model neurons. We show that dual envelope-ITD sensitivity emerges in the IC when convergent MSO and LSO inputs are differentially tuned for modulation frequency.
机译:听众对声音包络中的听觉时间差(ITD)敏感,这可以作为声音定位的提示。哺乳动物下丘脑(IC)中的许多高频神经元对正弦振幅调制(SAM)声音的包络ITD敏感。通常,对包膜ITD敏感的IC神经元表现出峰型敏感性,在整个频率上以相同的延迟最大程度地放电,或谷型敏感性,在整个频率上以相同的延迟最小程度地放电,这与在双耳主要部位观察到的反应一致内侧和外侧上层橄榄(MSO和LSO)之间的相互作用。但是,某些高频IC神经元在对SAM音的响应中表现出两种包络ITD灵敏度,即它们在某些调制频率下呈现峰型灵敏度,而在其他频率下呈现谷型灵敏度。在这里,我们显示未麻醉的兔子中的高频IC神经元在对SAM噪声的响应中也可以表现出两种包膜ITD敏感性。通过将MSO和LSO的输入汇聚到单个IC神经元上,可以实现对SAM刺激的这种复杂响应。我们通过实现双耳通路的生理上明确的计算模型来检验该假设。具体来说,我们检查了一个简单的模型IC神经元的包膜ITD敏感性,该神经元从MSO和LSO模型神经元接收会聚的输入。我们显示出,当对MSO和LSO收敛输入进行差分调制以获得调制频率时,IC中会出现双重包络ITD灵敏度。

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